Files
sonr/api/did/v1/genesis.pulsar.go
T

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// Code generated by protoc-gen-go-pulsar. DO NOT EDIT.
package didv1
import (
_ "cosmossdk.io/api/amino"
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binary "encoding/binary"
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fmt "fmt"
runtime "github.com/cosmos/cosmos-proto/runtime"
_ "github.com/cosmos/gogoproto/gogoproto"
protoreflect "google.golang.org/protobuf/reflect/protoreflect"
protoiface "google.golang.org/protobuf/runtime/protoiface"
protoimpl "google.golang.org/protobuf/runtime/protoimpl"
io "io"
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math "math"
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reflect "reflect"
sync "sync"
)
var (
md_GenesisState protoreflect.MessageDescriptor
fd_GenesisState_params protoreflect.FieldDescriptor
)
func init() {
file_did_v1_genesis_proto_init()
md_GenesisState = File_did_v1_genesis_proto.Messages().ByName("GenesisState")
fd_GenesisState_params = md_GenesisState.Fields().ByName("params")
}
var _ protoreflect.Message = (*fastReflection_GenesisState)(nil)
type fastReflection_GenesisState GenesisState
func (x *GenesisState) ProtoReflect() protoreflect.Message {
return (*fastReflection_GenesisState)(x)
}
func (x *GenesisState) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_genesis_proto_msgTypes[0]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
var _fastReflection_GenesisState_messageType fastReflection_GenesisState_messageType
var _ protoreflect.MessageType = fastReflection_GenesisState_messageType{}
type fastReflection_GenesisState_messageType struct{}
func (x fastReflection_GenesisState_messageType) Zero() protoreflect.Message {
return (*fastReflection_GenesisState)(nil)
}
func (x fastReflection_GenesisState_messageType) New() protoreflect.Message {
return new(fastReflection_GenesisState)
}
func (x fastReflection_GenesisState_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_GenesisState
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_GenesisState) Descriptor() protoreflect.MessageDescriptor {
return md_GenesisState
}
// Type returns the message type, which encapsulates both Go and protobuf
// type information. If the Go type information is not needed,
// it is recommended that the message descriptor be used instead.
func (x *fastReflection_GenesisState) Type() protoreflect.MessageType {
return _fastReflection_GenesisState_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_GenesisState) New() protoreflect.Message {
return new(fastReflection_GenesisState)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_GenesisState) Interface() protoreflect.ProtoMessage {
return (*GenesisState)(x)
}
// Range iterates over every populated field in an undefined order,
// calling f for each field descriptor and value encountered.
// Range returns immediately if f returns false.
// While iterating, mutating operations may only be performed
// on the current field descriptor.
func (x *fastReflection_GenesisState) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Params != nil {
value := protoreflect.ValueOfMessage(x.Params.ProtoReflect())
if !f(fd_GenesisState_params, value) {
return
}
}
}
// Has reports whether a field is populated.
//
// Some fields have the property of nullability where it is possible to
// distinguish between the default value of a field and whether the field
// was explicitly populated with the default value. Singular message fields,
// member fields of a oneof, and proto2 scalar fields are nullable. Such
// fields are populated only if explicitly set.
//
// In other cases (aside from the nullable cases above),
// a proto3 scalar field is populated if it contains a non-zero value, and
// a repeated field is populated if it is non-empty.
func (x *fastReflection_GenesisState) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.GenesisState.params":
return x.Params != nil
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.GenesisState"))
}
panic(fmt.Errorf("message did.v1.GenesisState does not contain field %s", fd.FullName()))
}
}
// Clear clears the field such that a subsequent Has call reports false.
//
// Clearing an extension field clears both the extension type and value
// associated with the given field number.
//
// Clear is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_GenesisState) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.GenesisState.params":
x.Params = nil
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.GenesisState"))
}
panic(fmt.Errorf("message did.v1.GenesisState does not contain field %s", fd.FullName()))
}
}
// Get retrieves the value for a field.
//
// For unpopulated scalars, it returns the default value, where
// the default value of a bytes scalar is guaranteed to be a copy.
// For unpopulated composite types, it returns an empty, read-only view
// of the value; to obtain a mutable reference, use Mutable.
func (x *fastReflection_GenesisState) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.GenesisState.params":
value := x.Params
return protoreflect.ValueOfMessage(value.ProtoReflect())
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.GenesisState"))
}
panic(fmt.Errorf("message did.v1.GenesisState does not contain field %s", descriptor.FullName()))
}
}
// Set stores the value for a field.
//
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType.
// When setting a composite type, it is unspecified whether the stored value
// aliases the source's memory in any way. If the composite value is an
// empty, read-only value, then it panics.
//
// Set is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_GenesisState) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.GenesisState.params":
x.Params = value.Message().Interface().(*Params)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.GenesisState"))
}
panic(fmt.Errorf("message did.v1.GenesisState does not contain field %s", fd.FullName()))
}
}
// Mutable returns a mutable reference to a composite type.
//
// If the field is unpopulated, it may allocate a composite value.
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType
// if not already stored.
// It panics if the field does not contain a composite type.
//
// Mutable is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_GenesisState) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.GenesisState.params":
if x.Params == nil {
x.Params = new(Params)
}
return protoreflect.ValueOfMessage(x.Params.ProtoReflect())
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.GenesisState"))
}
panic(fmt.Errorf("message did.v1.GenesisState does not contain field %s", fd.FullName()))
}
}
// NewField returns a new value that is assignable to the field
// for the given descriptor. For scalars, this returns the default value.
// For lists, maps, and messages, this returns a new, empty, mutable value.
func (x *fastReflection_GenesisState) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.GenesisState.params":
m := new(Params)
return protoreflect.ValueOfMessage(m.ProtoReflect())
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.GenesisState"))
}
panic(fmt.Errorf("message did.v1.GenesisState does not contain field %s", fd.FullName()))
}
}
// WhichOneof reports which field within the oneof is populated,
// returning nil if none are populated.
// It panics if the oneof descriptor does not belong to this message.
func (x *fastReflection_GenesisState) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.GenesisState", d.FullName()))
}
panic("unreachable")
}
// GetUnknown retrieves the entire list of unknown fields.
// The caller may only mutate the contents of the RawFields
// if the mutated bytes are stored back into the message with SetUnknown.
func (x *fastReflection_GenesisState) GetUnknown() protoreflect.RawFields {
return x.unknownFields
}
// SetUnknown stores an entire list of unknown fields.
// The raw fields must be syntactically valid according to the wire format.
// An implementation may panic if this is not the case.
// Once stored, the caller must not mutate the content of the RawFields.
// An empty RawFields may be passed to clear the fields.
//
// SetUnknown is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_GenesisState) SetUnknown(fields protoreflect.RawFields) {
x.unknownFields = fields
}
// IsValid reports whether the message is valid.
//
// An invalid message is an empty, read-only value.
//
// An invalid message often corresponds to a nil pointer of the concrete
// message type, but the details are implementation dependent.
// Validity is not part of the protobuf data model, and may not
// be preserved in marshaling or other operations.
func (x *fastReflection_GenesisState) IsValid() bool {
return x != nil
}
// ProtoMethods returns optional fastReflectionFeature-path implementations of various operations.
// This method may return nil.
//
// The returned methods type is identical to
// "google.golang.org/protobuf/runtime/protoiface".Methods.
// Consult the protoiface package documentation for details.
func (x *fastReflection_GenesisState) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*GenesisState)
if x == nil {
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: 0,
}
}
options := runtime.SizeInputToOptions(input)
_ = options
var n int
var l int
_ = l
if x.Params != nil {
l = options.Size(x.Params)
n += 1 + l + runtime.Sov(uint64(l))
}
if x.unknownFields != nil {
n += len(x.unknownFields)
}
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: n,
}
}
marshal := func(input protoiface.MarshalInput) (protoiface.MarshalOutput, error) {
x := input.Message.Interface().(*GenesisState)
if x == nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
options := runtime.MarshalInputToOptions(input)
_ = options
size := options.Size(x)
dAtA := make([]byte, size)
i := len(dAtA)
_ = i
var l int
_ = l
if x.unknownFields != nil {
i -= len(x.unknownFields)
copy(dAtA[i:], x.unknownFields)
}
if x.Params != nil {
encoded, err := options.Marshal(x.Params)
if err != nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, err
}
i -= len(encoded)
copy(dAtA[i:], encoded)
i = runtime.EncodeVarint(dAtA, i, uint64(len(encoded)))
i--
dAtA[i] = 0xa
}
if input.Buf != nil {
input.Buf = append(input.Buf, dAtA...)
} else {
input.Buf = dAtA
}
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
unmarshal := func(input protoiface.UnmarshalInput) (protoiface.UnmarshalOutput, error) {
x := input.Message.Interface().(*GenesisState)
if x == nil {
return protoiface.UnmarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Flags: input.Flags,
}, nil
}
options := runtime.UnmarshalInputToOptions(input)
_ = options
dAtA := input.Buf
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: GenesisState: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: GenesisState: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
case 1:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Params", wireType)
}
var msglen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
msglen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if msglen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + msglen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if x.Params == nil {
x.Params = &Params{}
}
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.Params); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
default:
iNdEx = preIndex
skippy, err := runtime.Skip(dAtA[iNdEx:])
if err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if (iNdEx + skippy) > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if !options.DiscardUnknown {
x.unknownFields = append(x.unknownFields, dAtA[iNdEx:iNdEx+skippy]...)
}
iNdEx += skippy
}
}
if iNdEx > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, nil
}
return &protoiface.Methods{
NoUnkeyedLiterals: struct{}{},
Flags: protoiface.SupportMarshalDeterministic | protoiface.SupportUnmarshalDiscardUnknown,
Size: size,
Marshal: marshal,
Unmarshal: unmarshal,
Merge: nil,
CheckInitialized: nil,
}
}
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var _ protoreflect.List = (*_Params_1_list)(nil)
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type _Params_1_list struct {
list *[]*AssetInfo
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}
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func (x *_Params_1_list) Len() int {
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if x.list == nil {
return 0
}
return len(*x.list)
}
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func (x *_Params_1_list) Get(i int) protoreflect.Value {
return protoreflect.ValueOfMessage((*x.list)[i].ProtoReflect())
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}
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func (x *_Params_1_list) Set(i int, value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*AssetInfo)
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(*x.list)[i] = concreteValue
}
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func (x *_Params_1_list) Append(value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*AssetInfo)
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*x.list = append(*x.list, concreteValue)
}
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func (x *_Params_1_list) AppendMutable() protoreflect.Value {
v := new(AssetInfo)
*x.list = append(*x.list, v)
return protoreflect.ValueOfMessage(v.ProtoReflect())
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}
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func (x *_Params_1_list) Truncate(n int) {
for i := n; i < len(*x.list); i++ {
(*x.list)[i] = nil
}
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*x.list = (*x.list)[:n]
}
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func (x *_Params_1_list) NewElement() protoreflect.Value {
v := new(AssetInfo)
return protoreflect.ValueOfMessage(v.ProtoReflect())
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}
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func (x *_Params_1_list) IsValid() bool {
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return x.list != nil
}
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var _ protoreflect.List = (*_Params_2_list)(nil)
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type _Params_2_list struct {
list *[]*ChainInfo
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}
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func (x *_Params_2_list) Len() int {
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if x.list == nil {
return 0
}
return len(*x.list)
}
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func (x *_Params_2_list) Get(i int) protoreflect.Value {
return protoreflect.ValueOfMessage((*x.list)[i].ProtoReflect())
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}
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func (x *_Params_2_list) Set(i int, value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*ChainInfo)
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(*x.list)[i] = concreteValue
}
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func (x *_Params_2_list) Append(value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*ChainInfo)
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*x.list = append(*x.list, concreteValue)
}
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func (x *_Params_2_list) AppendMutable() protoreflect.Value {
v := new(ChainInfo)
*x.list = append(*x.list, v)
return protoreflect.ValueOfMessage(v.ProtoReflect())
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}
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func (x *_Params_2_list) Truncate(n int) {
for i := n; i < len(*x.list); i++ {
(*x.list)[i] = nil
}
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*x.list = (*x.list)[:n]
}
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func (x *_Params_2_list) NewElement() protoreflect.Value {
v := new(ChainInfo)
return protoreflect.ValueOfMessage(v.ProtoReflect())
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}
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func (x *_Params_2_list) IsValid() bool {
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return x.list != nil
}
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var _ protoreflect.List = (*_Params_3_list)(nil)
type _Params_3_list struct {
list *[]*KeyInfo
}
func (x *_Params_3_list) Len() int {
if x.list == nil {
return 0
}
return len(*x.list)
}
func (x *_Params_3_list) Get(i int) protoreflect.Value {
return protoreflect.ValueOfMessage((*x.list)[i].ProtoReflect())
}
func (x *_Params_3_list) Set(i int, value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*KeyInfo)
(*x.list)[i] = concreteValue
}
func (x *_Params_3_list) Append(value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*KeyInfo)
*x.list = append(*x.list, concreteValue)
}
func (x *_Params_3_list) AppendMutable() protoreflect.Value {
v := new(KeyInfo)
*x.list = append(*x.list, v)
return protoreflect.ValueOfMessage(v.ProtoReflect())
}
func (x *_Params_3_list) Truncate(n int) {
for i := n; i < len(*x.list); i++ {
(*x.list)[i] = nil
}
*x.list = (*x.list)[:n]
}
func (x *_Params_3_list) NewElement() protoreflect.Value {
v := new(KeyInfo)
return protoreflect.ValueOfMessage(v.ProtoReflect())
}
func (x *_Params_3_list) IsValid() bool {
return x.list != nil
}
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var (
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md_Params protoreflect.MessageDescriptor
fd_Params_whitelisted_assets protoreflect.FieldDescriptor
fd_Params_whitelisted_chains protoreflect.FieldDescriptor
fd_Params_allowed_public_keys protoreflect.FieldDescriptor
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)
func init() {
file_did_v1_genesis_proto_init()
md_Params = File_did_v1_genesis_proto.Messages().ByName("Params")
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fd_Params_whitelisted_assets = md_Params.Fields().ByName("whitelisted_assets")
fd_Params_whitelisted_chains = md_Params.Fields().ByName("whitelisted_chains")
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fd_Params_allowed_public_keys = md_Params.Fields().ByName("allowed_public_keys")
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}
var _ protoreflect.Message = (*fastReflection_Params)(nil)
type fastReflection_Params Params
func (x *Params) ProtoReflect() protoreflect.Message {
return (*fastReflection_Params)(x)
}
func (x *Params) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_genesis_proto_msgTypes[1]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
var _fastReflection_Params_messageType fastReflection_Params_messageType
var _ protoreflect.MessageType = fastReflection_Params_messageType{}
type fastReflection_Params_messageType struct{}
func (x fastReflection_Params_messageType) Zero() protoreflect.Message {
return (*fastReflection_Params)(nil)
}
func (x fastReflection_Params_messageType) New() protoreflect.Message {
return new(fastReflection_Params)
}
func (x fastReflection_Params_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_Params
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_Params) Descriptor() protoreflect.MessageDescriptor {
return md_Params
}
// Type returns the message type, which encapsulates both Go and protobuf
// type information. If the Go type information is not needed,
// it is recommended that the message descriptor be used instead.
func (x *fastReflection_Params) Type() protoreflect.MessageType {
return _fastReflection_Params_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_Params) New() protoreflect.Message {
return new(fastReflection_Params)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_Params) Interface() protoreflect.ProtoMessage {
return (*Params)(x)
}
// Range iterates over every populated field in an undefined order,
// calling f for each field descriptor and value encountered.
// Range returns immediately if f returns false.
// While iterating, mutating operations may only be performed
// on the current field descriptor.
func (x *fastReflection_Params) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
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if len(x.WhitelistedAssets) != 0 {
value := protoreflect.ValueOfList(&_Params_1_list{list: &x.WhitelistedAssets})
if !f(fd_Params_whitelisted_assets, value) {
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return
}
}
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if len(x.WhitelistedChains) != 0 {
value := protoreflect.ValueOfList(&_Params_2_list{list: &x.WhitelistedChains})
if !f(fd_Params_whitelisted_chains, value) {
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return
}
}
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if len(x.AllowedPublicKeys) != 0 {
value := protoreflect.ValueOfList(&_Params_3_list{list: &x.AllowedPublicKeys})
if !f(fd_Params_allowed_public_keys, value) {
return
}
}
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}
// Has reports whether a field is populated.
//
// Some fields have the property of nullability where it is possible to
// distinguish between the default value of a field and whether the field
// was explicitly populated with the default value. Singular message fields,
// member fields of a oneof, and proto2 scalar fields are nullable. Such
// fields are populated only if explicitly set.
//
// In other cases (aside from the nullable cases above),
// a proto3 scalar field is populated if it contains a non-zero value, and
// a repeated field is populated if it is non-empty.
func (x *fastReflection_Params) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
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case "did.v1.Params.whitelisted_assets":
return len(x.WhitelistedAssets) != 0
case "did.v1.Params.whitelisted_chains":
return len(x.WhitelistedChains) != 0
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case "did.v1.Params.allowed_public_keys":
return len(x.AllowedPublicKeys) != 0
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default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Params"))
}
panic(fmt.Errorf("message did.v1.Params does not contain field %s", fd.FullName()))
}
}
// Clear clears the field such that a subsequent Has call reports false.
//
// Clearing an extension field clears both the extension type and value
// associated with the given field number.
//
// Clear is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_Params) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
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case "did.v1.Params.whitelisted_assets":
x.WhitelistedAssets = nil
case "did.v1.Params.whitelisted_chains":
x.WhitelistedChains = nil
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case "did.v1.Params.allowed_public_keys":
x.AllowedPublicKeys = nil
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default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Params"))
}
panic(fmt.Errorf("message did.v1.Params does not contain field %s", fd.FullName()))
}
}
// Get retrieves the value for a field.
//
// For unpopulated scalars, it returns the default value, where
// the default value of a bytes scalar is guaranteed to be a copy.
// For unpopulated composite types, it returns an empty, read-only view
// of the value; to obtain a mutable reference, use Mutable.
func (x *fastReflection_Params) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
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case "did.v1.Params.whitelisted_assets":
if len(x.WhitelistedAssets) == 0 {
return protoreflect.ValueOfList(&_Params_1_list{})
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}
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listValue := &_Params_1_list{list: &x.WhitelistedAssets}
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return protoreflect.ValueOfList(listValue)
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case "did.v1.Params.whitelisted_chains":
if len(x.WhitelistedChains) == 0 {
return protoreflect.ValueOfList(&_Params_2_list{})
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}
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listValue := &_Params_2_list{list: &x.WhitelistedChains}
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return protoreflect.ValueOfList(listValue)
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case "did.v1.Params.allowed_public_keys":
if len(x.AllowedPublicKeys) == 0 {
return protoreflect.ValueOfList(&_Params_3_list{})
}
listValue := &_Params_3_list{list: &x.AllowedPublicKeys}
return protoreflect.ValueOfList(listValue)
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default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Params"))
}
panic(fmt.Errorf("message did.v1.Params does not contain field %s", descriptor.FullName()))
}
}
// Set stores the value for a field.
//
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType.
// When setting a composite type, it is unspecified whether the stored value
// aliases the source's memory in any way. If the composite value is an
// empty, read-only value, then it panics.
//
// Set is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_Params) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
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case "did.v1.Params.whitelisted_assets":
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lv := value.List()
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clv := lv.(*_Params_1_list)
x.WhitelistedAssets = *clv.list
case "did.v1.Params.whitelisted_chains":
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lv := value.List()
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clv := lv.(*_Params_2_list)
x.WhitelistedChains = *clv.list
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case "did.v1.Params.allowed_public_keys":
lv := value.List()
clv := lv.(*_Params_3_list)
x.AllowedPublicKeys = *clv.list
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default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Params"))
}
panic(fmt.Errorf("message did.v1.Params does not contain field %s", fd.FullName()))
}
}
// Mutable returns a mutable reference to a composite type.
//
// If the field is unpopulated, it may allocate a composite value.
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType
// if not already stored.
// It panics if the field does not contain a composite type.
//
// Mutable is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_Params) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
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case "did.v1.Params.whitelisted_assets":
if x.WhitelistedAssets == nil {
x.WhitelistedAssets = []*AssetInfo{}
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}
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value := &_Params_1_list{list: &x.WhitelistedAssets}
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return protoreflect.ValueOfList(value)
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case "did.v1.Params.whitelisted_chains":
if x.WhitelistedChains == nil {
x.WhitelistedChains = []*ChainInfo{}
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}
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value := &_Params_2_list{list: &x.WhitelistedChains}
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return protoreflect.ValueOfList(value)
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case "did.v1.Params.allowed_public_keys":
if x.AllowedPublicKeys == nil {
x.AllowedPublicKeys = []*KeyInfo{}
}
value := &_Params_3_list{list: &x.AllowedPublicKeys}
return protoreflect.ValueOfList(value)
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default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Params"))
}
panic(fmt.Errorf("message did.v1.Params does not contain field %s", fd.FullName()))
}
}
// NewField returns a new value that is assignable to the field
// for the given descriptor. For scalars, this returns the default value.
// For lists, maps, and messages, this returns a new, empty, mutable value.
func (x *fastReflection_Params) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
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case "did.v1.Params.whitelisted_assets":
list := []*AssetInfo{}
return protoreflect.ValueOfList(&_Params_1_list{list: &list})
case "did.v1.Params.whitelisted_chains":
list := []*ChainInfo{}
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return protoreflect.ValueOfList(&_Params_2_list{list: &list})
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case "did.v1.Params.allowed_public_keys":
list := []*KeyInfo{}
return protoreflect.ValueOfList(&_Params_3_list{list: &list})
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default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Params"))
}
panic(fmt.Errorf("message did.v1.Params does not contain field %s", fd.FullName()))
}
}
// WhichOneof reports which field within the oneof is populated,
// returning nil if none are populated.
// It panics if the oneof descriptor does not belong to this message.
func (x *fastReflection_Params) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.Params", d.FullName()))
}
panic("unreachable")
}
// GetUnknown retrieves the entire list of unknown fields.
// The caller may only mutate the contents of the RawFields
// if the mutated bytes are stored back into the message with SetUnknown.
func (x *fastReflection_Params) GetUnknown() protoreflect.RawFields {
return x.unknownFields
}
// SetUnknown stores an entire list of unknown fields.
// The raw fields must be syntactically valid according to the wire format.
// An implementation may panic if this is not the case.
// Once stored, the caller must not mutate the content of the RawFields.
// An empty RawFields may be passed to clear the fields.
//
// SetUnknown is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_Params) SetUnknown(fields protoreflect.RawFields) {
x.unknownFields = fields
}
// IsValid reports whether the message is valid.
//
// An invalid message is an empty, read-only value.
//
// An invalid message often corresponds to a nil pointer of the concrete
// message type, but the details are implementation dependent.
// Validity is not part of the protobuf data model, and may not
// be preserved in marshaling or other operations.
func (x *fastReflection_Params) IsValid() bool {
return x != nil
}
// ProtoMethods returns optional fastReflectionFeature-path implementations of various operations.
// This method may return nil.
//
// The returned methods type is identical to
// "google.golang.org/protobuf/runtime/protoiface".Methods.
// Consult the protoiface package documentation for details.
func (x *fastReflection_Params) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*Params)
if x == nil {
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: 0,
}
}
options := runtime.SizeInputToOptions(input)
_ = options
var n int
var l int
_ = l
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if len(x.WhitelistedAssets) > 0 {
for _, e := range x.WhitelistedAssets {
l = options.Size(e)
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n += 1 + l + runtime.Sov(uint64(l))
}
}
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if len(x.WhitelistedChains) > 0 {
for _, e := range x.WhitelistedChains {
l = options.Size(e)
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n += 1 + l + runtime.Sov(uint64(l))
}
}
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if len(x.AllowedPublicKeys) > 0 {
for _, e := range x.AllowedPublicKeys {
l = options.Size(e)
n += 1 + l + runtime.Sov(uint64(l))
}
}
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if x.unknownFields != nil {
n += len(x.unknownFields)
}
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: n,
}
}
marshal := func(input protoiface.MarshalInput) (protoiface.MarshalOutput, error) {
x := input.Message.Interface().(*Params)
if x == nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
options := runtime.MarshalInputToOptions(input)
_ = options
size := options.Size(x)
dAtA := make([]byte, size)
i := len(dAtA)
_ = i
var l int
_ = l
if x.unknownFields != nil {
i -= len(x.unknownFields)
copy(dAtA[i:], x.unknownFields)
}
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if len(x.AllowedPublicKeys) > 0 {
for iNdEx := len(x.AllowedPublicKeys) - 1; iNdEx >= 0; iNdEx-- {
encoded, err := options.Marshal(x.AllowedPublicKeys[iNdEx])
if err != nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, err
}
i -= len(encoded)
copy(dAtA[i:], encoded)
i = runtime.EncodeVarint(dAtA, i, uint64(len(encoded)))
i--
dAtA[i] = 0x1a
}
}
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if len(x.WhitelistedChains) > 0 {
for iNdEx := len(x.WhitelistedChains) - 1; iNdEx >= 0; iNdEx-- {
encoded, err := options.Marshal(x.WhitelistedChains[iNdEx])
if err != nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, err
}
i -= len(encoded)
copy(dAtA[i:], encoded)
i = runtime.EncodeVarint(dAtA, i, uint64(len(encoded)))
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i--
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dAtA[i] = 0x12
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}
}
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if len(x.WhitelistedAssets) > 0 {
for iNdEx := len(x.WhitelistedAssets) - 1; iNdEx >= 0; iNdEx-- {
encoded, err := options.Marshal(x.WhitelistedAssets[iNdEx])
if err != nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, err
}
i -= len(encoded)
copy(dAtA[i:], encoded)
i = runtime.EncodeVarint(dAtA, i, uint64(len(encoded)))
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i--
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dAtA[i] = 0xa
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}
}
if input.Buf != nil {
input.Buf = append(input.Buf, dAtA...)
} else {
input.Buf = dAtA
}
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
unmarshal := func(input protoiface.UnmarshalInput) (protoiface.UnmarshalOutput, error) {
x := input.Message.Interface().(*Params)
if x == nil {
return protoiface.UnmarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Flags: input.Flags,
}, nil
}
options := runtime.UnmarshalInputToOptions(input)
_ = options
dAtA := input.Buf
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: Params: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: Params: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
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case 1:
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if wireType != 2 {
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return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field WhitelistedAssets", wireType)
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}
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var msglen int
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for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
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msglen |= int(b&0x7F) << shift
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if b < 0x80 {
break
}
}
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if msglen < 0 {
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return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
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postIndex := iNdEx + msglen
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if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
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x.WhitelistedAssets = append(x.WhitelistedAssets, &AssetInfo{})
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.WhitelistedAssets[len(x.WhitelistedAssets)-1]); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
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iNdEx = postIndex
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case 2:
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if wireType != 2 {
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return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field WhitelistedChains", wireType)
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}
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var msglen int
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for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
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msglen |= int(b&0x7F) << shift
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if b < 0x80 {
break
}
}
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if msglen < 0 {
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return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
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postIndex := iNdEx + msglen
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if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
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x.WhitelistedChains = append(x.WhitelistedChains, &ChainInfo{})
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.WhitelistedChains[len(x.WhitelistedChains)-1]); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
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}
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iNdEx = postIndex
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case 3:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field AllowedPublicKeys", wireType)
}
var msglen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
msglen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if msglen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + msglen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.AllowedPublicKeys = append(x.AllowedPublicKeys, &KeyInfo{})
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.AllowedPublicKeys[len(x.AllowedPublicKeys)-1]); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
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default:
iNdEx = preIndex
skippy, err := runtime.Skip(dAtA[iNdEx:])
if err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if (iNdEx + skippy) > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if !options.DiscardUnknown {
x.unknownFields = append(x.unknownFields, dAtA[iNdEx:iNdEx+skippy]...)
}
iNdEx += skippy
}
}
if iNdEx > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, nil
}
return &protoiface.Methods{
NoUnkeyedLiterals: struct{}{},
Flags: protoiface.SupportMarshalDeterministic | protoiface.SupportUnmarshalDiscardUnknown,
Size: size,
Marshal: marshal,
Unmarshal: unmarshal,
Merge: nil,
CheckInitialized: nil,
}
}
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var (
md_AssetInfo protoreflect.MessageDescriptor
fd_AssetInfo_id protoreflect.FieldDescriptor
fd_AssetInfo_denom protoreflect.FieldDescriptor
fd_AssetInfo_symbol protoreflect.FieldDescriptor
fd_AssetInfo_asset_type protoreflect.FieldDescriptor
fd_AssetInfo_origin_chain protoreflect.FieldDescriptor
fd_AssetInfo_origin_denom protoreflect.FieldDescriptor
fd_AssetInfo_decimals protoreflect.FieldDescriptor
fd_AssetInfo_description protoreflect.FieldDescriptor
fd_AssetInfo_image_url protoreflect.FieldDescriptor
fd_AssetInfo_coingecko_id protoreflect.FieldDescriptor
fd_AssetInfo_is_enabled protoreflect.FieldDescriptor
fd_AssetInfo_ibc_path protoreflect.FieldDescriptor
fd_AssetInfo_ibc_channel protoreflect.FieldDescriptor
fd_AssetInfo_ibc_port protoreflect.FieldDescriptor
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)
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func init() {
file_did_v1_genesis_proto_init()
md_AssetInfo = File_did_v1_genesis_proto.Messages().ByName("AssetInfo")
fd_AssetInfo_id = md_AssetInfo.Fields().ByName("id")
fd_AssetInfo_denom = md_AssetInfo.Fields().ByName("denom")
fd_AssetInfo_symbol = md_AssetInfo.Fields().ByName("symbol")
fd_AssetInfo_asset_type = md_AssetInfo.Fields().ByName("asset_type")
fd_AssetInfo_origin_chain = md_AssetInfo.Fields().ByName("origin_chain")
fd_AssetInfo_origin_denom = md_AssetInfo.Fields().ByName("origin_denom")
fd_AssetInfo_decimals = md_AssetInfo.Fields().ByName("decimals")
fd_AssetInfo_description = md_AssetInfo.Fields().ByName("description")
fd_AssetInfo_image_url = md_AssetInfo.Fields().ByName("image_url")
fd_AssetInfo_coingecko_id = md_AssetInfo.Fields().ByName("coingecko_id")
fd_AssetInfo_is_enabled = md_AssetInfo.Fields().ByName("is_enabled")
fd_AssetInfo_ibc_path = md_AssetInfo.Fields().ByName("ibc_path")
fd_AssetInfo_ibc_channel = md_AssetInfo.Fields().ByName("ibc_channel")
fd_AssetInfo_ibc_port = md_AssetInfo.Fields().ByName("ibc_port")
}
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var _ protoreflect.Message = (*fastReflection_AssetInfo)(nil)
type fastReflection_AssetInfo AssetInfo
func (x *AssetInfo) ProtoReflect() protoreflect.Message {
return (*fastReflection_AssetInfo)(x)
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}
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func (x *AssetInfo) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_genesis_proto_msgTypes[2]
if protoimpl.UnsafeEnabled && x != nil {
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ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
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if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
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}
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return mi.MessageOf(x)
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}
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var _fastReflection_AssetInfo_messageType fastReflection_AssetInfo_messageType
var _ protoreflect.MessageType = fastReflection_AssetInfo_messageType{}
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type fastReflection_AssetInfo_messageType struct{}
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func (x fastReflection_AssetInfo_messageType) Zero() protoreflect.Message {
return (*fastReflection_AssetInfo)(nil)
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}
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func (x fastReflection_AssetInfo_messageType) New() protoreflect.Message {
return new(fastReflection_AssetInfo)
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}
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func (x fastReflection_AssetInfo_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_AssetInfo
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}
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// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_AssetInfo) Descriptor() protoreflect.MessageDescriptor {
return md_AssetInfo
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}
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// Type returns the message type, which encapsulates both Go and protobuf
// type information. If the Go type information is not needed,
// it is recommended that the message descriptor be used instead.
func (x *fastReflection_AssetInfo) Type() protoreflect.MessageType {
return _fastReflection_AssetInfo_messageType
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}
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// New returns a newly allocated and mutable empty message.
func (x *fastReflection_AssetInfo) New() protoreflect.Message {
return new(fastReflection_AssetInfo)
}
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// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_AssetInfo) Interface() protoreflect.ProtoMessage {
return (*AssetInfo)(x)
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}
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// Range iterates over every populated field in an undefined order,
// calling f for each field descriptor and value encountered.
// Range returns immediately if f returns false.
// While iterating, mutating operations may only be performed
// on the current field descriptor.
func (x *fastReflection_AssetInfo) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Id != "" {
value := protoreflect.ValueOfString(x.Id)
if !f(fd_AssetInfo_id, value) {
return
}
}
if x.Denom != "" {
value := protoreflect.ValueOfString(x.Denom)
if !f(fd_AssetInfo_denom, value) {
return
}
}
if x.Symbol != "" {
value := protoreflect.ValueOfString(x.Symbol)
if !f(fd_AssetInfo_symbol, value) {
return
}
}
if x.AssetType != "" {
value := protoreflect.ValueOfString(x.AssetType)
if !f(fd_AssetInfo_asset_type, value) {
return
}
}
if x.OriginChain != "" {
value := protoreflect.ValueOfString(x.OriginChain)
if !f(fd_AssetInfo_origin_chain, value) {
return
}
}
if x.OriginDenom != "" {
value := protoreflect.ValueOfString(x.OriginDenom)
if !f(fd_AssetInfo_origin_denom, value) {
return
}
}
if x.Decimals != int32(0) {
value := protoreflect.ValueOfInt32(x.Decimals)
if !f(fd_AssetInfo_decimals, value) {
return
}
}
if x.Description != "" {
value := protoreflect.ValueOfString(x.Description)
if !f(fd_AssetInfo_description, value) {
return
}
}
if x.ImageUrl != "" {
value := protoreflect.ValueOfString(x.ImageUrl)
if !f(fd_AssetInfo_image_url, value) {
return
}
}
if x.CoingeckoId != "" {
value := protoreflect.ValueOfString(x.CoingeckoId)
if !f(fd_AssetInfo_coingecko_id, value) {
return
}
}
if x.IsEnabled != false {
value := protoreflect.ValueOfBool(x.IsEnabled)
if !f(fd_AssetInfo_is_enabled, value) {
return
}
}
if x.IbcPath != "" {
value := protoreflect.ValueOfString(x.IbcPath)
if !f(fd_AssetInfo_ibc_path, value) {
return
}
}
if x.IbcChannel != "" {
value := protoreflect.ValueOfString(x.IbcChannel)
if !f(fd_AssetInfo_ibc_channel, value) {
return
}
}
if x.IbcPort != "" {
value := protoreflect.ValueOfString(x.IbcPort)
if !f(fd_AssetInfo_ibc_port, value) {
return
}
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}
}
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// Has reports whether a field is populated.
//
// Some fields have the property of nullability where it is possible to
// distinguish between the default value of a field and whether the field
// was explicitly populated with the default value. Singular message fields,
// member fields of a oneof, and proto2 scalar fields are nullable. Such
// fields are populated only if explicitly set.
//
// In other cases (aside from the nullable cases above),
// a proto3 scalar field is populated if it contains a non-zero value, and
// a repeated field is populated if it is non-empty.
func (x *fastReflection_AssetInfo) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.AssetInfo.id":
return x.Id != ""
case "did.v1.AssetInfo.denom":
return x.Denom != ""
case "did.v1.AssetInfo.symbol":
return x.Symbol != ""
case "did.v1.AssetInfo.asset_type":
return x.AssetType != ""
case "did.v1.AssetInfo.origin_chain":
return x.OriginChain != ""
case "did.v1.AssetInfo.origin_denom":
return x.OriginDenom != ""
case "did.v1.AssetInfo.decimals":
return x.Decimals != int32(0)
case "did.v1.AssetInfo.description":
return x.Description != ""
case "did.v1.AssetInfo.image_url":
return x.ImageUrl != ""
case "did.v1.AssetInfo.coingecko_id":
return x.CoingeckoId != ""
case "did.v1.AssetInfo.is_enabled":
return x.IsEnabled != false
case "did.v1.AssetInfo.ibc_path":
return x.IbcPath != ""
case "did.v1.AssetInfo.ibc_channel":
return x.IbcChannel != ""
case "did.v1.AssetInfo.ibc_port":
return x.IbcPort != ""
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.AssetInfo"))
}
panic(fmt.Errorf("message did.v1.AssetInfo does not contain field %s", fd.FullName()))
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}
}
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// Clear clears the field such that a subsequent Has call reports false.
//
// Clearing an extension field clears both the extension type and value
// associated with the given field number.
//
// Clear is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_AssetInfo) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.AssetInfo.id":
x.Id = ""
case "did.v1.AssetInfo.denom":
x.Denom = ""
case "did.v1.AssetInfo.symbol":
x.Symbol = ""
case "did.v1.AssetInfo.asset_type":
x.AssetType = ""
case "did.v1.AssetInfo.origin_chain":
x.OriginChain = ""
case "did.v1.AssetInfo.origin_denom":
x.OriginDenom = ""
case "did.v1.AssetInfo.decimals":
x.Decimals = int32(0)
case "did.v1.AssetInfo.description":
x.Description = ""
case "did.v1.AssetInfo.image_url":
x.ImageUrl = ""
case "did.v1.AssetInfo.coingecko_id":
x.CoingeckoId = ""
case "did.v1.AssetInfo.is_enabled":
x.IsEnabled = false
case "did.v1.AssetInfo.ibc_path":
x.IbcPath = ""
case "did.v1.AssetInfo.ibc_channel":
x.IbcChannel = ""
case "did.v1.AssetInfo.ibc_port":
x.IbcPort = ""
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.AssetInfo"))
}
panic(fmt.Errorf("message did.v1.AssetInfo does not contain field %s", fd.FullName()))
}
}
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// Get retrieves the value for a field.
//
// For unpopulated scalars, it returns the default value, where
// the default value of a bytes scalar is guaranteed to be a copy.
// For unpopulated composite types, it returns an empty, read-only view
// of the value; to obtain a mutable reference, use Mutable.
func (x *fastReflection_AssetInfo) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.AssetInfo.id":
value := x.Id
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.denom":
value := x.Denom
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.symbol":
value := x.Symbol
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.asset_type":
value := x.AssetType
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.origin_chain":
value := x.OriginChain
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.origin_denom":
value := x.OriginDenom
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.decimals":
value := x.Decimals
return protoreflect.ValueOfInt32(value)
case "did.v1.AssetInfo.description":
value := x.Description
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.image_url":
value := x.ImageUrl
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.coingecko_id":
value := x.CoingeckoId
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.is_enabled":
value := x.IsEnabled
return protoreflect.ValueOfBool(value)
case "did.v1.AssetInfo.ibc_path":
value := x.IbcPath
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.ibc_channel":
value := x.IbcChannel
return protoreflect.ValueOfString(value)
case "did.v1.AssetInfo.ibc_port":
value := x.IbcPort
return protoreflect.ValueOfString(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.AssetInfo"))
}
panic(fmt.Errorf("message did.v1.AssetInfo does not contain field %s", descriptor.FullName()))
}
}
// Set stores the value for a field.
//
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType.
// When setting a composite type, it is unspecified whether the stored value
// aliases the source's memory in any way. If the composite value is an
// empty, read-only value, then it panics.
//
// Set is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_AssetInfo) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.AssetInfo.id":
x.Id = value.Interface().(string)
case "did.v1.AssetInfo.denom":
x.Denom = value.Interface().(string)
case "did.v1.AssetInfo.symbol":
x.Symbol = value.Interface().(string)
case "did.v1.AssetInfo.asset_type":
x.AssetType = value.Interface().(string)
case "did.v1.AssetInfo.origin_chain":
x.OriginChain = value.Interface().(string)
case "did.v1.AssetInfo.origin_denom":
x.OriginDenom = value.Interface().(string)
case "did.v1.AssetInfo.decimals":
x.Decimals = int32(value.Int())
case "did.v1.AssetInfo.description":
x.Description = value.Interface().(string)
case "did.v1.AssetInfo.image_url":
x.ImageUrl = value.Interface().(string)
case "did.v1.AssetInfo.coingecko_id":
x.CoingeckoId = value.Interface().(string)
case "did.v1.AssetInfo.is_enabled":
x.IsEnabled = value.Bool()
case "did.v1.AssetInfo.ibc_path":
x.IbcPath = value.Interface().(string)
case "did.v1.AssetInfo.ibc_channel":
x.IbcChannel = value.Interface().(string)
case "did.v1.AssetInfo.ibc_port":
x.IbcPort = value.Interface().(string)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.AssetInfo"))
}
panic(fmt.Errorf("message did.v1.AssetInfo does not contain field %s", fd.FullName()))
}
}
// Mutable returns a mutable reference to a composite type.
//
// If the field is unpopulated, it may allocate a composite value.
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType
// if not already stored.
// It panics if the field does not contain a composite type.
//
// Mutable is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_AssetInfo) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.AssetInfo.id":
panic(fmt.Errorf("field id of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.denom":
panic(fmt.Errorf("field denom of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.symbol":
panic(fmt.Errorf("field symbol of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.asset_type":
panic(fmt.Errorf("field asset_type of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.origin_chain":
panic(fmt.Errorf("field origin_chain of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.origin_denom":
panic(fmt.Errorf("field origin_denom of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.decimals":
panic(fmt.Errorf("field decimals of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.description":
panic(fmt.Errorf("field description of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.image_url":
panic(fmt.Errorf("field image_url of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.coingecko_id":
panic(fmt.Errorf("field coingecko_id of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.is_enabled":
panic(fmt.Errorf("field is_enabled of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.ibc_path":
panic(fmt.Errorf("field ibc_path of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.ibc_channel":
panic(fmt.Errorf("field ibc_channel of message did.v1.AssetInfo is not mutable"))
case "did.v1.AssetInfo.ibc_port":
panic(fmt.Errorf("field ibc_port of message did.v1.AssetInfo is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.AssetInfo"))
}
panic(fmt.Errorf("message did.v1.AssetInfo does not contain field %s", fd.FullName()))
}
}
// NewField returns a new value that is assignable to the field
// for the given descriptor. For scalars, this returns the default value.
// For lists, maps, and messages, this returns a new, empty, mutable value.
func (x *fastReflection_AssetInfo) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.AssetInfo.id":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.denom":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.symbol":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.asset_type":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.origin_chain":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.origin_denom":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.decimals":
return protoreflect.ValueOfInt32(int32(0))
case "did.v1.AssetInfo.description":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.image_url":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.coingecko_id":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.is_enabled":
return protoreflect.ValueOfBool(false)
case "did.v1.AssetInfo.ibc_path":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.ibc_channel":
return protoreflect.ValueOfString("")
case "did.v1.AssetInfo.ibc_port":
return protoreflect.ValueOfString("")
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.AssetInfo"))
}
panic(fmt.Errorf("message did.v1.AssetInfo does not contain field %s", fd.FullName()))
}
}
// WhichOneof reports which field within the oneof is populated,
// returning nil if none are populated.
// It panics if the oneof descriptor does not belong to this message.
func (x *fastReflection_AssetInfo) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.AssetInfo", d.FullName()))
}
panic("unreachable")
}
// GetUnknown retrieves the entire list of unknown fields.
// The caller may only mutate the contents of the RawFields
// if the mutated bytes are stored back into the message with SetUnknown.
func (x *fastReflection_AssetInfo) GetUnknown() protoreflect.RawFields {
return x.unknownFields
}
// SetUnknown stores an entire list of unknown fields.
// The raw fields must be syntactically valid according to the wire format.
// An implementation may panic if this is not the case.
// Once stored, the caller must not mutate the content of the RawFields.
// An empty RawFields may be passed to clear the fields.
//
// SetUnknown is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_AssetInfo) SetUnknown(fields protoreflect.RawFields) {
x.unknownFields = fields
}
// IsValid reports whether the message is valid.
//
// An invalid message is an empty, read-only value.
//
// An invalid message often corresponds to a nil pointer of the concrete
// message type, but the details are implementation dependent.
// Validity is not part of the protobuf data model, and may not
// be preserved in marshaling or other operations.
func (x *fastReflection_AssetInfo) IsValid() bool {
return x != nil
}
// ProtoMethods returns optional fastReflectionFeature-path implementations of various operations.
// This method may return nil.
//
// The returned methods type is identical to
// "google.golang.org/protobuf/runtime/protoiface".Methods.
// Consult the protoiface package documentation for details.
func (x *fastReflection_AssetInfo) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*AssetInfo)
if x == nil {
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: 0,
}
}
options := runtime.SizeInputToOptions(input)
_ = options
var n int
var l int
_ = l
l = len(x.Id)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Denom)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Symbol)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.AssetType)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.OriginChain)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.OriginDenom)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.Decimals != 0 {
n += 1 + runtime.Sov(uint64(x.Decimals))
}
l = len(x.Description)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.ImageUrl)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.CoingeckoId)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.IsEnabled {
n += 2
}
l = len(x.IbcPath)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.IbcChannel)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.IbcPort)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.unknownFields != nil {
n += len(x.unknownFields)
}
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: n,
}
}
marshal := func(input protoiface.MarshalInput) (protoiface.MarshalOutput, error) {
x := input.Message.Interface().(*AssetInfo)
if x == nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
options := runtime.MarshalInputToOptions(input)
_ = options
size := options.Size(x)
dAtA := make([]byte, size)
i := len(dAtA)
_ = i
var l int
_ = l
if x.unknownFields != nil {
i -= len(x.unknownFields)
copy(dAtA[i:], x.unknownFields)
}
if len(x.IbcPort) > 0 {
i -= len(x.IbcPort)
copy(dAtA[i:], x.IbcPort)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.IbcPort)))
i--
dAtA[i] = 0x72
}
if len(x.IbcChannel) > 0 {
i -= len(x.IbcChannel)
copy(dAtA[i:], x.IbcChannel)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.IbcChannel)))
i--
dAtA[i] = 0x6a
}
if len(x.IbcPath) > 0 {
i -= len(x.IbcPath)
copy(dAtA[i:], x.IbcPath)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.IbcPath)))
i--
dAtA[i] = 0x62
}
if x.IsEnabled {
i--
if x.IsEnabled {
dAtA[i] = 1
} else {
dAtA[i] = 0
}
i--
dAtA[i] = 0x58
}
if len(x.CoingeckoId) > 0 {
i -= len(x.CoingeckoId)
copy(dAtA[i:], x.CoingeckoId)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.CoingeckoId)))
i--
dAtA[i] = 0x52
}
if len(x.ImageUrl) > 0 {
i -= len(x.ImageUrl)
copy(dAtA[i:], x.ImageUrl)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.ImageUrl)))
i--
dAtA[i] = 0x4a
}
if len(x.Description) > 0 {
i -= len(x.Description)
copy(dAtA[i:], x.Description)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Description)))
i--
dAtA[i] = 0x42
}
if x.Decimals != 0 {
i = runtime.EncodeVarint(dAtA, i, uint64(x.Decimals))
i--
dAtA[i] = 0x38
}
if len(x.OriginDenom) > 0 {
i -= len(x.OriginDenom)
copy(dAtA[i:], x.OriginDenom)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.OriginDenom)))
i--
dAtA[i] = 0x32
}
if len(x.OriginChain) > 0 {
i -= len(x.OriginChain)
copy(dAtA[i:], x.OriginChain)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.OriginChain)))
i--
dAtA[i] = 0x2a
}
if len(x.AssetType) > 0 {
i -= len(x.AssetType)
copy(dAtA[i:], x.AssetType)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.AssetType)))
i--
dAtA[i] = 0x22
}
if len(x.Symbol) > 0 {
i -= len(x.Symbol)
copy(dAtA[i:], x.Symbol)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Symbol)))
i--
dAtA[i] = 0x1a
}
if len(x.Denom) > 0 {
i -= len(x.Denom)
copy(dAtA[i:], x.Denom)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Denom)))
i--
dAtA[i] = 0x12
}
if len(x.Id) > 0 {
i -= len(x.Id)
copy(dAtA[i:], x.Id)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Id)))
i--
dAtA[i] = 0xa
}
if input.Buf != nil {
input.Buf = append(input.Buf, dAtA...)
} else {
input.Buf = dAtA
}
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
unmarshal := func(input protoiface.UnmarshalInput) (protoiface.UnmarshalOutput, error) {
x := input.Message.Interface().(*AssetInfo)
if x == nil {
return protoiface.UnmarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Flags: input.Flags,
}, nil
}
options := runtime.UnmarshalInputToOptions(input)
_ = options
dAtA := input.Buf
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: AssetInfo: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: AssetInfo: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
case 1:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Id", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Id = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 2:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Denom", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Denom = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 3:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Symbol", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Symbol = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 4:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field AssetType", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.AssetType = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 5:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field OriginChain", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.OriginChain = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 6:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field OriginDenom", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.OriginDenom = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 7:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Decimals", wireType)
}
x.Decimals = 0
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
x.Decimals |= int32(b&0x7F) << shift
if b < 0x80 {
break
}
}
case 8:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Description", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Description = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 9:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field ImageUrl", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.ImageUrl = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 10:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field CoingeckoId", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.CoingeckoId = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 11:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field IsEnabled", wireType)
}
var v int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
v |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
x.IsEnabled = bool(v != 0)
case 12:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field IbcPath", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.IbcPath = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 13:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field IbcChannel", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.IbcChannel = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 14:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field IbcPort", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.IbcPort = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
default:
iNdEx = preIndex
skippy, err := runtime.Skip(dAtA[iNdEx:])
if err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if (iNdEx + skippy) > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if !options.DiscardUnknown {
x.unknownFields = append(x.unknownFields, dAtA[iNdEx:iNdEx+skippy]...)
}
iNdEx += skippy
}
}
if iNdEx > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, nil
}
return &protoiface.Methods{
NoUnkeyedLiterals: struct{}{},
Flags: protoiface.SupportMarshalDeterministic | protoiface.SupportUnmarshalDiscardUnknown,
Size: size,
Marshal: marshal,
Unmarshal: unmarshal,
Merge: nil,
CheckInitialized: nil,
}
}
var _ protoreflect.List = (*_ChainInfo_7_list)(nil)
type _ChainInfo_7_list struct {
list *[]*ChainInfo_Endpoint
}
func (x *_ChainInfo_7_list) Len() int {
if x.list == nil {
return 0
}
return len(*x.list)
}
func (x *_ChainInfo_7_list) Get(i int) protoreflect.Value {
return protoreflect.ValueOfMessage((*x.list)[i].ProtoReflect())
}
func (x *_ChainInfo_7_list) Set(i int, value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*ChainInfo_Endpoint)
(*x.list)[i] = concreteValue
}
func (x *_ChainInfo_7_list) Append(value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*ChainInfo_Endpoint)
*x.list = append(*x.list, concreteValue)
}
func (x *_ChainInfo_7_list) AppendMutable() protoreflect.Value {
v := new(ChainInfo_Endpoint)
*x.list = append(*x.list, v)
return protoreflect.ValueOfMessage(v.ProtoReflect())
}
func (x *_ChainInfo_7_list) Truncate(n int) {
for i := n; i < len(*x.list); i++ {
(*x.list)[i] = nil
}
*x.list = (*x.list)[:n]
}
func (x *_ChainInfo_7_list) NewElement() protoreflect.Value {
v := new(ChainInfo_Endpoint)
return protoreflect.ValueOfMessage(v.ProtoReflect())
}
func (x *_ChainInfo_7_list) IsValid() bool {
return x.list != nil
}
var _ protoreflect.List = (*_ChainInfo_8_list)(nil)
type _ChainInfo_8_list struct {
list *[]*ChainInfo_Endpoint
}
func (x *_ChainInfo_8_list) Len() int {
if x.list == nil {
return 0
}
return len(*x.list)
}
func (x *_ChainInfo_8_list) Get(i int) protoreflect.Value {
return protoreflect.ValueOfMessage((*x.list)[i].ProtoReflect())
}
func (x *_ChainInfo_8_list) Set(i int, value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*ChainInfo_Endpoint)
(*x.list)[i] = concreteValue
}
func (x *_ChainInfo_8_list) Append(value protoreflect.Value) {
valueUnwrapped := value.Message()
concreteValue := valueUnwrapped.Interface().(*ChainInfo_Endpoint)
*x.list = append(*x.list, concreteValue)
}
func (x *_ChainInfo_8_list) AppendMutable() protoreflect.Value {
v := new(ChainInfo_Endpoint)
*x.list = append(*x.list, v)
return protoreflect.ValueOfMessage(v.ProtoReflect())
}
func (x *_ChainInfo_8_list) Truncate(n int) {
for i := n; i < len(*x.list); i++ {
(*x.list)[i] = nil
}
*x.list = (*x.list)[:n]
}
func (x *_ChainInfo_8_list) NewElement() protoreflect.Value {
v := new(ChainInfo_Endpoint)
return protoreflect.ValueOfMessage(v.ProtoReflect())
}
func (x *_ChainInfo_8_list) IsValid() bool {
return x.list != nil
}
var (
md_ChainInfo protoreflect.MessageDescriptor
fd_ChainInfo_id protoreflect.FieldDescriptor
fd_ChainInfo_chain_id protoreflect.FieldDescriptor
fd_ChainInfo_name protoreflect.FieldDescriptor
fd_ChainInfo_symbol protoreflect.FieldDescriptor
fd_ChainInfo_bech32_prefix protoreflect.FieldDescriptor
fd_ChainInfo_genesis_time protoreflect.FieldDescriptor
fd_ChainInfo_grpc_endpoints protoreflect.FieldDescriptor
fd_ChainInfo_rest_endpoints protoreflect.FieldDescriptor
fd_ChainInfo_explorer protoreflect.FieldDescriptor
fd_ChainInfo_fee_info protoreflect.FieldDescriptor
)
func init() {
file_did_v1_genesis_proto_init()
md_ChainInfo = File_did_v1_genesis_proto.Messages().ByName("ChainInfo")
fd_ChainInfo_id = md_ChainInfo.Fields().ByName("id")
fd_ChainInfo_chain_id = md_ChainInfo.Fields().ByName("chain_id")
fd_ChainInfo_name = md_ChainInfo.Fields().ByName("name")
fd_ChainInfo_symbol = md_ChainInfo.Fields().ByName("symbol")
fd_ChainInfo_bech32_prefix = md_ChainInfo.Fields().ByName("bech32_prefix")
fd_ChainInfo_genesis_time = md_ChainInfo.Fields().ByName("genesis_time")
fd_ChainInfo_grpc_endpoints = md_ChainInfo.Fields().ByName("grpc_endpoints")
fd_ChainInfo_rest_endpoints = md_ChainInfo.Fields().ByName("rest_endpoints")
fd_ChainInfo_explorer = md_ChainInfo.Fields().ByName("explorer")
fd_ChainInfo_fee_info = md_ChainInfo.Fields().ByName("fee_info")
}
var _ protoreflect.Message = (*fastReflection_ChainInfo)(nil)
type fastReflection_ChainInfo ChainInfo
func (x *ChainInfo) ProtoReflect() protoreflect.Message {
return (*fastReflection_ChainInfo)(x)
}
func (x *ChainInfo) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_genesis_proto_msgTypes[3]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
var _fastReflection_ChainInfo_messageType fastReflection_ChainInfo_messageType
var _ protoreflect.MessageType = fastReflection_ChainInfo_messageType{}
type fastReflection_ChainInfo_messageType struct{}
func (x fastReflection_ChainInfo_messageType) Zero() protoreflect.Message {
return (*fastReflection_ChainInfo)(nil)
}
func (x fastReflection_ChainInfo_messageType) New() protoreflect.Message {
return new(fastReflection_ChainInfo)
}
func (x fastReflection_ChainInfo_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_ChainInfo
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_ChainInfo) Descriptor() protoreflect.MessageDescriptor {
return md_ChainInfo
}
// Type returns the message type, which encapsulates both Go and protobuf
// type information. If the Go type information is not needed,
// it is recommended that the message descriptor be used instead.
func (x *fastReflection_ChainInfo) Type() protoreflect.MessageType {
return _fastReflection_ChainInfo_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_ChainInfo) New() protoreflect.Message {
return new(fastReflection_ChainInfo)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_ChainInfo) Interface() protoreflect.ProtoMessage {
return (*ChainInfo)(x)
}
// Range iterates over every populated field in an undefined order,
// calling f for each field descriptor and value encountered.
// Range returns immediately if f returns false.
// While iterating, mutating operations may only be performed
// on the current field descriptor.
func (x *fastReflection_ChainInfo) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Id != "" {
value := protoreflect.ValueOfString(x.Id)
if !f(fd_ChainInfo_id, value) {
return
}
}
if x.ChainId != "" {
value := protoreflect.ValueOfString(x.ChainId)
if !f(fd_ChainInfo_chain_id, value) {
return
}
}
if x.Name != "" {
value := protoreflect.ValueOfString(x.Name)
if !f(fd_ChainInfo_name, value) {
return
}
}
if x.Symbol != "" {
value := protoreflect.ValueOfString(x.Symbol)
if !f(fd_ChainInfo_symbol, value) {
return
}
}
if x.Bech32Prefix != "" {
value := protoreflect.ValueOfString(x.Bech32Prefix)
if !f(fd_ChainInfo_bech32_prefix, value) {
return
}
}
if x.GenesisTime != "" {
value := protoreflect.ValueOfString(x.GenesisTime)
if !f(fd_ChainInfo_genesis_time, value) {
return
}
}
if len(x.GrpcEndpoints) != 0 {
value := protoreflect.ValueOfList(&_ChainInfo_7_list{list: &x.GrpcEndpoints})
if !f(fd_ChainInfo_grpc_endpoints, value) {
return
}
}
if len(x.RestEndpoints) != 0 {
value := protoreflect.ValueOfList(&_ChainInfo_8_list{list: &x.RestEndpoints})
if !f(fd_ChainInfo_rest_endpoints, value) {
return
}
}
if x.Explorer != nil {
value := protoreflect.ValueOfMessage(x.Explorer.ProtoReflect())
if !f(fd_ChainInfo_explorer, value) {
return
}
}
if x.FeeInfo != nil {
value := protoreflect.ValueOfMessage(x.FeeInfo.ProtoReflect())
if !f(fd_ChainInfo_fee_info, value) {
return
}
}
}
// Has reports whether a field is populated.
//
// Some fields have the property of nullability where it is possible to
// distinguish between the default value of a field and whether the field
// was explicitly populated with the default value. Singular message fields,
// member fields of a oneof, and proto2 scalar fields are nullable. Such
// fields are populated only if explicitly set.
//
// In other cases (aside from the nullable cases above),
// a proto3 scalar field is populated if it contains a non-zero value, and
// a repeated field is populated if it is non-empty.
func (x *fastReflection_ChainInfo) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.ChainInfo.id":
return x.Id != ""
case "did.v1.ChainInfo.chain_id":
return x.ChainId != ""
case "did.v1.ChainInfo.name":
return x.Name != ""
case "did.v1.ChainInfo.symbol":
return x.Symbol != ""
case "did.v1.ChainInfo.bech32_prefix":
return x.Bech32Prefix != ""
case "did.v1.ChainInfo.genesis_time":
return x.GenesisTime != ""
case "did.v1.ChainInfo.grpc_endpoints":
return len(x.GrpcEndpoints) != 0
case "did.v1.ChainInfo.rest_endpoints":
return len(x.RestEndpoints) != 0
case "did.v1.ChainInfo.explorer":
return x.Explorer != nil
case "did.v1.ChainInfo.fee_info":
return x.FeeInfo != nil
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo does not contain field %s", fd.FullName()))
}
}
// Clear clears the field such that a subsequent Has call reports false.
//
// Clearing an extension field clears both the extension type and value
// associated with the given field number.
//
// Clear is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.ChainInfo.id":
x.Id = ""
case "did.v1.ChainInfo.chain_id":
x.ChainId = ""
case "did.v1.ChainInfo.name":
x.Name = ""
case "did.v1.ChainInfo.symbol":
x.Symbol = ""
case "did.v1.ChainInfo.bech32_prefix":
x.Bech32Prefix = ""
case "did.v1.ChainInfo.genesis_time":
x.GenesisTime = ""
case "did.v1.ChainInfo.grpc_endpoints":
x.GrpcEndpoints = nil
case "did.v1.ChainInfo.rest_endpoints":
x.RestEndpoints = nil
case "did.v1.ChainInfo.explorer":
x.Explorer = nil
case "did.v1.ChainInfo.fee_info":
x.FeeInfo = nil
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo does not contain field %s", fd.FullName()))
}
}
// Get retrieves the value for a field.
//
// For unpopulated scalars, it returns the default value, where
// the default value of a bytes scalar is guaranteed to be a copy.
// For unpopulated composite types, it returns an empty, read-only view
// of the value; to obtain a mutable reference, use Mutable.
func (x *fastReflection_ChainInfo) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.ChainInfo.id":
value := x.Id
return protoreflect.ValueOfString(value)
case "did.v1.ChainInfo.chain_id":
value := x.ChainId
return protoreflect.ValueOfString(value)
case "did.v1.ChainInfo.name":
value := x.Name
return protoreflect.ValueOfString(value)
case "did.v1.ChainInfo.symbol":
value := x.Symbol
return protoreflect.ValueOfString(value)
case "did.v1.ChainInfo.bech32_prefix":
value := x.Bech32Prefix
return protoreflect.ValueOfString(value)
case "did.v1.ChainInfo.genesis_time":
value := x.GenesisTime
return protoreflect.ValueOfString(value)
case "did.v1.ChainInfo.grpc_endpoints":
if len(x.GrpcEndpoints) == 0 {
return protoreflect.ValueOfList(&_ChainInfo_7_list{})
}
listValue := &_ChainInfo_7_list{list: &x.GrpcEndpoints}
return protoreflect.ValueOfList(listValue)
case "did.v1.ChainInfo.rest_endpoints":
if len(x.RestEndpoints) == 0 {
return protoreflect.ValueOfList(&_ChainInfo_8_list{})
}
listValue := &_ChainInfo_8_list{list: &x.RestEndpoints}
return protoreflect.ValueOfList(listValue)
case "did.v1.ChainInfo.explorer":
value := x.Explorer
return protoreflect.ValueOfMessage(value.ProtoReflect())
case "did.v1.ChainInfo.fee_info":
value := x.FeeInfo
return protoreflect.ValueOfMessage(value.ProtoReflect())
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo does not contain field %s", descriptor.FullName()))
}
}
// Set stores the value for a field.
//
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType.
// When setting a composite type, it is unspecified whether the stored value
// aliases the source's memory in any way. If the composite value is an
// empty, read-only value, then it panics.
//
// Set is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.ChainInfo.id":
x.Id = value.Interface().(string)
case "did.v1.ChainInfo.chain_id":
x.ChainId = value.Interface().(string)
case "did.v1.ChainInfo.name":
x.Name = value.Interface().(string)
case "did.v1.ChainInfo.symbol":
x.Symbol = value.Interface().(string)
case "did.v1.ChainInfo.bech32_prefix":
x.Bech32Prefix = value.Interface().(string)
case "did.v1.ChainInfo.genesis_time":
x.GenesisTime = value.Interface().(string)
case "did.v1.ChainInfo.grpc_endpoints":
lv := value.List()
clv := lv.(*_ChainInfo_7_list)
x.GrpcEndpoints = *clv.list
case "did.v1.ChainInfo.rest_endpoints":
lv := value.List()
clv := lv.(*_ChainInfo_8_list)
x.RestEndpoints = *clv.list
case "did.v1.ChainInfo.explorer":
x.Explorer = value.Message().Interface().(*ChainInfo_ExplorerInfo)
case "did.v1.ChainInfo.fee_info":
x.FeeInfo = value.Message().Interface().(*ChainInfo_FeeInfo)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo does not contain field %s", fd.FullName()))
}
}
// Mutable returns a mutable reference to a composite type.
//
// If the field is unpopulated, it may allocate a composite value.
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType
// if not already stored.
// It panics if the field does not contain a composite type.
//
// Mutable is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.ChainInfo.grpc_endpoints":
if x.GrpcEndpoints == nil {
x.GrpcEndpoints = []*ChainInfo_Endpoint{}
}
value := &_ChainInfo_7_list{list: &x.GrpcEndpoints}
return protoreflect.ValueOfList(value)
case "did.v1.ChainInfo.rest_endpoints":
if x.RestEndpoints == nil {
x.RestEndpoints = []*ChainInfo_Endpoint{}
}
value := &_ChainInfo_8_list{list: &x.RestEndpoints}
return protoreflect.ValueOfList(value)
case "did.v1.ChainInfo.explorer":
if x.Explorer == nil {
x.Explorer = new(ChainInfo_ExplorerInfo)
}
return protoreflect.ValueOfMessage(x.Explorer.ProtoReflect())
case "did.v1.ChainInfo.fee_info":
if x.FeeInfo == nil {
x.FeeInfo = new(ChainInfo_FeeInfo)
}
return protoreflect.ValueOfMessage(x.FeeInfo.ProtoReflect())
case "did.v1.ChainInfo.id":
panic(fmt.Errorf("field id of message did.v1.ChainInfo is not mutable"))
case "did.v1.ChainInfo.chain_id":
panic(fmt.Errorf("field chain_id of message did.v1.ChainInfo is not mutable"))
case "did.v1.ChainInfo.name":
panic(fmt.Errorf("field name of message did.v1.ChainInfo is not mutable"))
case "did.v1.ChainInfo.symbol":
panic(fmt.Errorf("field symbol of message did.v1.ChainInfo is not mutable"))
case "did.v1.ChainInfo.bech32_prefix":
panic(fmt.Errorf("field bech32_prefix of message did.v1.ChainInfo is not mutable"))
case "did.v1.ChainInfo.genesis_time":
panic(fmt.Errorf("field genesis_time of message did.v1.ChainInfo is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo does not contain field %s", fd.FullName()))
}
}
// NewField returns a new value that is assignable to the field
// for the given descriptor. For scalars, this returns the default value.
// For lists, maps, and messages, this returns a new, empty, mutable value.
func (x *fastReflection_ChainInfo) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.ChainInfo.id":
return protoreflect.ValueOfString("")
case "did.v1.ChainInfo.chain_id":
return protoreflect.ValueOfString("")
case "did.v1.ChainInfo.name":
return protoreflect.ValueOfString("")
case "did.v1.ChainInfo.symbol":
return protoreflect.ValueOfString("")
case "did.v1.ChainInfo.bech32_prefix":
return protoreflect.ValueOfString("")
case "did.v1.ChainInfo.genesis_time":
return protoreflect.ValueOfString("")
case "did.v1.ChainInfo.grpc_endpoints":
list := []*ChainInfo_Endpoint{}
return protoreflect.ValueOfList(&_ChainInfo_7_list{list: &list})
case "did.v1.ChainInfo.rest_endpoints":
list := []*ChainInfo_Endpoint{}
return protoreflect.ValueOfList(&_ChainInfo_8_list{list: &list})
case "did.v1.ChainInfo.explorer":
m := new(ChainInfo_ExplorerInfo)
return protoreflect.ValueOfMessage(m.ProtoReflect())
case "did.v1.ChainInfo.fee_info":
m := new(ChainInfo_FeeInfo)
return protoreflect.ValueOfMessage(m.ProtoReflect())
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo does not contain field %s", fd.FullName()))
}
}
// WhichOneof reports which field within the oneof is populated,
// returning nil if none are populated.
// It panics if the oneof descriptor does not belong to this message.
func (x *fastReflection_ChainInfo) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.ChainInfo", d.FullName()))
}
panic("unreachable")
}
// GetUnknown retrieves the entire list of unknown fields.
// The caller may only mutate the contents of the RawFields
// if the mutated bytes are stored back into the message with SetUnknown.
func (x *fastReflection_ChainInfo) GetUnknown() protoreflect.RawFields {
return x.unknownFields
}
// SetUnknown stores an entire list of unknown fields.
// The raw fields must be syntactically valid according to the wire format.
// An implementation may panic if this is not the case.
// Once stored, the caller must not mutate the content of the RawFields.
// An empty RawFields may be passed to clear the fields.
//
// SetUnknown is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo) SetUnknown(fields protoreflect.RawFields) {
x.unknownFields = fields
}
// IsValid reports whether the message is valid.
//
// An invalid message is an empty, read-only value.
//
// An invalid message often corresponds to a nil pointer of the concrete
// message type, but the details are implementation dependent.
// Validity is not part of the protobuf data model, and may not
// be preserved in marshaling or other operations.
func (x *fastReflection_ChainInfo) IsValid() bool {
return x != nil
}
// ProtoMethods returns optional fastReflectionFeature-path implementations of various operations.
// This method may return nil.
//
// The returned methods type is identical to
// "google.golang.org/protobuf/runtime/protoiface".Methods.
// Consult the protoiface package documentation for details.
func (x *fastReflection_ChainInfo) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*ChainInfo)
if x == nil {
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: 0,
}
}
options := runtime.SizeInputToOptions(input)
_ = options
var n int
var l int
_ = l
l = len(x.Id)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.ChainId)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Name)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Symbol)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Bech32Prefix)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.GenesisTime)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if len(x.GrpcEndpoints) > 0 {
for _, e := range x.GrpcEndpoints {
l = options.Size(e)
n += 1 + l + runtime.Sov(uint64(l))
}
}
if len(x.RestEndpoints) > 0 {
for _, e := range x.RestEndpoints {
l = options.Size(e)
n += 1 + l + runtime.Sov(uint64(l))
}
}
if x.Explorer != nil {
l = options.Size(x.Explorer)
n += 1 + l + runtime.Sov(uint64(l))
}
if x.FeeInfo != nil {
l = options.Size(x.FeeInfo)
n += 1 + l + runtime.Sov(uint64(l))
}
if x.unknownFields != nil {
n += len(x.unknownFields)
}
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: n,
}
}
marshal := func(input protoiface.MarshalInput) (protoiface.MarshalOutput, error) {
x := input.Message.Interface().(*ChainInfo)
if x == nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
options := runtime.MarshalInputToOptions(input)
_ = options
size := options.Size(x)
dAtA := make([]byte, size)
i := len(dAtA)
_ = i
var l int
_ = l
if x.unknownFields != nil {
i -= len(x.unknownFields)
copy(dAtA[i:], x.unknownFields)
}
if x.FeeInfo != nil {
encoded, err := options.Marshal(x.FeeInfo)
if err != nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, err
}
i -= len(encoded)
copy(dAtA[i:], encoded)
i = runtime.EncodeVarint(dAtA, i, uint64(len(encoded)))
i--
dAtA[i] = 0x52
}
if x.Explorer != nil {
encoded, err := options.Marshal(x.Explorer)
if err != nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, err
}
i -= len(encoded)
copy(dAtA[i:], encoded)
i = runtime.EncodeVarint(dAtA, i, uint64(len(encoded)))
i--
dAtA[i] = 0x4a
}
if len(x.RestEndpoints) > 0 {
for iNdEx := len(x.RestEndpoints) - 1; iNdEx >= 0; iNdEx-- {
encoded, err := options.Marshal(x.RestEndpoints[iNdEx])
if err != nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, err
}
i -= len(encoded)
copy(dAtA[i:], encoded)
i = runtime.EncodeVarint(dAtA, i, uint64(len(encoded)))
i--
dAtA[i] = 0x42
}
}
if len(x.GrpcEndpoints) > 0 {
for iNdEx := len(x.GrpcEndpoints) - 1; iNdEx >= 0; iNdEx-- {
encoded, err := options.Marshal(x.GrpcEndpoints[iNdEx])
if err != nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, err
}
i -= len(encoded)
copy(dAtA[i:], encoded)
i = runtime.EncodeVarint(dAtA, i, uint64(len(encoded)))
i--
dAtA[i] = 0x3a
}
}
if len(x.GenesisTime) > 0 {
i -= len(x.GenesisTime)
copy(dAtA[i:], x.GenesisTime)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.GenesisTime)))
i--
dAtA[i] = 0x32
}
if len(x.Bech32Prefix) > 0 {
i -= len(x.Bech32Prefix)
copy(dAtA[i:], x.Bech32Prefix)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Bech32Prefix)))
i--
dAtA[i] = 0x2a
}
if len(x.Symbol) > 0 {
i -= len(x.Symbol)
copy(dAtA[i:], x.Symbol)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Symbol)))
i--
dAtA[i] = 0x22
}
if len(x.Name) > 0 {
i -= len(x.Name)
copy(dAtA[i:], x.Name)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Name)))
i--
dAtA[i] = 0x1a
}
if len(x.ChainId) > 0 {
i -= len(x.ChainId)
copy(dAtA[i:], x.ChainId)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.ChainId)))
i--
dAtA[i] = 0x12
}
if len(x.Id) > 0 {
i -= len(x.Id)
copy(dAtA[i:], x.Id)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Id)))
i--
dAtA[i] = 0xa
}
if input.Buf != nil {
input.Buf = append(input.Buf, dAtA...)
} else {
input.Buf = dAtA
}
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
unmarshal := func(input protoiface.UnmarshalInput) (protoiface.UnmarshalOutput, error) {
x := input.Message.Interface().(*ChainInfo)
if x == nil {
return protoiface.UnmarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Flags: input.Flags,
}, nil
}
options := runtime.UnmarshalInputToOptions(input)
_ = options
dAtA := input.Buf
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: ChainInfo: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: ChainInfo: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
case 1:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Id", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Id = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 2:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field ChainId", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.ChainId = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 3:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Name", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Name = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 4:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Symbol", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Symbol = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 5:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Bech32Prefix", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Bech32Prefix = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 6:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field GenesisTime", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.GenesisTime = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 7:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field GrpcEndpoints", wireType)
}
var msglen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
msglen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if msglen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + msglen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.GrpcEndpoints = append(x.GrpcEndpoints, &ChainInfo_Endpoint{})
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.GrpcEndpoints[len(x.GrpcEndpoints)-1]); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
case 8:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field RestEndpoints", wireType)
}
var msglen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
msglen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if msglen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + msglen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.RestEndpoints = append(x.RestEndpoints, &ChainInfo_Endpoint{})
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.RestEndpoints[len(x.RestEndpoints)-1]); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
case 9:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Explorer", wireType)
}
var msglen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
msglen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if msglen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + msglen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if x.Explorer == nil {
x.Explorer = &ChainInfo_ExplorerInfo{}
}
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.Explorer); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
case 10:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field FeeInfo", wireType)
}
var msglen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
msglen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if msglen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + msglen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if x.FeeInfo == nil {
x.FeeInfo = &ChainInfo_FeeInfo{}
}
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.FeeInfo); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
default:
iNdEx = preIndex
skippy, err := runtime.Skip(dAtA[iNdEx:])
if err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if (iNdEx + skippy) > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if !options.DiscardUnknown {
x.unknownFields = append(x.unknownFields, dAtA[iNdEx:iNdEx+skippy]...)
}
iNdEx += skippy
}
}
if iNdEx > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, nil
}
return &protoiface.Methods{
NoUnkeyedLiterals: struct{}{},
Flags: protoiface.SupportMarshalDeterministic | protoiface.SupportUnmarshalDiscardUnknown,
Size: size,
Marshal: marshal,
Unmarshal: unmarshal,
Merge: nil,
CheckInitialized: nil,
}
}
var (
md_ChainInfo_Endpoint protoreflect.MessageDescriptor
fd_ChainInfo_Endpoint_url protoreflect.FieldDescriptor
fd_ChainInfo_Endpoint_is_primary protoreflect.FieldDescriptor
)
func init() {
file_did_v1_genesis_proto_init()
md_ChainInfo_Endpoint = File_did_v1_genesis_proto.Messages().ByName("ChainInfo").Messages().ByName("Endpoint")
fd_ChainInfo_Endpoint_url = md_ChainInfo_Endpoint.Fields().ByName("url")
fd_ChainInfo_Endpoint_is_primary = md_ChainInfo_Endpoint.Fields().ByName("is_primary")
}
var _ protoreflect.Message = (*fastReflection_ChainInfo_Endpoint)(nil)
type fastReflection_ChainInfo_Endpoint ChainInfo_Endpoint
func (x *ChainInfo_Endpoint) ProtoReflect() protoreflect.Message {
return (*fastReflection_ChainInfo_Endpoint)(x)
}
func (x *ChainInfo_Endpoint) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_genesis_proto_msgTypes[5]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
var _fastReflection_ChainInfo_Endpoint_messageType fastReflection_ChainInfo_Endpoint_messageType
var _ protoreflect.MessageType = fastReflection_ChainInfo_Endpoint_messageType{}
type fastReflection_ChainInfo_Endpoint_messageType struct{}
func (x fastReflection_ChainInfo_Endpoint_messageType) Zero() protoreflect.Message {
return (*fastReflection_ChainInfo_Endpoint)(nil)
}
func (x fastReflection_ChainInfo_Endpoint_messageType) New() protoreflect.Message {
return new(fastReflection_ChainInfo_Endpoint)
}
func (x fastReflection_ChainInfo_Endpoint_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_ChainInfo_Endpoint
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_ChainInfo_Endpoint) Descriptor() protoreflect.MessageDescriptor {
return md_ChainInfo_Endpoint
}
// Type returns the message type, which encapsulates both Go and protobuf
// type information. If the Go type information is not needed,
// it is recommended that the message descriptor be used instead.
func (x *fastReflection_ChainInfo_Endpoint) Type() protoreflect.MessageType {
return _fastReflection_ChainInfo_Endpoint_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_ChainInfo_Endpoint) New() protoreflect.Message {
return new(fastReflection_ChainInfo_Endpoint)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_ChainInfo_Endpoint) Interface() protoreflect.ProtoMessage {
return (*ChainInfo_Endpoint)(x)
}
// Range iterates over every populated field in an undefined order,
// calling f for each field descriptor and value encountered.
// Range returns immediately if f returns false.
// While iterating, mutating operations may only be performed
// on the current field descriptor.
func (x *fastReflection_ChainInfo_Endpoint) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Url != "" {
value := protoreflect.ValueOfString(x.Url)
if !f(fd_ChainInfo_Endpoint_url, value) {
return
}
}
if x.IsPrimary != false {
value := protoreflect.ValueOfBool(x.IsPrimary)
if !f(fd_ChainInfo_Endpoint_is_primary, value) {
return
}
}
}
// Has reports whether a field is populated.
//
// Some fields have the property of nullability where it is possible to
// distinguish between the default value of a field and whether the field
// was explicitly populated with the default value. Singular message fields,
// member fields of a oneof, and proto2 scalar fields are nullable. Such
// fields are populated only if explicitly set.
//
// In other cases (aside from the nullable cases above),
// a proto3 scalar field is populated if it contains a non-zero value, and
// a repeated field is populated if it is non-empty.
func (x *fastReflection_ChainInfo_Endpoint) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.ChainInfo.Endpoint.url":
return x.Url != ""
case "did.v1.ChainInfo.Endpoint.is_primary":
return x.IsPrimary != false
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.Endpoint"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.Endpoint does not contain field %s", fd.FullName()))
}
}
// Clear clears the field such that a subsequent Has call reports false.
//
// Clearing an extension field clears both the extension type and value
// associated with the given field number.
//
// Clear is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_Endpoint) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.ChainInfo.Endpoint.url":
x.Url = ""
case "did.v1.ChainInfo.Endpoint.is_primary":
x.IsPrimary = false
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.Endpoint"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.Endpoint does not contain field %s", fd.FullName()))
}
}
// Get retrieves the value for a field.
//
// For unpopulated scalars, it returns the default value, where
// the default value of a bytes scalar is guaranteed to be a copy.
// For unpopulated composite types, it returns an empty, read-only view
// of the value; to obtain a mutable reference, use Mutable.
func (x *fastReflection_ChainInfo_Endpoint) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.ChainInfo.Endpoint.url":
value := x.Url
return protoreflect.ValueOfString(value)
case "did.v1.ChainInfo.Endpoint.is_primary":
value := x.IsPrimary
return protoreflect.ValueOfBool(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.Endpoint"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.Endpoint does not contain field %s", descriptor.FullName()))
}
}
// Set stores the value for a field.
//
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType.
// When setting a composite type, it is unspecified whether the stored value
// aliases the source's memory in any way. If the composite value is an
// empty, read-only value, then it panics.
//
// Set is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_Endpoint) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.ChainInfo.Endpoint.url":
x.Url = value.Interface().(string)
case "did.v1.ChainInfo.Endpoint.is_primary":
x.IsPrimary = value.Bool()
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.Endpoint"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.Endpoint does not contain field %s", fd.FullName()))
}
}
// Mutable returns a mutable reference to a composite type.
//
// If the field is unpopulated, it may allocate a composite value.
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType
// if not already stored.
// It panics if the field does not contain a composite type.
//
// Mutable is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_Endpoint) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.ChainInfo.Endpoint.url":
panic(fmt.Errorf("field url of message did.v1.ChainInfo.Endpoint is not mutable"))
case "did.v1.ChainInfo.Endpoint.is_primary":
panic(fmt.Errorf("field is_primary of message did.v1.ChainInfo.Endpoint is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.Endpoint"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.Endpoint does not contain field %s", fd.FullName()))
}
}
// NewField returns a new value that is assignable to the field
// for the given descriptor. For scalars, this returns the default value.
// For lists, maps, and messages, this returns a new, empty, mutable value.
func (x *fastReflection_ChainInfo_Endpoint) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.ChainInfo.Endpoint.url":
return protoreflect.ValueOfString("")
case "did.v1.ChainInfo.Endpoint.is_primary":
return protoreflect.ValueOfBool(false)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.Endpoint"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.Endpoint does not contain field %s", fd.FullName()))
}
}
// WhichOneof reports which field within the oneof is populated,
// returning nil if none are populated.
// It panics if the oneof descriptor does not belong to this message.
func (x *fastReflection_ChainInfo_Endpoint) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.ChainInfo.Endpoint", d.FullName()))
}
panic("unreachable")
}
// GetUnknown retrieves the entire list of unknown fields.
// The caller may only mutate the contents of the RawFields
// if the mutated bytes are stored back into the message with SetUnknown.
func (x *fastReflection_ChainInfo_Endpoint) GetUnknown() protoreflect.RawFields {
return x.unknownFields
}
// SetUnknown stores an entire list of unknown fields.
// The raw fields must be syntactically valid according to the wire format.
// An implementation may panic if this is not the case.
// Once stored, the caller must not mutate the content of the RawFields.
// An empty RawFields may be passed to clear the fields.
//
// SetUnknown is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_Endpoint) SetUnknown(fields protoreflect.RawFields) {
x.unknownFields = fields
}
// IsValid reports whether the message is valid.
//
// An invalid message is an empty, read-only value.
//
// An invalid message often corresponds to a nil pointer of the concrete
// message type, but the details are implementation dependent.
// Validity is not part of the protobuf data model, and may not
// be preserved in marshaling or other operations.
func (x *fastReflection_ChainInfo_Endpoint) IsValid() bool {
return x != nil
}
// ProtoMethods returns optional fastReflectionFeature-path implementations of various operations.
// This method may return nil.
//
// The returned methods type is identical to
// "google.golang.org/protobuf/runtime/protoiface".Methods.
// Consult the protoiface package documentation for details.
func (x *fastReflection_ChainInfo_Endpoint) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*ChainInfo_Endpoint)
if x == nil {
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: 0,
}
}
options := runtime.SizeInputToOptions(input)
_ = options
var n int
var l int
_ = l
l = len(x.Url)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.IsPrimary {
n += 2
}
if x.unknownFields != nil {
n += len(x.unknownFields)
}
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: n,
}
}
marshal := func(input protoiface.MarshalInput) (protoiface.MarshalOutput, error) {
x := input.Message.Interface().(*ChainInfo_Endpoint)
if x == nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
options := runtime.MarshalInputToOptions(input)
_ = options
size := options.Size(x)
dAtA := make([]byte, size)
i := len(dAtA)
_ = i
var l int
_ = l
if x.unknownFields != nil {
i -= len(x.unknownFields)
copy(dAtA[i:], x.unknownFields)
}
if x.IsPrimary {
i--
if x.IsPrimary {
dAtA[i] = 1
} else {
dAtA[i] = 0
}
i--
dAtA[i] = 0x10
}
if len(x.Url) > 0 {
i -= len(x.Url)
copy(dAtA[i:], x.Url)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Url)))
i--
dAtA[i] = 0xa
}
if input.Buf != nil {
input.Buf = append(input.Buf, dAtA...)
} else {
input.Buf = dAtA
}
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
unmarshal := func(input protoiface.UnmarshalInput) (protoiface.UnmarshalOutput, error) {
x := input.Message.Interface().(*ChainInfo_Endpoint)
if x == nil {
return protoiface.UnmarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Flags: input.Flags,
}, nil
}
options := runtime.UnmarshalInputToOptions(input)
_ = options
dAtA := input.Buf
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: ChainInfo_Endpoint: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: ChainInfo_Endpoint: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
case 1:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Url", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Url = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 2:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field IsPrimary", wireType)
}
var v int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
v |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
x.IsPrimary = bool(v != 0)
default:
iNdEx = preIndex
skippy, err := runtime.Skip(dAtA[iNdEx:])
if err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if (iNdEx + skippy) > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if !options.DiscardUnknown {
x.unknownFields = append(x.unknownFields, dAtA[iNdEx:iNdEx+skippy]...)
}
iNdEx += skippy
}
}
if iNdEx > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, nil
}
return &protoiface.Methods{
NoUnkeyedLiterals: struct{}{},
Flags: protoiface.SupportMarshalDeterministic | protoiface.SupportUnmarshalDiscardUnknown,
Size: size,
Marshal: marshal,
Unmarshal: unmarshal,
Merge: nil,
CheckInitialized: nil,
}
}
var (
md_ChainInfo_ExplorerInfo protoreflect.MessageDescriptor
fd_ChainInfo_ExplorerInfo_name protoreflect.FieldDescriptor
fd_ChainInfo_ExplorerInfo_url protoreflect.FieldDescriptor
)
func init() {
file_did_v1_genesis_proto_init()
md_ChainInfo_ExplorerInfo = File_did_v1_genesis_proto.Messages().ByName("ChainInfo").Messages().ByName("ExplorerInfo")
fd_ChainInfo_ExplorerInfo_name = md_ChainInfo_ExplorerInfo.Fields().ByName("name")
fd_ChainInfo_ExplorerInfo_url = md_ChainInfo_ExplorerInfo.Fields().ByName("url")
}
var _ protoreflect.Message = (*fastReflection_ChainInfo_ExplorerInfo)(nil)
type fastReflection_ChainInfo_ExplorerInfo ChainInfo_ExplorerInfo
func (x *ChainInfo_ExplorerInfo) ProtoReflect() protoreflect.Message {
return (*fastReflection_ChainInfo_ExplorerInfo)(x)
}
func (x *ChainInfo_ExplorerInfo) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_genesis_proto_msgTypes[6]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
var _fastReflection_ChainInfo_ExplorerInfo_messageType fastReflection_ChainInfo_ExplorerInfo_messageType
var _ protoreflect.MessageType = fastReflection_ChainInfo_ExplorerInfo_messageType{}
type fastReflection_ChainInfo_ExplorerInfo_messageType struct{}
func (x fastReflection_ChainInfo_ExplorerInfo_messageType) Zero() protoreflect.Message {
return (*fastReflection_ChainInfo_ExplorerInfo)(nil)
}
func (x fastReflection_ChainInfo_ExplorerInfo_messageType) New() protoreflect.Message {
return new(fastReflection_ChainInfo_ExplorerInfo)
}
func (x fastReflection_ChainInfo_ExplorerInfo_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_ChainInfo_ExplorerInfo
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_ChainInfo_ExplorerInfo) Descriptor() protoreflect.MessageDescriptor {
return md_ChainInfo_ExplorerInfo
}
// Type returns the message type, which encapsulates both Go and protobuf
// type information. If the Go type information is not needed,
// it is recommended that the message descriptor be used instead.
func (x *fastReflection_ChainInfo_ExplorerInfo) Type() protoreflect.MessageType {
return _fastReflection_ChainInfo_ExplorerInfo_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_ChainInfo_ExplorerInfo) New() protoreflect.Message {
return new(fastReflection_ChainInfo_ExplorerInfo)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_ChainInfo_ExplorerInfo) Interface() protoreflect.ProtoMessage {
return (*ChainInfo_ExplorerInfo)(x)
}
// Range iterates over every populated field in an undefined order,
// calling f for each field descriptor and value encountered.
// Range returns immediately if f returns false.
// While iterating, mutating operations may only be performed
// on the current field descriptor.
func (x *fastReflection_ChainInfo_ExplorerInfo) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Name != "" {
value := protoreflect.ValueOfString(x.Name)
if !f(fd_ChainInfo_ExplorerInfo_name, value) {
return
}
}
if x.Url != "" {
value := protoreflect.ValueOfString(x.Url)
if !f(fd_ChainInfo_ExplorerInfo_url, value) {
return
}
}
}
// Has reports whether a field is populated.
//
// Some fields have the property of nullability where it is possible to
// distinguish between the default value of a field and whether the field
// was explicitly populated with the default value. Singular message fields,
// member fields of a oneof, and proto2 scalar fields are nullable. Such
// fields are populated only if explicitly set.
//
// In other cases (aside from the nullable cases above),
// a proto3 scalar field is populated if it contains a non-zero value, and
// a repeated field is populated if it is non-empty.
func (x *fastReflection_ChainInfo_ExplorerInfo) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.ChainInfo.ExplorerInfo.name":
return x.Name != ""
case "did.v1.ChainInfo.ExplorerInfo.url":
return x.Url != ""
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.ExplorerInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.ExplorerInfo does not contain field %s", fd.FullName()))
}
}
// Clear clears the field such that a subsequent Has call reports false.
//
// Clearing an extension field clears both the extension type and value
// associated with the given field number.
//
// Clear is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_ExplorerInfo) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.ChainInfo.ExplorerInfo.name":
x.Name = ""
case "did.v1.ChainInfo.ExplorerInfo.url":
x.Url = ""
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.ExplorerInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.ExplorerInfo does not contain field %s", fd.FullName()))
}
}
// Get retrieves the value for a field.
//
// For unpopulated scalars, it returns the default value, where
// the default value of a bytes scalar is guaranteed to be a copy.
// For unpopulated composite types, it returns an empty, read-only view
// of the value; to obtain a mutable reference, use Mutable.
func (x *fastReflection_ChainInfo_ExplorerInfo) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.ChainInfo.ExplorerInfo.name":
value := x.Name
return protoreflect.ValueOfString(value)
case "did.v1.ChainInfo.ExplorerInfo.url":
value := x.Url
return protoreflect.ValueOfString(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.ExplorerInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.ExplorerInfo does not contain field %s", descriptor.FullName()))
}
}
// Set stores the value for a field.
//
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType.
// When setting a composite type, it is unspecified whether the stored value
// aliases the source's memory in any way. If the composite value is an
// empty, read-only value, then it panics.
//
// Set is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_ExplorerInfo) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.ChainInfo.ExplorerInfo.name":
x.Name = value.Interface().(string)
case "did.v1.ChainInfo.ExplorerInfo.url":
x.Url = value.Interface().(string)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.ExplorerInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.ExplorerInfo does not contain field %s", fd.FullName()))
}
}
// Mutable returns a mutable reference to a composite type.
//
// If the field is unpopulated, it may allocate a composite value.
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType
// if not already stored.
// It panics if the field does not contain a composite type.
//
// Mutable is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_ExplorerInfo) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.ChainInfo.ExplorerInfo.name":
panic(fmt.Errorf("field name of message did.v1.ChainInfo.ExplorerInfo is not mutable"))
case "did.v1.ChainInfo.ExplorerInfo.url":
panic(fmt.Errorf("field url of message did.v1.ChainInfo.ExplorerInfo is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.ExplorerInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.ExplorerInfo does not contain field %s", fd.FullName()))
}
}
// NewField returns a new value that is assignable to the field
// for the given descriptor. For scalars, this returns the default value.
// For lists, maps, and messages, this returns a new, empty, mutable value.
func (x *fastReflection_ChainInfo_ExplorerInfo) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.ChainInfo.ExplorerInfo.name":
return protoreflect.ValueOfString("")
case "did.v1.ChainInfo.ExplorerInfo.url":
return protoreflect.ValueOfString("")
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.ExplorerInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.ExplorerInfo does not contain field %s", fd.FullName()))
}
}
// WhichOneof reports which field within the oneof is populated,
// returning nil if none are populated.
// It panics if the oneof descriptor does not belong to this message.
func (x *fastReflection_ChainInfo_ExplorerInfo) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.ChainInfo.ExplorerInfo", d.FullName()))
}
panic("unreachable")
}
// GetUnknown retrieves the entire list of unknown fields.
// The caller may only mutate the contents of the RawFields
// if the mutated bytes are stored back into the message with SetUnknown.
func (x *fastReflection_ChainInfo_ExplorerInfo) GetUnknown() protoreflect.RawFields {
return x.unknownFields
}
// SetUnknown stores an entire list of unknown fields.
// The raw fields must be syntactically valid according to the wire format.
// An implementation may panic if this is not the case.
// Once stored, the caller must not mutate the content of the RawFields.
// An empty RawFields may be passed to clear the fields.
//
// SetUnknown is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_ExplorerInfo) SetUnknown(fields protoreflect.RawFields) {
x.unknownFields = fields
}
// IsValid reports whether the message is valid.
//
// An invalid message is an empty, read-only value.
//
// An invalid message often corresponds to a nil pointer of the concrete
// message type, but the details are implementation dependent.
// Validity is not part of the protobuf data model, and may not
// be preserved in marshaling or other operations.
func (x *fastReflection_ChainInfo_ExplorerInfo) IsValid() bool {
return x != nil
}
// ProtoMethods returns optional fastReflectionFeature-path implementations of various operations.
// This method may return nil.
//
// The returned methods type is identical to
// "google.golang.org/protobuf/runtime/protoiface".Methods.
// Consult the protoiface package documentation for details.
func (x *fastReflection_ChainInfo_ExplorerInfo) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*ChainInfo_ExplorerInfo)
if x == nil {
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: 0,
}
}
options := runtime.SizeInputToOptions(input)
_ = options
var n int
var l int
_ = l
l = len(x.Name)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Url)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.unknownFields != nil {
n += len(x.unknownFields)
}
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: n,
}
}
marshal := func(input protoiface.MarshalInput) (protoiface.MarshalOutput, error) {
x := input.Message.Interface().(*ChainInfo_ExplorerInfo)
if x == nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
options := runtime.MarshalInputToOptions(input)
_ = options
size := options.Size(x)
dAtA := make([]byte, size)
i := len(dAtA)
_ = i
var l int
_ = l
if x.unknownFields != nil {
i -= len(x.unknownFields)
copy(dAtA[i:], x.unknownFields)
}
if len(x.Url) > 0 {
i -= len(x.Url)
copy(dAtA[i:], x.Url)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Url)))
i--
dAtA[i] = 0x12
}
if len(x.Name) > 0 {
i -= len(x.Name)
copy(dAtA[i:], x.Name)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Name)))
i--
dAtA[i] = 0xa
}
if input.Buf != nil {
input.Buf = append(input.Buf, dAtA...)
} else {
input.Buf = dAtA
}
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
unmarshal := func(input protoiface.UnmarshalInput) (protoiface.UnmarshalOutput, error) {
x := input.Message.Interface().(*ChainInfo_ExplorerInfo)
if x == nil {
return protoiface.UnmarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Flags: input.Flags,
}, nil
}
options := runtime.UnmarshalInputToOptions(input)
_ = options
dAtA := input.Buf
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: ChainInfo_ExplorerInfo: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: ChainInfo_ExplorerInfo: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
case 1:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Name", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Name = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 2:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Url", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Url = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
default:
iNdEx = preIndex
skippy, err := runtime.Skip(dAtA[iNdEx:])
if err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if (iNdEx + skippy) > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if !options.DiscardUnknown {
x.unknownFields = append(x.unknownFields, dAtA[iNdEx:iNdEx+skippy]...)
}
iNdEx += skippy
}
}
if iNdEx > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, nil
}
return &protoiface.Methods{
NoUnkeyedLiterals: struct{}{},
Flags: protoiface.SupportMarshalDeterministic | protoiface.SupportUnmarshalDiscardUnknown,
Size: size,
Marshal: marshal,
Unmarshal: unmarshal,
Merge: nil,
CheckInitialized: nil,
}
}
var _ protoreflect.List = (*_ChainInfo_FeeInfo_2_list)(nil)
type _ChainInfo_FeeInfo_2_list struct {
list *[]string
}
func (x *_ChainInfo_FeeInfo_2_list) Len() int {
if x.list == nil {
return 0
}
return len(*x.list)
}
func (x *_ChainInfo_FeeInfo_2_list) Get(i int) protoreflect.Value {
return protoreflect.ValueOfString((*x.list)[i])
}
func (x *_ChainInfo_FeeInfo_2_list) Set(i int, value protoreflect.Value) {
valueUnwrapped := value.String()
concreteValue := valueUnwrapped
(*x.list)[i] = concreteValue
}
func (x *_ChainInfo_FeeInfo_2_list) Append(value protoreflect.Value) {
valueUnwrapped := value.String()
concreteValue := valueUnwrapped
*x.list = append(*x.list, concreteValue)
}
func (x *_ChainInfo_FeeInfo_2_list) AppendMutable() protoreflect.Value {
panic(fmt.Errorf("AppendMutable can not be called on message ChainInfo_FeeInfo at list field FeeRates as it is not of Message kind"))
}
func (x *_ChainInfo_FeeInfo_2_list) Truncate(n int) {
*x.list = (*x.list)[:n]
}
func (x *_ChainInfo_FeeInfo_2_list) NewElement() protoreflect.Value {
v := ""
return protoreflect.ValueOfString(v)
}
func (x *_ChainInfo_FeeInfo_2_list) IsValid() bool {
return x.list != nil
}
var (
md_ChainInfo_FeeInfo protoreflect.MessageDescriptor
fd_ChainInfo_FeeInfo_base_denom protoreflect.FieldDescriptor
fd_ChainInfo_FeeInfo_fee_rates protoreflect.FieldDescriptor
fd_ChainInfo_FeeInfo_init_gas_limit protoreflect.FieldDescriptor
fd_ChainInfo_FeeInfo_is_simulable protoreflect.FieldDescriptor
fd_ChainInfo_FeeInfo_gas_multiply protoreflect.FieldDescriptor
)
func init() {
file_did_v1_genesis_proto_init()
md_ChainInfo_FeeInfo = File_did_v1_genesis_proto.Messages().ByName("ChainInfo").Messages().ByName("FeeInfo")
fd_ChainInfo_FeeInfo_base_denom = md_ChainInfo_FeeInfo.Fields().ByName("base_denom")
fd_ChainInfo_FeeInfo_fee_rates = md_ChainInfo_FeeInfo.Fields().ByName("fee_rates")
fd_ChainInfo_FeeInfo_init_gas_limit = md_ChainInfo_FeeInfo.Fields().ByName("init_gas_limit")
fd_ChainInfo_FeeInfo_is_simulable = md_ChainInfo_FeeInfo.Fields().ByName("is_simulable")
fd_ChainInfo_FeeInfo_gas_multiply = md_ChainInfo_FeeInfo.Fields().ByName("gas_multiply")
}
var _ protoreflect.Message = (*fastReflection_ChainInfo_FeeInfo)(nil)
type fastReflection_ChainInfo_FeeInfo ChainInfo_FeeInfo
func (x *ChainInfo_FeeInfo) ProtoReflect() protoreflect.Message {
return (*fastReflection_ChainInfo_FeeInfo)(x)
}
func (x *ChainInfo_FeeInfo) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_genesis_proto_msgTypes[7]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
var _fastReflection_ChainInfo_FeeInfo_messageType fastReflection_ChainInfo_FeeInfo_messageType
var _ protoreflect.MessageType = fastReflection_ChainInfo_FeeInfo_messageType{}
type fastReflection_ChainInfo_FeeInfo_messageType struct{}
func (x fastReflection_ChainInfo_FeeInfo_messageType) Zero() protoreflect.Message {
return (*fastReflection_ChainInfo_FeeInfo)(nil)
}
func (x fastReflection_ChainInfo_FeeInfo_messageType) New() protoreflect.Message {
return new(fastReflection_ChainInfo_FeeInfo)
}
func (x fastReflection_ChainInfo_FeeInfo_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_ChainInfo_FeeInfo
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_ChainInfo_FeeInfo) Descriptor() protoreflect.MessageDescriptor {
return md_ChainInfo_FeeInfo
}
// Type returns the message type, which encapsulates both Go and protobuf
// type information. If the Go type information is not needed,
// it is recommended that the message descriptor be used instead.
func (x *fastReflection_ChainInfo_FeeInfo) Type() protoreflect.MessageType {
return _fastReflection_ChainInfo_FeeInfo_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_ChainInfo_FeeInfo) New() protoreflect.Message {
return new(fastReflection_ChainInfo_FeeInfo)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_ChainInfo_FeeInfo) Interface() protoreflect.ProtoMessage {
return (*ChainInfo_FeeInfo)(x)
}
// Range iterates over every populated field in an undefined order,
// calling f for each field descriptor and value encountered.
// Range returns immediately if f returns false.
// While iterating, mutating operations may only be performed
// on the current field descriptor.
func (x *fastReflection_ChainInfo_FeeInfo) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.BaseDenom != "" {
value := protoreflect.ValueOfString(x.BaseDenom)
if !f(fd_ChainInfo_FeeInfo_base_denom, value) {
return
}
}
if len(x.FeeRates) != 0 {
value := protoreflect.ValueOfList(&_ChainInfo_FeeInfo_2_list{list: &x.FeeRates})
if !f(fd_ChainInfo_FeeInfo_fee_rates, value) {
return
}
}
if x.InitGasLimit != int32(0) {
value := protoreflect.ValueOfInt32(x.InitGasLimit)
if !f(fd_ChainInfo_FeeInfo_init_gas_limit, value) {
return
}
}
if x.IsSimulable != false {
value := protoreflect.ValueOfBool(x.IsSimulable)
if !f(fd_ChainInfo_FeeInfo_is_simulable, value) {
return
}
}
if x.GasMultiply != float64(0) || math.Signbit(x.GasMultiply) {
value := protoreflect.ValueOfFloat64(x.GasMultiply)
if !f(fd_ChainInfo_FeeInfo_gas_multiply, value) {
return
}
}
}
// Has reports whether a field is populated.
//
// Some fields have the property of nullability where it is possible to
// distinguish between the default value of a field and whether the field
// was explicitly populated with the default value. Singular message fields,
// member fields of a oneof, and proto2 scalar fields are nullable. Such
// fields are populated only if explicitly set.
//
// In other cases (aside from the nullable cases above),
// a proto3 scalar field is populated if it contains a non-zero value, and
// a repeated field is populated if it is non-empty.
func (x *fastReflection_ChainInfo_FeeInfo) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.ChainInfo.FeeInfo.base_denom":
return x.BaseDenom != ""
case "did.v1.ChainInfo.FeeInfo.fee_rates":
return len(x.FeeRates) != 0
case "did.v1.ChainInfo.FeeInfo.init_gas_limit":
return x.InitGasLimit != int32(0)
case "did.v1.ChainInfo.FeeInfo.is_simulable":
return x.IsSimulable != false
case "did.v1.ChainInfo.FeeInfo.gas_multiply":
return x.GasMultiply != float64(0) || math.Signbit(x.GasMultiply)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.FeeInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.FeeInfo does not contain field %s", fd.FullName()))
}
}
// Clear clears the field such that a subsequent Has call reports false.
//
// Clearing an extension field clears both the extension type and value
// associated with the given field number.
//
// Clear is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_FeeInfo) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.ChainInfo.FeeInfo.base_denom":
x.BaseDenom = ""
case "did.v1.ChainInfo.FeeInfo.fee_rates":
x.FeeRates = nil
case "did.v1.ChainInfo.FeeInfo.init_gas_limit":
x.InitGasLimit = int32(0)
case "did.v1.ChainInfo.FeeInfo.is_simulable":
x.IsSimulable = false
case "did.v1.ChainInfo.FeeInfo.gas_multiply":
x.GasMultiply = float64(0)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.FeeInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.FeeInfo does not contain field %s", fd.FullName()))
}
}
// Get retrieves the value for a field.
//
// For unpopulated scalars, it returns the default value, where
// the default value of a bytes scalar is guaranteed to be a copy.
// For unpopulated composite types, it returns an empty, read-only view
// of the value; to obtain a mutable reference, use Mutable.
func (x *fastReflection_ChainInfo_FeeInfo) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.ChainInfo.FeeInfo.base_denom":
value := x.BaseDenom
return protoreflect.ValueOfString(value)
case "did.v1.ChainInfo.FeeInfo.fee_rates":
if len(x.FeeRates) == 0 {
return protoreflect.ValueOfList(&_ChainInfo_FeeInfo_2_list{})
}
listValue := &_ChainInfo_FeeInfo_2_list{list: &x.FeeRates}
return protoreflect.ValueOfList(listValue)
case "did.v1.ChainInfo.FeeInfo.init_gas_limit":
value := x.InitGasLimit
return protoreflect.ValueOfInt32(value)
case "did.v1.ChainInfo.FeeInfo.is_simulable":
value := x.IsSimulable
return protoreflect.ValueOfBool(value)
case "did.v1.ChainInfo.FeeInfo.gas_multiply":
value := x.GasMultiply
return protoreflect.ValueOfFloat64(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.FeeInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.FeeInfo does not contain field %s", descriptor.FullName()))
}
}
// Set stores the value for a field.
//
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType.
// When setting a composite type, it is unspecified whether the stored value
// aliases the source's memory in any way. If the composite value is an
// empty, read-only value, then it panics.
//
// Set is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_FeeInfo) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.ChainInfo.FeeInfo.base_denom":
x.BaseDenom = value.Interface().(string)
case "did.v1.ChainInfo.FeeInfo.fee_rates":
lv := value.List()
clv := lv.(*_ChainInfo_FeeInfo_2_list)
x.FeeRates = *clv.list
case "did.v1.ChainInfo.FeeInfo.init_gas_limit":
x.InitGasLimit = int32(value.Int())
case "did.v1.ChainInfo.FeeInfo.is_simulable":
x.IsSimulable = value.Bool()
case "did.v1.ChainInfo.FeeInfo.gas_multiply":
x.GasMultiply = value.Float()
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.FeeInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.FeeInfo does not contain field %s", fd.FullName()))
}
}
// Mutable returns a mutable reference to a composite type.
//
// If the field is unpopulated, it may allocate a composite value.
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType
// if not already stored.
// It panics if the field does not contain a composite type.
//
// Mutable is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_FeeInfo) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.ChainInfo.FeeInfo.fee_rates":
if x.FeeRates == nil {
x.FeeRates = []string{}
}
value := &_ChainInfo_FeeInfo_2_list{list: &x.FeeRates}
return protoreflect.ValueOfList(value)
case "did.v1.ChainInfo.FeeInfo.base_denom":
panic(fmt.Errorf("field base_denom of message did.v1.ChainInfo.FeeInfo is not mutable"))
case "did.v1.ChainInfo.FeeInfo.init_gas_limit":
panic(fmt.Errorf("field init_gas_limit of message did.v1.ChainInfo.FeeInfo is not mutable"))
case "did.v1.ChainInfo.FeeInfo.is_simulable":
panic(fmt.Errorf("field is_simulable of message did.v1.ChainInfo.FeeInfo is not mutable"))
case "did.v1.ChainInfo.FeeInfo.gas_multiply":
panic(fmt.Errorf("field gas_multiply of message did.v1.ChainInfo.FeeInfo is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.FeeInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.FeeInfo does not contain field %s", fd.FullName()))
}
}
// NewField returns a new value that is assignable to the field
// for the given descriptor. For scalars, this returns the default value.
// For lists, maps, and messages, this returns a new, empty, mutable value.
func (x *fastReflection_ChainInfo_FeeInfo) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.ChainInfo.FeeInfo.base_denom":
return protoreflect.ValueOfString("")
case "did.v1.ChainInfo.FeeInfo.fee_rates":
list := []string{}
return protoreflect.ValueOfList(&_ChainInfo_FeeInfo_2_list{list: &list})
case "did.v1.ChainInfo.FeeInfo.init_gas_limit":
return protoreflect.ValueOfInt32(int32(0))
case "did.v1.ChainInfo.FeeInfo.is_simulable":
return protoreflect.ValueOfBool(false)
case "did.v1.ChainInfo.FeeInfo.gas_multiply":
return protoreflect.ValueOfFloat64(float64(0))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.ChainInfo.FeeInfo"))
}
panic(fmt.Errorf("message did.v1.ChainInfo.FeeInfo does not contain field %s", fd.FullName()))
}
}
// WhichOneof reports which field within the oneof is populated,
// returning nil if none are populated.
// It panics if the oneof descriptor does not belong to this message.
func (x *fastReflection_ChainInfo_FeeInfo) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.ChainInfo.FeeInfo", d.FullName()))
}
panic("unreachable")
}
// GetUnknown retrieves the entire list of unknown fields.
// The caller may only mutate the contents of the RawFields
// if the mutated bytes are stored back into the message with SetUnknown.
func (x *fastReflection_ChainInfo_FeeInfo) GetUnknown() protoreflect.RawFields {
return x.unknownFields
}
// SetUnknown stores an entire list of unknown fields.
// The raw fields must be syntactically valid according to the wire format.
// An implementation may panic if this is not the case.
// Once stored, the caller must not mutate the content of the RawFields.
// An empty RawFields may be passed to clear the fields.
//
// SetUnknown is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_ChainInfo_FeeInfo) SetUnknown(fields protoreflect.RawFields) {
x.unknownFields = fields
}
// IsValid reports whether the message is valid.
//
// An invalid message is an empty, read-only value.
//
// An invalid message often corresponds to a nil pointer of the concrete
// message type, but the details are implementation dependent.
// Validity is not part of the protobuf data model, and may not
// be preserved in marshaling or other operations.
func (x *fastReflection_ChainInfo_FeeInfo) IsValid() bool {
return x != nil
}
// ProtoMethods returns optional fastReflectionFeature-path implementations of various operations.
// This method may return nil.
//
// The returned methods type is identical to
// "google.golang.org/protobuf/runtime/protoiface".Methods.
// Consult the protoiface package documentation for details.
func (x *fastReflection_ChainInfo_FeeInfo) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*ChainInfo_FeeInfo)
if x == nil {
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: 0,
}
}
options := runtime.SizeInputToOptions(input)
_ = options
var n int
var l int
_ = l
l = len(x.BaseDenom)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if len(x.FeeRates) > 0 {
for _, s := range x.FeeRates {
l = len(s)
n += 1 + l + runtime.Sov(uint64(l))
}
}
if x.InitGasLimit != 0 {
n += 1 + runtime.Sov(uint64(x.InitGasLimit))
}
if x.IsSimulable {
n += 2
}
if x.GasMultiply != 0 || math.Signbit(x.GasMultiply) {
n += 9
}
if x.unknownFields != nil {
n += len(x.unknownFields)
}
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: n,
}
}
marshal := func(input protoiface.MarshalInput) (protoiface.MarshalOutput, error) {
x := input.Message.Interface().(*ChainInfo_FeeInfo)
if x == nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
options := runtime.MarshalInputToOptions(input)
_ = options
size := options.Size(x)
dAtA := make([]byte, size)
i := len(dAtA)
_ = i
var l int
_ = l
if x.unknownFields != nil {
i -= len(x.unknownFields)
copy(dAtA[i:], x.unknownFields)
}
if x.GasMultiply != 0 || math.Signbit(x.GasMultiply) {
i -= 8
binary.LittleEndian.PutUint64(dAtA[i:], uint64(math.Float64bits(float64(x.GasMultiply))))
i--
dAtA[i] = 0x29
}
if x.IsSimulable {
i--
if x.IsSimulable {
dAtA[i] = 1
} else {
dAtA[i] = 0
}
i--
dAtA[i] = 0x20
}
if x.InitGasLimit != 0 {
i = runtime.EncodeVarint(dAtA, i, uint64(x.InitGasLimit))
i--
dAtA[i] = 0x18
}
if len(x.FeeRates) > 0 {
for iNdEx := len(x.FeeRates) - 1; iNdEx >= 0; iNdEx-- {
i -= len(x.FeeRates[iNdEx])
copy(dAtA[i:], x.FeeRates[iNdEx])
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.FeeRates[iNdEx])))
i--
dAtA[i] = 0x12
}
}
if len(x.BaseDenom) > 0 {
i -= len(x.BaseDenom)
copy(dAtA[i:], x.BaseDenom)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.BaseDenom)))
i--
dAtA[i] = 0xa
}
if input.Buf != nil {
input.Buf = append(input.Buf, dAtA...)
} else {
input.Buf = dAtA
}
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
unmarshal := func(input protoiface.UnmarshalInput) (protoiface.UnmarshalOutput, error) {
x := input.Message.Interface().(*ChainInfo_FeeInfo)
if x == nil {
return protoiface.UnmarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Flags: input.Flags,
}, nil
}
options := runtime.UnmarshalInputToOptions(input)
_ = options
dAtA := input.Buf
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: ChainInfo_FeeInfo: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: ChainInfo_FeeInfo: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
case 1:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field BaseDenom", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.BaseDenom = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 2:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field FeeRates", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.FeeRates = append(x.FeeRates, string(dAtA[iNdEx:postIndex]))
iNdEx = postIndex
case 3:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field InitGasLimit", wireType)
}
x.InitGasLimit = 0
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
x.InitGasLimit |= int32(b&0x7F) << shift
if b < 0x80 {
break
}
}
case 4:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field IsSimulable", wireType)
}
var v int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
v |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
x.IsSimulable = bool(v != 0)
case 5:
if wireType != 1 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field GasMultiply", wireType)
}
var v uint64
if (iNdEx + 8) > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
v = uint64(binary.LittleEndian.Uint64(dAtA[iNdEx:]))
iNdEx += 8
x.GasMultiply = float64(math.Float64frombits(v))
default:
iNdEx = preIndex
skippy, err := runtime.Skip(dAtA[iNdEx:])
if err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if (iNdEx + skippy) > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if !options.DiscardUnknown {
x.unknownFields = append(x.unknownFields, dAtA[iNdEx:iNdEx+skippy]...)
}
iNdEx += skippy
}
}
if iNdEx > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, nil
}
return &protoiface.Methods{
NoUnkeyedLiterals: struct{}{},
Flags: protoiface.SupportMarshalDeterministic | protoiface.SupportUnmarshalDiscardUnknown,
Size: size,
Marshal: marshal,
Unmarshal: unmarshal,
Merge: nil,
CheckInitialized: nil,
}
}
var (
md_KeyInfo protoreflect.MessageDescriptor
fd_KeyInfo_kind protoreflect.FieldDescriptor
fd_KeyInfo_algorithm protoreflect.FieldDescriptor
fd_KeyInfo_curve protoreflect.FieldDescriptor
fd_KeyInfo_encoding protoreflect.FieldDescriptor
)
func init() {
file_did_v1_genesis_proto_init()
md_KeyInfo = File_did_v1_genesis_proto.Messages().ByName("KeyInfo")
fd_KeyInfo_kind = md_KeyInfo.Fields().ByName("kind")
fd_KeyInfo_algorithm = md_KeyInfo.Fields().ByName("algorithm")
fd_KeyInfo_curve = md_KeyInfo.Fields().ByName("curve")
fd_KeyInfo_encoding = md_KeyInfo.Fields().ByName("encoding")
}
var _ protoreflect.Message = (*fastReflection_KeyInfo)(nil)
type fastReflection_KeyInfo KeyInfo
func (x *KeyInfo) ProtoReflect() protoreflect.Message {
return (*fastReflection_KeyInfo)(x)
}
func (x *KeyInfo) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_genesis_proto_msgTypes[4]
if protoimpl.UnsafeEnabled && x != nil {
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
if ms.LoadMessageInfo() == nil {
ms.StoreMessageInfo(mi)
}
return ms
}
return mi.MessageOf(x)
}
var _fastReflection_KeyInfo_messageType fastReflection_KeyInfo_messageType
var _ protoreflect.MessageType = fastReflection_KeyInfo_messageType{}
type fastReflection_KeyInfo_messageType struct{}
func (x fastReflection_KeyInfo_messageType) Zero() protoreflect.Message {
return (*fastReflection_KeyInfo)(nil)
}
func (x fastReflection_KeyInfo_messageType) New() protoreflect.Message {
return new(fastReflection_KeyInfo)
}
func (x fastReflection_KeyInfo_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_KeyInfo
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_KeyInfo) Descriptor() protoreflect.MessageDescriptor {
return md_KeyInfo
}
// Type returns the message type, which encapsulates both Go and protobuf
// type information. If the Go type information is not needed,
// it is recommended that the message descriptor be used instead.
func (x *fastReflection_KeyInfo) Type() protoreflect.MessageType {
return _fastReflection_KeyInfo_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_KeyInfo) New() protoreflect.Message {
return new(fastReflection_KeyInfo)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_KeyInfo) Interface() protoreflect.ProtoMessage {
return (*KeyInfo)(x)
}
// Range iterates over every populated field in an undefined order,
// calling f for each field descriptor and value encountered.
// Range returns immediately if f returns false.
// While iterating, mutating operations may only be performed
// on the current field descriptor.
func (x *fastReflection_KeyInfo) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Kind != 0 {
value := protoreflect.ValueOfEnum((protoreflect.EnumNumber)(x.Kind))
if !f(fd_KeyInfo_kind, value) {
return
}
}
if x.Algorithm != "" {
value := protoreflect.ValueOfString(x.Algorithm)
if !f(fd_KeyInfo_algorithm, value) {
return
}
}
if x.Curve != "" {
value := protoreflect.ValueOfString(x.Curve)
if !f(fd_KeyInfo_curve, value) {
return
}
}
if x.Encoding != "" {
value := protoreflect.ValueOfString(x.Encoding)
if !f(fd_KeyInfo_encoding, value) {
return
}
}
}
// Has reports whether a field is populated.
//
// Some fields have the property of nullability where it is possible to
// distinguish between the default value of a field and whether the field
// was explicitly populated with the default value. Singular message fields,
// member fields of a oneof, and proto2 scalar fields are nullable. Such
// fields are populated only if explicitly set.
//
// In other cases (aside from the nullable cases above),
// a proto3 scalar field is populated if it contains a non-zero value, and
// a repeated field is populated if it is non-empty.
func (x *fastReflection_KeyInfo) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.KeyInfo.kind":
return x.Kind != 0
case "did.v1.KeyInfo.algorithm":
return x.Algorithm != ""
case "did.v1.KeyInfo.curve":
return x.Curve != ""
case "did.v1.KeyInfo.encoding":
return x.Encoding != ""
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.KeyInfo"))
}
panic(fmt.Errorf("message did.v1.KeyInfo does not contain field %s", fd.FullName()))
}
}
// Clear clears the field such that a subsequent Has call reports false.
//
// Clearing an extension field clears both the extension type and value
// associated with the given field number.
//
// Clear is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_KeyInfo) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.KeyInfo.kind":
x.Kind = 0
case "did.v1.KeyInfo.algorithm":
x.Algorithm = ""
case "did.v1.KeyInfo.curve":
x.Curve = ""
case "did.v1.KeyInfo.encoding":
x.Encoding = ""
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.KeyInfo"))
}
panic(fmt.Errorf("message did.v1.KeyInfo does not contain field %s", fd.FullName()))
}
}
// Get retrieves the value for a field.
//
// For unpopulated scalars, it returns the default value, where
// the default value of a bytes scalar is guaranteed to be a copy.
// For unpopulated composite types, it returns an empty, read-only view
// of the value; to obtain a mutable reference, use Mutable.
func (x *fastReflection_KeyInfo) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.KeyInfo.kind":
value := x.Kind
return protoreflect.ValueOfEnum((protoreflect.EnumNumber)(value))
case "did.v1.KeyInfo.algorithm":
value := x.Algorithm
return protoreflect.ValueOfString(value)
case "did.v1.KeyInfo.curve":
value := x.Curve
return protoreflect.ValueOfString(value)
case "did.v1.KeyInfo.encoding":
value := x.Encoding
return protoreflect.ValueOfString(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.KeyInfo"))
}
panic(fmt.Errorf("message did.v1.KeyInfo does not contain field %s", descriptor.FullName()))
}
}
// Set stores the value for a field.
//
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType.
// When setting a composite type, it is unspecified whether the stored value
// aliases the source's memory in any way. If the composite value is an
// empty, read-only value, then it panics.
//
// Set is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_KeyInfo) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.KeyInfo.kind":
x.Kind = (KeyType)(value.Enum())
case "did.v1.KeyInfo.algorithm":
x.Algorithm = value.Interface().(string)
case "did.v1.KeyInfo.curve":
x.Curve = value.Interface().(string)
case "did.v1.KeyInfo.encoding":
x.Encoding = value.Interface().(string)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.KeyInfo"))
}
panic(fmt.Errorf("message did.v1.KeyInfo does not contain field %s", fd.FullName()))
}
}
// Mutable returns a mutable reference to a composite type.
//
// If the field is unpopulated, it may allocate a composite value.
// For a field belonging to a oneof, it implicitly clears any other field
// that may be currently set within the same oneof.
// For extension fields, it implicitly stores the provided ExtensionType
// if not already stored.
// It panics if the field does not contain a composite type.
//
// Mutable is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_KeyInfo) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.KeyInfo.kind":
panic(fmt.Errorf("field kind of message did.v1.KeyInfo is not mutable"))
case "did.v1.KeyInfo.algorithm":
panic(fmt.Errorf("field algorithm of message did.v1.KeyInfo is not mutable"))
case "did.v1.KeyInfo.curve":
panic(fmt.Errorf("field curve of message did.v1.KeyInfo is not mutable"))
case "did.v1.KeyInfo.encoding":
panic(fmt.Errorf("field encoding of message did.v1.KeyInfo is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.KeyInfo"))
}
panic(fmt.Errorf("message did.v1.KeyInfo does not contain field %s", fd.FullName()))
}
}
// NewField returns a new value that is assignable to the field
// for the given descriptor. For scalars, this returns the default value.
// For lists, maps, and messages, this returns a new, empty, mutable value.
func (x *fastReflection_KeyInfo) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.KeyInfo.kind":
return protoreflect.ValueOfEnum(0)
case "did.v1.KeyInfo.algorithm":
return protoreflect.ValueOfString("")
case "did.v1.KeyInfo.curve":
return protoreflect.ValueOfString("")
case "did.v1.KeyInfo.encoding":
return protoreflect.ValueOfString("")
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.KeyInfo"))
}
panic(fmt.Errorf("message did.v1.KeyInfo does not contain field %s", fd.FullName()))
}
}
// WhichOneof reports which field within the oneof is populated,
// returning nil if none are populated.
// It panics if the oneof descriptor does not belong to this message.
func (x *fastReflection_KeyInfo) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.KeyInfo", d.FullName()))
}
panic("unreachable")
}
// GetUnknown retrieves the entire list of unknown fields.
// The caller may only mutate the contents of the RawFields
// if the mutated bytes are stored back into the message with SetUnknown.
func (x *fastReflection_KeyInfo) GetUnknown() protoreflect.RawFields {
return x.unknownFields
}
// SetUnknown stores an entire list of unknown fields.
// The raw fields must be syntactically valid according to the wire format.
// An implementation may panic if this is not the case.
// Once stored, the caller must not mutate the content of the RawFields.
// An empty RawFields may be passed to clear the fields.
//
// SetUnknown is a mutating operation and unsafe for concurrent use.
func (x *fastReflection_KeyInfo) SetUnknown(fields protoreflect.RawFields) {
x.unknownFields = fields
}
// IsValid reports whether the message is valid.
//
// An invalid message is an empty, read-only value.
//
// An invalid message often corresponds to a nil pointer of the concrete
// message type, but the details are implementation dependent.
// Validity is not part of the protobuf data model, and may not
// be preserved in marshaling or other operations.
func (x *fastReflection_KeyInfo) IsValid() bool {
return x != nil
}
// ProtoMethods returns optional fastReflectionFeature-path implementations of various operations.
// This method may return nil.
//
// The returned methods type is identical to
// "google.golang.org/protobuf/runtime/protoiface".Methods.
// Consult the protoiface package documentation for details.
func (x *fastReflection_KeyInfo) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*KeyInfo)
if x == nil {
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: 0,
}
}
options := runtime.SizeInputToOptions(input)
_ = options
var n int
var l int
_ = l
if x.Kind != 0 {
n += 1 + runtime.Sov(uint64(x.Kind))
}
l = len(x.Algorithm)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Curve)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Encoding)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.unknownFields != nil {
n += len(x.unknownFields)
}
return protoiface.SizeOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Size: n,
}
}
marshal := func(input protoiface.MarshalInput) (protoiface.MarshalOutput, error) {
x := input.Message.Interface().(*KeyInfo)
if x == nil {
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
options := runtime.MarshalInputToOptions(input)
_ = options
size := options.Size(x)
dAtA := make([]byte, size)
i := len(dAtA)
_ = i
var l int
_ = l
if x.unknownFields != nil {
i -= len(x.unknownFields)
copy(dAtA[i:], x.unknownFields)
}
if len(x.Encoding) > 0 {
i -= len(x.Encoding)
copy(dAtA[i:], x.Encoding)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Encoding)))
i--
dAtA[i] = 0x22
}
if len(x.Curve) > 0 {
i -= len(x.Curve)
copy(dAtA[i:], x.Curve)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Curve)))
i--
dAtA[i] = 0x1a
}
if len(x.Algorithm) > 0 {
i -= len(x.Algorithm)
copy(dAtA[i:], x.Algorithm)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Algorithm)))
i--
dAtA[i] = 0x12
}
if x.Kind != 0 {
i = runtime.EncodeVarint(dAtA, i, uint64(x.Kind))
i--
dAtA[i] = 0x8
}
if input.Buf != nil {
input.Buf = append(input.Buf, dAtA...)
} else {
input.Buf = dAtA
}
return protoiface.MarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Buf: input.Buf,
}, nil
}
unmarshal := func(input protoiface.UnmarshalInput) (protoiface.UnmarshalOutput, error) {
x := input.Message.Interface().(*KeyInfo)
if x == nil {
return protoiface.UnmarshalOutput{
NoUnkeyedLiterals: input.NoUnkeyedLiterals,
Flags: input.Flags,
}, nil
}
options := runtime.UnmarshalInputToOptions(input)
_ = options
dAtA := input.Buf
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: KeyInfo: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: KeyInfo: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
case 1:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Kind", wireType)
}
x.Kind = 0
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
x.Kind |= KeyType(b&0x7F) << shift
if b < 0x80 {
break
}
}
case 2:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Algorithm", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Algorithm = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 3:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Curve", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Curve = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 4:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Encoding", wireType)
}
var stringLen uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
if iNdEx >= l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
if postIndex < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
x.Encoding = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
default:
iNdEx = preIndex
skippy, err := runtime.Skip(dAtA[iNdEx:])
if err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if (iNdEx + skippy) > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
if !options.DiscardUnknown {
x.unknownFields = append(x.unknownFields, dAtA[iNdEx:iNdEx+skippy]...)
}
iNdEx += skippy
}
}
if iNdEx > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, nil
}
return &protoiface.Methods{
NoUnkeyedLiterals: struct{}{},
Flags: protoiface.SupportMarshalDeterministic | protoiface.SupportUnmarshalDiscardUnknown,
Size: size,
Marshal: marshal,
Unmarshal: unmarshal,
Merge: nil,
CheckInitialized: nil,
}
}
// Code generated by protoc-gen-go. DO NOT EDIT.
// versions:
// protoc-gen-go v1.27.0
// protoc (unknown)
// source: did/v1/genesis.proto
const (
// Verify that this generated code is sufficiently up-to-date.
_ = protoimpl.EnforceVersion(20 - protoimpl.MinVersion)
// Verify that runtime/protoimpl is sufficiently up-to-date.
_ = protoimpl.EnforceVersion(protoimpl.MaxVersion - 20)
)
// DIDNamespace define the different namespaces of DID
type DIDNamespace int32
const (
DIDNamespace_DID_NAMESPACE_UNSPECIFIED DIDNamespace = 0
DIDNamespace_DID_NAMESPACE_IPFS DIDNamespace = 1
DIDNamespace_DID_NAMESPACE_SONR DIDNamespace = 2
DIDNamespace_DID_NAMESPACE_BITCOIN DIDNamespace = 3
DIDNamespace_DID_NAMESPACE_ETHEREUM DIDNamespace = 4
DIDNamespace_DID_NAMESPACE_IBC DIDNamespace = 5
)
// Enum value maps for DIDNamespace.
var (
DIDNamespace_name = map[int32]string{
0: "DID_NAMESPACE_UNSPECIFIED",
1: "DID_NAMESPACE_IPFS",
2: "DID_NAMESPACE_SONR",
3: "DID_NAMESPACE_BITCOIN",
4: "DID_NAMESPACE_ETHEREUM",
5: "DID_NAMESPACE_IBC",
}
DIDNamespace_value = map[string]int32{
"DID_NAMESPACE_UNSPECIFIED": 0,
"DID_NAMESPACE_IPFS": 1,
"DID_NAMESPACE_SONR": 2,
"DID_NAMESPACE_BITCOIN": 3,
"DID_NAMESPACE_ETHEREUM": 4,
"DID_NAMESPACE_IBC": 5,
}
)
func (x DIDNamespace) Enum() *DIDNamespace {
p := new(DIDNamespace)
*p = x
return p
}
func (x DIDNamespace) String() string {
return protoimpl.X.EnumStringOf(x.Descriptor(), protoreflect.EnumNumber(x))
}
func (DIDNamespace) Descriptor() protoreflect.EnumDescriptor {
return file_did_v1_genesis_proto_enumTypes[0].Descriptor()
}
func (DIDNamespace) Type() protoreflect.EnumType {
return &file_did_v1_genesis_proto_enumTypes[0]
}
func (x DIDNamespace) Number() protoreflect.EnumNumber {
return protoreflect.EnumNumber(x)
}
// Deprecated: Use DIDNamespace.Descriptor instead.
func (DIDNamespace) EnumDescriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{0}
}
// KeyKTind defines the kind of key
type KeyType int32
const (
KeyType_KEY_TYPE_UNSPECIFIED KeyType = 0
// Blockchain key types
KeyType_KEY_TYPE_SECP256K1 KeyType = 1 // cross-chain
KeyType_KEY_TYPE_ED25519 KeyType = 2 // validators
KeyType_KEY_TYPE_KECCAK KeyType = 3 // ethereum addresses
KeyType_KEY_TYPE_BLS12381 KeyType = 4 // zero-knowledge
KeyType_KEY_TYPE_X25519 KeyType = 5 // multisig
KeyType_KEY_TYPE_SCHNORR KeyType = 6 // mpc
// Webauthn and FIDO key types
KeyType_KEY_TYPE_WEBAUTHN KeyType = 7 // passkey authentication
KeyType_KEY_TYPE_FIDO KeyType = 8 // fido2 authentication
)
// Enum value maps for KeyType.
var (
KeyType_name = map[int32]string{
0: "KEY_TYPE_UNSPECIFIED",
1: "KEY_TYPE_SECP256K1",
2: "KEY_TYPE_ED25519",
3: "KEY_TYPE_KECCAK",
4: "KEY_TYPE_BLS12381",
5: "KEY_TYPE_X25519",
6: "KEY_TYPE_SCHNORR",
7: "KEY_TYPE_WEBAUTHN",
8: "KEY_TYPE_FIDO",
}
KeyType_value = map[string]int32{
"KEY_TYPE_UNSPECIFIED": 0,
"KEY_TYPE_SECP256K1": 1,
"KEY_TYPE_ED25519": 2,
"KEY_TYPE_KECCAK": 3,
"KEY_TYPE_BLS12381": 4,
"KEY_TYPE_X25519": 5,
"KEY_TYPE_SCHNORR": 6,
"KEY_TYPE_WEBAUTHN": 7,
"KEY_TYPE_FIDO": 8,
}
)
func (x KeyType) Enum() *KeyType {
p := new(KeyType)
*p = x
return p
}
func (x KeyType) String() string {
return protoimpl.X.EnumStringOf(x.Descriptor(), protoreflect.EnumNumber(x))
}
func (KeyType) Descriptor() protoreflect.EnumDescriptor {
return file_did_v1_genesis_proto_enumTypes[1].Descriptor()
}
func (KeyType) Type() protoreflect.EnumType {
return &file_did_v1_genesis_proto_enumTypes[1]
}
func (x KeyType) Number() protoreflect.EnumNumber {
return protoreflect.EnumNumber(x)
}
// Deprecated: Use KeyType.Descriptor instead.
func (KeyType) EnumDescriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{1}
}
// PermissionScope define the Capabilities Controllers can grant for Services
type PermissionScope int32
const (
PermissionScope_PERMISSION_SCOPE_UNSPECIFIED PermissionScope = 0
PermissionScope_PERMISSION_SCOPE_BASIC_INFO PermissionScope = 1
PermissionScope_PERMISSION_SCOPE_RECORDS_READ PermissionScope = 2
PermissionScope_PERMISSION_SCOPE_RECORDS_WRITE PermissionScope = 3
PermissionScope_PERMISSION_SCOPE_TRANSACTIONS_READ PermissionScope = 4
PermissionScope_PERMISSION_SCOPE_TRANSACTIONS_WRITE PermissionScope = 5
PermissionScope_PERMISSION_SCOPE_WALLETS_READ PermissionScope = 6
PermissionScope_PERMISSION_SCOPE_WALLETS_CREATE PermissionScope = 7
PermissionScope_PERMISSION_SCOPE_WALLETS_SUBSCRIBE PermissionScope = 8
PermissionScope_PERMISSION_SCOPE_WALLETS_UPDATE PermissionScope = 9
PermissionScope_PERMISSION_SCOPE_TRANSACTIONS_VERIFY PermissionScope = 10
PermissionScope_PERMISSION_SCOPE_TRANSACTIONS_BROADCAST PermissionScope = 11
PermissionScope_PERMISSION_SCOPE_ADMIN_USER PermissionScope = 12
PermissionScope_PERMISSION_SCOPE_ADMIN_VALIDATOR PermissionScope = 13
)
// Enum value maps for PermissionScope.
var (
PermissionScope_name = map[int32]string{
0: "PERMISSION_SCOPE_UNSPECIFIED",
1: "PERMISSION_SCOPE_BASIC_INFO",
2: "PERMISSION_SCOPE_RECORDS_READ",
3: "PERMISSION_SCOPE_RECORDS_WRITE",
4: "PERMISSION_SCOPE_TRANSACTIONS_READ",
5: "PERMISSION_SCOPE_TRANSACTIONS_WRITE",
6: "PERMISSION_SCOPE_WALLETS_READ",
7: "PERMISSION_SCOPE_WALLETS_CREATE",
8: "PERMISSION_SCOPE_WALLETS_SUBSCRIBE",
9: "PERMISSION_SCOPE_WALLETS_UPDATE",
10: "PERMISSION_SCOPE_TRANSACTIONS_VERIFY",
11: "PERMISSION_SCOPE_TRANSACTIONS_BROADCAST",
12: "PERMISSION_SCOPE_ADMIN_USER",
13: "PERMISSION_SCOPE_ADMIN_VALIDATOR",
}
PermissionScope_value = map[string]int32{
"PERMISSION_SCOPE_UNSPECIFIED": 0,
"PERMISSION_SCOPE_BASIC_INFO": 1,
"PERMISSION_SCOPE_RECORDS_READ": 2,
"PERMISSION_SCOPE_RECORDS_WRITE": 3,
"PERMISSION_SCOPE_TRANSACTIONS_READ": 4,
"PERMISSION_SCOPE_TRANSACTIONS_WRITE": 5,
"PERMISSION_SCOPE_WALLETS_READ": 6,
"PERMISSION_SCOPE_WALLETS_CREATE": 7,
"PERMISSION_SCOPE_WALLETS_SUBSCRIBE": 8,
"PERMISSION_SCOPE_WALLETS_UPDATE": 9,
"PERMISSION_SCOPE_TRANSACTIONS_VERIFY": 10,
"PERMISSION_SCOPE_TRANSACTIONS_BROADCAST": 11,
"PERMISSION_SCOPE_ADMIN_USER": 12,
"PERMISSION_SCOPE_ADMIN_VALIDATOR": 13,
}
)
func (x PermissionScope) Enum() *PermissionScope {
p := new(PermissionScope)
*p = x
return p
}
func (x PermissionScope) String() string {
return protoimpl.X.EnumStringOf(x.Descriptor(), protoreflect.EnumNumber(x))
}
func (PermissionScope) Descriptor() protoreflect.EnumDescriptor {
return file_did_v1_genesis_proto_enumTypes[2].Descriptor()
}
func (PermissionScope) Type() protoreflect.EnumType {
return &file_did_v1_genesis_proto_enumTypes[2]
}
func (x PermissionScope) Number() protoreflect.EnumNumber {
return protoreflect.EnumNumber(x)
}
// Deprecated: Use PermissionScope.Descriptor instead.
func (PermissionScope) EnumDescriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{2}
}
// GenesisState defines the module genesis state
type GenesisState struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// Params defines all the parameters of the module.
Params *Params `protobuf:"bytes,1,opt,name=params,proto3" json:"params,omitempty"`
}
func (x *GenesisState) Reset() {
*x = GenesisState{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_genesis_proto_msgTypes[0]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *GenesisState) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*GenesisState) ProtoMessage() {}
// Deprecated: Use GenesisState.ProtoReflect.Descriptor instead.
func (*GenesisState) Descriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{0}
}
func (x *GenesisState) GetParams() *Params {
if x != nil {
return x.Params
}
return nil
}
// Params defines the set of module parameters.
type Params struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// Whitelisted Assets
WhitelistedAssets []*AssetInfo `protobuf:"bytes,1,rep,name=whitelisted_assets,json=whitelistedAssets,proto3" json:"whitelisted_assets,omitempty"`
// Whitelisted Blockchains
WhitelistedChains []*ChainInfo `protobuf:"bytes,2,rep,name=whitelisted_chains,json=whitelistedChains,proto3" json:"whitelisted_chains,omitempty"`
// Whitelisted Key Types
AllowedPublicKeys []*KeyInfo `protobuf:"bytes,3,rep,name=allowed_public_keys,json=allowedPublicKeys,proto3" json:"allowed_public_keys,omitempty"`
}
func (x *Params) Reset() {
*x = Params{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_genesis_proto_msgTypes[1]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *Params) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*Params) ProtoMessage() {}
// Deprecated: Use Params.ProtoReflect.Descriptor instead.
func (*Params) Descriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{1}
}
func (x *Params) GetWhitelistedAssets() []*AssetInfo {
if x != nil {
return x.WhitelistedAssets
}
return nil
}
func (x *Params) GetWhitelistedChains() []*ChainInfo {
if x != nil {
return x.WhitelistedChains
}
return nil
}
func (x *Params) GetAllowedPublicKeys() []*KeyInfo {
if x != nil {
return x.AllowedPublicKeys
}
return nil
}
// AssetInfo defines the asset info
type AssetInfo struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Id string `protobuf:"bytes,1,opt,name=id,proto3" json:"id,omitempty"`
Denom string `protobuf:"bytes,2,opt,name=denom,proto3" json:"denom,omitempty"`
Symbol string `protobuf:"bytes,3,opt,name=symbol,proto3" json:"symbol,omitempty"`
AssetType string `protobuf:"bytes,4,opt,name=asset_type,json=assetType,proto3" json:"asset_type,omitempty"`
OriginChain string `protobuf:"bytes,5,opt,name=origin_chain,json=originChain,proto3" json:"origin_chain,omitempty"`
OriginDenom string `protobuf:"bytes,6,opt,name=origin_denom,json=originDenom,proto3" json:"origin_denom,omitempty"`
Decimals int32 `protobuf:"varint,7,opt,name=decimals,proto3" json:"decimals,omitempty"`
Description string `protobuf:"bytes,8,opt,name=description,proto3" json:"description,omitempty"`
ImageUrl string `protobuf:"bytes,9,opt,name=image_url,json=imageUrl,proto3" json:"image_url,omitempty"`
CoingeckoId string `protobuf:"bytes,10,opt,name=coingecko_id,json=coingeckoId,proto3" json:"coingecko_id,omitempty"`
IsEnabled bool `protobuf:"varint,11,opt,name=is_enabled,json=isEnabled,proto3" json:"is_enabled,omitempty"`
IbcPath string `protobuf:"bytes,12,opt,name=ibc_path,json=ibcPath,proto3" json:"ibc_path,omitempty"`
IbcChannel string `protobuf:"bytes,13,opt,name=ibc_channel,json=ibcChannel,proto3" json:"ibc_channel,omitempty"`
IbcPort string `protobuf:"bytes,14,opt,name=ibc_port,json=ibcPort,proto3" json:"ibc_port,omitempty"`
}
func (x *AssetInfo) Reset() {
*x = AssetInfo{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_genesis_proto_msgTypes[2]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *AssetInfo) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*AssetInfo) ProtoMessage() {}
// Deprecated: Use AssetInfo.ProtoReflect.Descriptor instead.
func (*AssetInfo) Descriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{2}
}
func (x *AssetInfo) GetId() string {
if x != nil {
return x.Id
}
return ""
}
func (x *AssetInfo) GetDenom() string {
if x != nil {
return x.Denom
}
return ""
}
func (x *AssetInfo) GetSymbol() string {
if x != nil {
return x.Symbol
}
return ""
}
func (x *AssetInfo) GetAssetType() string {
if x != nil {
return x.AssetType
}
return ""
}
func (x *AssetInfo) GetOriginChain() string {
if x != nil {
return x.OriginChain
}
return ""
}
func (x *AssetInfo) GetOriginDenom() string {
if x != nil {
return x.OriginDenom
}
return ""
}
func (x *AssetInfo) GetDecimals() int32 {
if x != nil {
return x.Decimals
}
return 0
}
func (x *AssetInfo) GetDescription() string {
if x != nil {
return x.Description
}
return ""
}
func (x *AssetInfo) GetImageUrl() string {
if x != nil {
return x.ImageUrl
}
return ""
}
func (x *AssetInfo) GetCoingeckoId() string {
if x != nil {
return x.CoingeckoId
}
return ""
}
func (x *AssetInfo) GetIsEnabled() bool {
if x != nil {
return x.IsEnabled
}
return false
}
func (x *AssetInfo) GetIbcPath() string {
if x != nil {
return x.IbcPath
}
return ""
}
func (x *AssetInfo) GetIbcChannel() string {
if x != nil {
return x.IbcChannel
}
return ""
}
func (x *AssetInfo) GetIbcPort() string {
if x != nil {
return x.IbcPort
}
return ""
}
// ChainInfo defines the chain info
type ChainInfo struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Id string `protobuf:"bytes,1,opt,name=id,proto3" json:"id,omitempty"`
ChainId string `protobuf:"bytes,2,opt,name=chain_id,json=chainId,proto3" json:"chain_id,omitempty"`
Name string `protobuf:"bytes,3,opt,name=name,proto3" json:"name,omitempty"`
Symbol string `protobuf:"bytes,4,opt,name=symbol,proto3" json:"symbol,omitempty"`
Bech32Prefix string `protobuf:"bytes,5,opt,name=bech32_prefix,json=bech32Prefix,proto3" json:"bech32_prefix,omitempty"`
GenesisTime string `protobuf:"bytes,6,opt,name=genesis_time,json=genesisTime,proto3" json:"genesis_time,omitempty"`
GrpcEndpoints []*ChainInfo_Endpoint `protobuf:"bytes,7,rep,name=grpc_endpoints,json=grpcEndpoints,proto3" json:"grpc_endpoints,omitempty"`
RestEndpoints []*ChainInfo_Endpoint `protobuf:"bytes,8,rep,name=rest_endpoints,json=restEndpoints,proto3" json:"rest_endpoints,omitempty"`
Explorer *ChainInfo_ExplorerInfo `protobuf:"bytes,9,opt,name=explorer,proto3" json:"explorer,omitempty"`
FeeInfo *ChainInfo_FeeInfo `protobuf:"bytes,10,opt,name=fee_info,json=feeInfo,proto3" json:"fee_info,omitempty"`
}
func (x *ChainInfo) Reset() {
*x = ChainInfo{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_genesis_proto_msgTypes[3]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ChainInfo) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ChainInfo) ProtoMessage() {}
// Deprecated: Use ChainInfo.ProtoReflect.Descriptor instead.
func (*ChainInfo) Descriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{3}
}
func (x *ChainInfo) GetId() string {
if x != nil {
return x.Id
}
return ""
}
func (x *ChainInfo) GetChainId() string {
if x != nil {
return x.ChainId
}
return ""
}
func (x *ChainInfo) GetName() string {
if x != nil {
return x.Name
}
return ""
}
func (x *ChainInfo) GetSymbol() string {
if x != nil {
return x.Symbol
}
return ""
}
func (x *ChainInfo) GetBech32Prefix() string {
if x != nil {
return x.Bech32Prefix
}
return ""
}
func (x *ChainInfo) GetGenesisTime() string {
if x != nil {
return x.GenesisTime
}
return ""
}
func (x *ChainInfo) GetGrpcEndpoints() []*ChainInfo_Endpoint {
if x != nil {
return x.GrpcEndpoints
}
return nil
}
func (x *ChainInfo) GetRestEndpoints() []*ChainInfo_Endpoint {
if x != nil {
return x.RestEndpoints
}
return nil
}
func (x *ChainInfo) GetExplorer() *ChainInfo_ExplorerInfo {
if x != nil {
return x.Explorer
}
return nil
}
func (x *ChainInfo) GetFeeInfo() *ChainInfo_FeeInfo {
if x != nil {
return x.FeeInfo
}
return nil
}
// KeyInfo defines information for accepted PubKey types
type KeyInfo struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Kind KeyType `protobuf:"varint,1,opt,name=kind,proto3,enum=did.v1.KeyType" json:"kind,omitempty"`
Algorithm string `protobuf:"bytes,2,opt,name=algorithm,proto3" json:"algorithm,omitempty"` // e.g., "ES256", "EdDSA", "ES256K"
Curve string `protobuf:"bytes,3,opt,name=curve,proto3" json:"curve,omitempty"` // e.g., "P-256", "Ed25519", "secp256k1"
Encoding string `protobuf:"bytes,4,opt,name=encoding,proto3" json:"encoding,omitempty"` // e.g., "hex", "base64", "multibase"
}
func (x *KeyInfo) Reset() {
*x = KeyInfo{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_genesis_proto_msgTypes[4]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *KeyInfo) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*KeyInfo) ProtoMessage() {}
// Deprecated: Use KeyInfo.ProtoReflect.Descriptor instead.
func (*KeyInfo) Descriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{4}
}
func (x *KeyInfo) GetKind() KeyType {
if x != nil {
return x.Kind
}
return KeyType_KEY_TYPE_UNSPECIFIED
}
func (x *KeyInfo) GetAlgorithm() string {
if x != nil {
return x.Algorithm
}
return ""
}
func (x *KeyInfo) GetCurve() string {
if x != nil {
return x.Curve
}
return ""
}
func (x *KeyInfo) GetEncoding() string {
if x != nil {
return x.Encoding
}
return ""
}
// Endpoint defines an endpoint
type ChainInfo_Endpoint struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Url string `protobuf:"bytes,1,opt,name=url,proto3" json:"url,omitempty"`
IsPrimary bool `protobuf:"varint,2,opt,name=is_primary,json=isPrimary,proto3" json:"is_primary,omitempty"`
}
func (x *ChainInfo_Endpoint) Reset() {
*x = ChainInfo_Endpoint{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_genesis_proto_msgTypes[5]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ChainInfo_Endpoint) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ChainInfo_Endpoint) ProtoMessage() {}
// Deprecated: Use ChainInfo_Endpoint.ProtoReflect.Descriptor instead.
func (*ChainInfo_Endpoint) Descriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{3, 0}
}
func (x *ChainInfo_Endpoint) GetUrl() string {
if x != nil {
return x.Url
}
return ""
}
func (x *ChainInfo_Endpoint) GetIsPrimary() bool {
if x != nil {
return x.IsPrimary
}
return false
}
// ExplorerInfo defines the explorer info
type ChainInfo_ExplorerInfo struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Name string `protobuf:"bytes,1,opt,name=name,proto3" json:"name,omitempty"`
Url string `protobuf:"bytes,2,opt,name=url,proto3" json:"url,omitempty"`
}
func (x *ChainInfo_ExplorerInfo) Reset() {
*x = ChainInfo_ExplorerInfo{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_genesis_proto_msgTypes[6]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ChainInfo_ExplorerInfo) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ChainInfo_ExplorerInfo) ProtoMessage() {}
// Deprecated: Use ChainInfo_ExplorerInfo.ProtoReflect.Descriptor instead.
func (*ChainInfo_ExplorerInfo) Descriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{3, 1}
}
func (x *ChainInfo_ExplorerInfo) GetName() string {
if x != nil {
return x.Name
}
return ""
}
func (x *ChainInfo_ExplorerInfo) GetUrl() string {
if x != nil {
return x.Url
}
return ""
}
// FeeInfo defines a fee info
type ChainInfo_FeeInfo struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
BaseDenom string `protobuf:"bytes,1,opt,name=base_denom,json=baseDenom,proto3" json:"base_denom,omitempty"`
FeeRates []string `protobuf:"bytes,2,rep,name=fee_rates,json=feeRates,proto3" json:"fee_rates,omitempty"`
InitGasLimit int32 `protobuf:"varint,3,opt,name=init_gas_limit,json=initGasLimit,proto3" json:"init_gas_limit,omitempty"`
IsSimulable bool `protobuf:"varint,4,opt,name=is_simulable,json=isSimulable,proto3" json:"is_simulable,omitempty"`
GasMultiply float64 `protobuf:"fixed64,5,opt,name=gas_multiply,json=gasMultiply,proto3" json:"gas_multiply,omitempty"`
}
func (x *ChainInfo_FeeInfo) Reset() {
*x = ChainInfo_FeeInfo{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_genesis_proto_msgTypes[7]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ChainInfo_FeeInfo) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ChainInfo_FeeInfo) ProtoMessage() {}
// Deprecated: Use ChainInfo_FeeInfo.ProtoReflect.Descriptor instead.
func (*ChainInfo_FeeInfo) Descriptor() ([]byte, []int) {
return file_did_v1_genesis_proto_rawDescGZIP(), []int{3, 2}
}
func (x *ChainInfo_FeeInfo) GetBaseDenom() string {
if x != nil {
return x.BaseDenom
}
return ""
}
func (x *ChainInfo_FeeInfo) GetFeeRates() []string {
if x != nil {
return x.FeeRates
}
return nil
}
func (x *ChainInfo_FeeInfo) GetInitGasLimit() int32 {
if x != nil {
return x.InitGasLimit
}
return 0
}
func (x *ChainInfo_FeeInfo) GetIsSimulable() bool {
if x != nil {
return x.IsSimulable
}
return false
}
func (x *ChainInfo_FeeInfo) GetGasMultiply() float64 {
if x != nil {
return x.GasMultiply
}
return 0
}
var File_did_v1_genesis_proto protoreflect.FileDescriptor
var file_did_v1_genesis_proto_rawDesc = []byte{
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}
var (
file_did_v1_genesis_proto_rawDescOnce sync.Once
file_did_v1_genesis_proto_rawDescData = file_did_v1_genesis_proto_rawDesc
)
func file_did_v1_genesis_proto_rawDescGZIP() []byte {
file_did_v1_genesis_proto_rawDescOnce.Do(func() {
file_did_v1_genesis_proto_rawDescData = protoimpl.X.CompressGZIP(file_did_v1_genesis_proto_rawDescData)
})
return file_did_v1_genesis_proto_rawDescData
}
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var file_did_v1_genesis_proto_enumTypes = make([]protoimpl.EnumInfo, 3)
var file_did_v1_genesis_proto_msgTypes = make([]protoimpl.MessageInfo, 8)
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var file_did_v1_genesis_proto_goTypes = []interface{}{
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(DIDNamespace)(0), // 0: did.v1.DIDNamespace
(KeyType)(0), // 1: did.v1.KeyType
(PermissionScope)(0), // 2: did.v1.PermissionScope
(*GenesisState)(nil), // 3: did.v1.GenesisState
(*Params)(nil), // 4: did.v1.Params
(*AssetInfo)(nil), // 5: did.v1.AssetInfo
(*ChainInfo)(nil), // 6: did.v1.ChainInfo
(*KeyInfo)(nil), // 7: did.v1.KeyInfo
(*ChainInfo_Endpoint)(nil), // 8: did.v1.ChainInfo.Endpoint
(*ChainInfo_ExplorerInfo)(nil), // 9: did.v1.ChainInfo.ExplorerInfo
(*ChainInfo_FeeInfo)(nil), // 10: did.v1.ChainInfo.FeeInfo
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}
var file_did_v1_genesis_proto_depIdxs = []int32{
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4, // 0: did.v1.GenesisState.params:type_name -> did.v1.Params
5, // 1: did.v1.Params.whitelisted_assets:type_name -> did.v1.AssetInfo
6, // 2: did.v1.Params.whitelisted_chains:type_name -> did.v1.ChainInfo
7, // 3: did.v1.Params.allowed_public_keys:type_name -> did.v1.KeyInfo
8, // 4: did.v1.ChainInfo.grpc_endpoints:type_name -> did.v1.ChainInfo.Endpoint
8, // 5: did.v1.ChainInfo.rest_endpoints:type_name -> did.v1.ChainInfo.Endpoint
9, // 6: did.v1.ChainInfo.explorer:type_name -> did.v1.ChainInfo.ExplorerInfo
10, // 7: did.v1.ChainInfo.fee_info:type_name -> did.v1.ChainInfo.FeeInfo
1, // 8: did.v1.KeyInfo.kind:type_name -> did.v1.KeyType
9, // [9:9] is the sub-list for method output_type
9, // [9:9] is the sub-list for method input_type
9, // [9:9] is the sub-list for extension type_name
9, // [9:9] is the sub-list for extension extendee
0, // [0:9] is the sub-list for field type_name
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}
func init() { file_did_v1_genesis_proto_init() }
func file_did_v1_genesis_proto_init() {
if File_did_v1_genesis_proto != nil {
return
}
if !protoimpl.UnsafeEnabled {
file_did_v1_genesis_proto_msgTypes[0].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*GenesisState); i {
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case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_genesis_proto_msgTypes[1].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*Params); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
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file_did_v1_genesis_proto_msgTypes[2].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*AssetInfo); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_genesis_proto_msgTypes[3].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ChainInfo); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_genesis_proto_msgTypes[4].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*KeyInfo); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_genesis_proto_msgTypes[5].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ChainInfo_Endpoint); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_genesis_proto_msgTypes[6].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ChainInfo_ExplorerInfo); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_genesis_proto_msgTypes[7].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ChainInfo_FeeInfo); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
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}
type x struct{}
out := protoimpl.TypeBuilder{
File: protoimpl.DescBuilder{
GoPackagePath: reflect.TypeOf(x{}).PkgPath(),
RawDescriptor: file_did_v1_genesis_proto_rawDesc,
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NumEnums: 3,
NumMessages: 8,
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NumExtensions: 0,
NumServices: 0,
},
GoTypes: file_did_v1_genesis_proto_goTypes,
DependencyIndexes: file_did_v1_genesis_proto_depIdxs,
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EnumInfos: file_did_v1_genesis_proto_enumTypes,
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MessageInfos: file_did_v1_genesis_proto_msgTypes,
}.Build()
File_did_v1_genesis_proto = out.File
file_did_v1_genesis_proto_rawDesc = nil
file_did_v1_genesis_proto_goTypes = nil
file_did_v1_genesis_proto_depIdxs = nil
}