sonr/api/did/v1/state.pulsar.go
Prad Nukala d04c87de43
feature/refactor types (#1101)
- **docs: remove discord badge from README**
- **fix: ensure go version is up-to-date**
- **<no value>**
- **refactor: update import paths for blocks to components**
- **feat: add Hero component template**
- **fix: update footer logo to svg**
- **feat: add Query/Sign and Query/Verify RPC methods**
- **refactor: rename Keyshares to KsVal in did/v1/state.proto**
2024-09-29 14:40:36 -04:00

6504 lines
228 KiB
Go

// Code generated by protoc-gen-go-pulsar. DO NOT EDIT.
package didv1
import (
_ "cosmossdk.io/api/cosmos/orm/v1"
fmt "fmt"
runtime "github.com/cosmos/cosmos-proto/runtime"
protoreflect "google.golang.org/protobuf/reflect/protoreflect"
protoiface "google.golang.org/protobuf/runtime/protoiface"
protoimpl "google.golang.org/protobuf/runtime/protoimpl"
io "io"
reflect "reflect"
sort "sort"
sync "sync"
)
var _ protoreflect.Map = (*_Authentication_6_map)(nil)
type _Authentication_6_map struct {
m *map[string]string
}
func (x *_Authentication_6_map) Len() int {
if x.m == nil {
return 0
}
return len(*x.m)
}
func (x *_Authentication_6_map) Range(f func(protoreflect.MapKey, protoreflect.Value) bool) {
if x.m == nil {
return
}
for k, v := range *x.m {
mapKey := (protoreflect.MapKey)(protoreflect.ValueOfString(k))
mapValue := protoreflect.ValueOfString(v)
if !f(mapKey, mapValue) {
break
}
}
}
func (x *_Authentication_6_map) Has(key protoreflect.MapKey) bool {
if x.m == nil {
return false
}
keyUnwrapped := key.String()
concreteValue := keyUnwrapped
_, ok := (*x.m)[concreteValue]
return ok
}
func (x *_Authentication_6_map) Clear(key protoreflect.MapKey) {
if x.m == nil {
return
}
keyUnwrapped := key.String()
concreteKey := keyUnwrapped
delete(*x.m, concreteKey)
}
func (x *_Authentication_6_map) Get(key protoreflect.MapKey) protoreflect.Value {
if x.m == nil {
return protoreflect.Value{}
}
keyUnwrapped := key.String()
concreteKey := keyUnwrapped
v, ok := (*x.m)[concreteKey]
if !ok {
return protoreflect.Value{}
}
return protoreflect.ValueOfString(v)
}
func (x *_Authentication_6_map) Set(key protoreflect.MapKey, value protoreflect.Value) {
if !key.IsValid() || !value.IsValid() {
panic("invalid key or value provided")
}
keyUnwrapped := key.String()
concreteKey := keyUnwrapped
valueUnwrapped := value.String()
concreteValue := valueUnwrapped
(*x.m)[concreteKey] = concreteValue
}
func (x *_Authentication_6_map) Mutable(key protoreflect.MapKey) protoreflect.Value {
panic("should not call Mutable on protoreflect.Map whose value is not of type protoreflect.Message")
}
func (x *_Authentication_6_map) NewValue() protoreflect.Value {
v := ""
return protoreflect.ValueOfString(v)
}
func (x *_Authentication_6_map) IsValid() bool {
return x.m != nil
}
var (
md_Authentication protoreflect.MessageDescriptor
fd_Authentication_did protoreflect.FieldDescriptor
fd_Authentication_controller protoreflect.FieldDescriptor
fd_Authentication_subject protoreflect.FieldDescriptor
fd_Authentication_public_key protoreflect.FieldDescriptor
fd_Authentication_credential_id protoreflect.FieldDescriptor
fd_Authentication_metadata protoreflect.FieldDescriptor
fd_Authentication_creation_block protoreflect.FieldDescriptor
)
func init() {
file_did_v1_state_proto_init()
md_Authentication = File_did_v1_state_proto.Messages().ByName("Authentication")
fd_Authentication_did = md_Authentication.Fields().ByName("did")
fd_Authentication_controller = md_Authentication.Fields().ByName("controller")
fd_Authentication_subject = md_Authentication.Fields().ByName("subject")
fd_Authentication_public_key = md_Authentication.Fields().ByName("public_key")
fd_Authentication_credential_id = md_Authentication.Fields().ByName("credential_id")
fd_Authentication_metadata = md_Authentication.Fields().ByName("metadata")
fd_Authentication_creation_block = md_Authentication.Fields().ByName("creation_block")
}
var _ protoreflect.Message = (*fastReflection_Authentication)(nil)
type fastReflection_Authentication Authentication
func (x *Authentication) ProtoReflect() protoreflect.Message {
return (*fastReflection_Authentication)(x)
}
func (x *Authentication) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_state_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_Authentication_messageType fastReflection_Authentication_messageType
var _ protoreflect.MessageType = fastReflection_Authentication_messageType{}
type fastReflection_Authentication_messageType struct{}
func (x fastReflection_Authentication_messageType) Zero() protoreflect.Message {
return (*fastReflection_Authentication)(nil)
}
func (x fastReflection_Authentication_messageType) New() protoreflect.Message {
return new(fastReflection_Authentication)
}
func (x fastReflection_Authentication_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_Authentication
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_Authentication) Descriptor() protoreflect.MessageDescriptor {
return md_Authentication
}
// 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_Authentication) Type() protoreflect.MessageType {
return _fastReflection_Authentication_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_Authentication) New() protoreflect.Message {
return new(fastReflection_Authentication)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_Authentication) Interface() protoreflect.ProtoMessage {
return (*Authentication)(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_Authentication) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Did != "" {
value := protoreflect.ValueOfString(x.Did)
if !f(fd_Authentication_did, value) {
return
}
}
if x.Controller != "" {
value := protoreflect.ValueOfString(x.Controller)
if !f(fd_Authentication_controller, value) {
return
}
}
if x.Subject != "" {
value := protoreflect.ValueOfString(x.Subject)
if !f(fd_Authentication_subject, value) {
return
}
}
if x.PublicKey != nil {
value := protoreflect.ValueOfMessage(x.PublicKey.ProtoReflect())
if !f(fd_Authentication_public_key, value) {
return
}
}
if len(x.CredentialId) != 0 {
value := protoreflect.ValueOfBytes(x.CredentialId)
if !f(fd_Authentication_credential_id, value) {
return
}
}
if len(x.Metadata) != 0 {
value := protoreflect.ValueOfMap(&_Authentication_6_map{m: &x.Metadata})
if !f(fd_Authentication_metadata, value) {
return
}
}
if x.CreationBlock != int64(0) {
value := protoreflect.ValueOfInt64(x.CreationBlock)
if !f(fd_Authentication_creation_block, 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_Authentication) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.Authentication.did":
return x.Did != ""
case "did.v1.Authentication.controller":
return x.Controller != ""
case "did.v1.Authentication.subject":
return x.Subject != ""
case "did.v1.Authentication.public_key":
return x.PublicKey != nil
case "did.v1.Authentication.credential_id":
return len(x.CredentialId) != 0
case "did.v1.Authentication.metadata":
return len(x.Metadata) != 0
case "did.v1.Authentication.creation_block":
return x.CreationBlock != int64(0)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Authentication"))
}
panic(fmt.Errorf("message did.v1.Authentication 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_Authentication) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.Authentication.did":
x.Did = ""
case "did.v1.Authentication.controller":
x.Controller = ""
case "did.v1.Authentication.subject":
x.Subject = ""
case "did.v1.Authentication.public_key":
x.PublicKey = nil
case "did.v1.Authentication.credential_id":
x.CredentialId = nil
case "did.v1.Authentication.metadata":
x.Metadata = nil
case "did.v1.Authentication.creation_block":
x.CreationBlock = int64(0)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Authentication"))
}
panic(fmt.Errorf("message did.v1.Authentication 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_Authentication) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.Authentication.did":
value := x.Did
return protoreflect.ValueOfString(value)
case "did.v1.Authentication.controller":
value := x.Controller
return protoreflect.ValueOfString(value)
case "did.v1.Authentication.subject":
value := x.Subject
return protoreflect.ValueOfString(value)
case "did.v1.Authentication.public_key":
value := x.PublicKey
return protoreflect.ValueOfMessage(value.ProtoReflect())
case "did.v1.Authentication.credential_id":
value := x.CredentialId
return protoreflect.ValueOfBytes(value)
case "did.v1.Authentication.metadata":
if len(x.Metadata) == 0 {
return protoreflect.ValueOfMap(&_Authentication_6_map{})
}
mapValue := &_Authentication_6_map{m: &x.Metadata}
return protoreflect.ValueOfMap(mapValue)
case "did.v1.Authentication.creation_block":
value := x.CreationBlock
return protoreflect.ValueOfInt64(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Authentication"))
}
panic(fmt.Errorf("message did.v1.Authentication 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_Authentication) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.Authentication.did":
x.Did = value.Interface().(string)
case "did.v1.Authentication.controller":
x.Controller = value.Interface().(string)
case "did.v1.Authentication.subject":
x.Subject = value.Interface().(string)
case "did.v1.Authentication.public_key":
x.PublicKey = value.Message().Interface().(*PubKey)
case "did.v1.Authentication.credential_id":
x.CredentialId = value.Bytes()
case "did.v1.Authentication.metadata":
mv := value.Map()
cmv := mv.(*_Authentication_6_map)
x.Metadata = *cmv.m
case "did.v1.Authentication.creation_block":
x.CreationBlock = value.Int()
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Authentication"))
}
panic(fmt.Errorf("message did.v1.Authentication 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_Authentication) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.Authentication.public_key":
if x.PublicKey == nil {
x.PublicKey = new(PubKey)
}
return protoreflect.ValueOfMessage(x.PublicKey.ProtoReflect())
case "did.v1.Authentication.metadata":
if x.Metadata == nil {
x.Metadata = make(map[string]string)
}
value := &_Authentication_6_map{m: &x.Metadata}
return protoreflect.ValueOfMap(value)
case "did.v1.Authentication.did":
panic(fmt.Errorf("field did of message did.v1.Authentication is not mutable"))
case "did.v1.Authentication.controller":
panic(fmt.Errorf("field controller of message did.v1.Authentication is not mutable"))
case "did.v1.Authentication.subject":
panic(fmt.Errorf("field subject of message did.v1.Authentication is not mutable"))
case "did.v1.Authentication.credential_id":
panic(fmt.Errorf("field credential_id of message did.v1.Authentication is not mutable"))
case "did.v1.Authentication.creation_block":
panic(fmt.Errorf("field creation_block of message did.v1.Authentication is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Authentication"))
}
panic(fmt.Errorf("message did.v1.Authentication 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_Authentication) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.Authentication.did":
return protoreflect.ValueOfString("")
case "did.v1.Authentication.controller":
return protoreflect.ValueOfString("")
case "did.v1.Authentication.subject":
return protoreflect.ValueOfString("")
case "did.v1.Authentication.public_key":
m := new(PubKey)
return protoreflect.ValueOfMessage(m.ProtoReflect())
case "did.v1.Authentication.credential_id":
return protoreflect.ValueOfBytes(nil)
case "did.v1.Authentication.metadata":
m := make(map[string]string)
return protoreflect.ValueOfMap(&_Authentication_6_map{m: &m})
case "did.v1.Authentication.creation_block":
return protoreflect.ValueOfInt64(int64(0))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Authentication"))
}
panic(fmt.Errorf("message did.v1.Authentication 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_Authentication) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.Authentication", 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_Authentication) 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_Authentication) 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_Authentication) 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_Authentication) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*Authentication)
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.Did)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Controller)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Subject)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.PublicKey != nil {
l = options.Size(x.PublicKey)
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.CredentialId)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if len(x.Metadata) > 0 {
SiZeMaP := func(k string, v string) {
mapEntrySize := 1 + len(k) + runtime.Sov(uint64(len(k))) + 1 + len(v) + runtime.Sov(uint64(len(v)))
n += mapEntrySize + 1 + runtime.Sov(uint64(mapEntrySize))
}
if options.Deterministic {
sortme := make([]string, 0, len(x.Metadata))
for k := range x.Metadata {
sortme = append(sortme, k)
}
sort.Strings(sortme)
for _, k := range sortme {
v := x.Metadata[k]
SiZeMaP(k, v)
}
} else {
for k, v := range x.Metadata {
SiZeMaP(k, v)
}
}
}
if x.CreationBlock != 0 {
n += 1 + runtime.Sov(uint64(x.CreationBlock))
}
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().(*Authentication)
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.CreationBlock != 0 {
i = runtime.EncodeVarint(dAtA, i, uint64(x.CreationBlock))
i--
dAtA[i] = 0x38
}
if len(x.Metadata) > 0 {
MaRsHaLmAp := func(k string, v string) (protoiface.MarshalOutput, error) {
baseI := i
i -= len(v)
copy(dAtA[i:], v)
i = runtime.EncodeVarint(dAtA, i, uint64(len(v)))
i--
dAtA[i] = 0x12
i -= len(k)
copy(dAtA[i:], k)
i = runtime.EncodeVarint(dAtA, i, uint64(len(k)))
i--
dAtA[i] = 0xa
i = runtime.EncodeVarint(dAtA, i, uint64(baseI-i))
i--
dAtA[i] = 0x32
return protoiface.MarshalOutput{}, nil
}
if options.Deterministic {
keysForMetadata := make([]string, 0, len(x.Metadata))
for k := range x.Metadata {
keysForMetadata = append(keysForMetadata, string(k))
}
sort.Slice(keysForMetadata, func(i, j int) bool {
return keysForMetadata[i] < keysForMetadata[j]
})
for iNdEx := len(keysForMetadata) - 1; iNdEx >= 0; iNdEx-- {
v := x.Metadata[string(keysForMetadata[iNdEx])]
out, err := MaRsHaLmAp(keysForMetadata[iNdEx], v)
if err != nil {
return out, err
}
}
} else {
for k := range x.Metadata {
v := x.Metadata[k]
out, err := MaRsHaLmAp(k, v)
if err != nil {
return out, err
}
}
}
}
if len(x.CredentialId) > 0 {
i -= len(x.CredentialId)
copy(dAtA[i:], x.CredentialId)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.CredentialId)))
i--
dAtA[i] = 0x2a
}
if x.PublicKey != nil {
encoded, err := options.Marshal(x.PublicKey)
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] = 0x22
}
if len(x.Subject) > 0 {
i -= len(x.Subject)
copy(dAtA[i:], x.Subject)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Subject)))
i--
dAtA[i] = 0x1a
}
if len(x.Controller) > 0 {
i -= len(x.Controller)
copy(dAtA[i:], x.Controller)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Controller)))
i--
dAtA[i] = 0x12
}
if len(x.Did) > 0 {
i -= len(x.Did)
copy(dAtA[i:], x.Did)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Did)))
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().(*Authentication)
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: Authentication: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: Authentication: 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 Did", 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.Did = 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 Controller", 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.Controller = 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 Subject", 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.Subject = 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 PublicKey", 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.PublicKey == nil {
x.PublicKey = &PubKey{}
}
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.PublicKey); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
case 5:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field CredentialId", wireType)
}
var byteLen 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++
byteLen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if byteLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + byteLen
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.CredentialId = append(x.CredentialId[:0], dAtA[iNdEx:postIndex]...)
if x.CredentialId == nil {
x.CredentialId = []byte{}
}
iNdEx = postIndex
case 6:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Metadata", 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.Metadata == nil {
x.Metadata = make(map[string]string)
}
var mapkey string
var mapvalue string
for iNdEx < postIndex {
entryPreIndex := 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)
if fieldNum == 1 {
var stringLenmapkey 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++
stringLenmapkey |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLenmapkey := int(stringLenmapkey)
if intStringLenmapkey < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postStringIndexmapkey := iNdEx + intStringLenmapkey
if postStringIndexmapkey < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postStringIndexmapkey > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
mapkey = string(dAtA[iNdEx:postStringIndexmapkey])
iNdEx = postStringIndexmapkey
} else if fieldNum == 2 {
var stringLenmapvalue 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++
stringLenmapvalue |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLenmapvalue := int(stringLenmapvalue)
if intStringLenmapvalue < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postStringIndexmapvalue := iNdEx + intStringLenmapvalue
if postStringIndexmapvalue < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postStringIndexmapvalue > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
mapvalue = string(dAtA[iNdEx:postStringIndexmapvalue])
iNdEx = postStringIndexmapvalue
} else {
iNdEx = entryPreIndex
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) > postIndex {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
iNdEx += skippy
}
}
x.Metadata[mapkey] = mapvalue
iNdEx = postIndex
case 7:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field CreationBlock", wireType)
}
x.CreationBlock = 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.CreationBlock |= int64(b&0x7F) << shift
if b < 0x80 {
break
}
}
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_Controller protoreflect.MessageDescriptor
fd_Controller_number protoreflect.FieldDescriptor
fd_Controller_did protoreflect.FieldDescriptor
fd_Controller_sonr_address protoreflect.FieldDescriptor
fd_Controller_eth_address protoreflect.FieldDescriptor
fd_Controller_btc_address protoreflect.FieldDescriptor
fd_Controller_public_key protoreflect.FieldDescriptor
fd_Controller_ks_val protoreflect.FieldDescriptor
fd_Controller_claimed_block protoreflect.FieldDescriptor
fd_Controller_creation_block protoreflect.FieldDescriptor
)
func init() {
file_did_v1_state_proto_init()
md_Controller = File_did_v1_state_proto.Messages().ByName("Controller")
fd_Controller_number = md_Controller.Fields().ByName("number")
fd_Controller_did = md_Controller.Fields().ByName("did")
fd_Controller_sonr_address = md_Controller.Fields().ByName("sonr_address")
fd_Controller_eth_address = md_Controller.Fields().ByName("eth_address")
fd_Controller_btc_address = md_Controller.Fields().ByName("btc_address")
fd_Controller_public_key = md_Controller.Fields().ByName("public_key")
fd_Controller_ks_val = md_Controller.Fields().ByName("ks_val")
fd_Controller_claimed_block = md_Controller.Fields().ByName("claimed_block")
fd_Controller_creation_block = md_Controller.Fields().ByName("creation_block")
}
var _ protoreflect.Message = (*fastReflection_Controller)(nil)
type fastReflection_Controller Controller
func (x *Controller) ProtoReflect() protoreflect.Message {
return (*fastReflection_Controller)(x)
}
func (x *Controller) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_state_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_Controller_messageType fastReflection_Controller_messageType
var _ protoreflect.MessageType = fastReflection_Controller_messageType{}
type fastReflection_Controller_messageType struct{}
func (x fastReflection_Controller_messageType) Zero() protoreflect.Message {
return (*fastReflection_Controller)(nil)
}
func (x fastReflection_Controller_messageType) New() protoreflect.Message {
return new(fastReflection_Controller)
}
func (x fastReflection_Controller_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_Controller
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_Controller) Descriptor() protoreflect.MessageDescriptor {
return md_Controller
}
// 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_Controller) Type() protoreflect.MessageType {
return _fastReflection_Controller_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_Controller) New() protoreflect.Message {
return new(fastReflection_Controller)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_Controller) Interface() protoreflect.ProtoMessage {
return (*Controller)(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_Controller) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Number != uint64(0) {
value := protoreflect.ValueOfUint64(x.Number)
if !f(fd_Controller_number, value) {
return
}
}
if x.Did != "" {
value := protoreflect.ValueOfString(x.Did)
if !f(fd_Controller_did, value) {
return
}
}
if x.SonrAddress != "" {
value := protoreflect.ValueOfString(x.SonrAddress)
if !f(fd_Controller_sonr_address, value) {
return
}
}
if x.EthAddress != "" {
value := protoreflect.ValueOfString(x.EthAddress)
if !f(fd_Controller_eth_address, value) {
return
}
}
if x.BtcAddress != "" {
value := protoreflect.ValueOfString(x.BtcAddress)
if !f(fd_Controller_btc_address, value) {
return
}
}
if x.PublicKey != nil {
value := protoreflect.ValueOfMessage(x.PublicKey.ProtoReflect())
if !f(fd_Controller_public_key, value) {
return
}
}
if x.KsVal != "" {
value := protoreflect.ValueOfString(x.KsVal)
if !f(fd_Controller_ks_val, value) {
return
}
}
if x.ClaimedBlock != int64(0) {
value := protoreflect.ValueOfInt64(x.ClaimedBlock)
if !f(fd_Controller_claimed_block, value) {
return
}
}
if x.CreationBlock != int64(0) {
value := protoreflect.ValueOfInt64(x.CreationBlock)
if !f(fd_Controller_creation_block, 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_Controller) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.Controller.number":
return x.Number != uint64(0)
case "did.v1.Controller.did":
return x.Did != ""
case "did.v1.Controller.sonr_address":
return x.SonrAddress != ""
case "did.v1.Controller.eth_address":
return x.EthAddress != ""
case "did.v1.Controller.btc_address":
return x.BtcAddress != ""
case "did.v1.Controller.public_key":
return x.PublicKey != nil
case "did.v1.Controller.ks_val":
return x.KsVal != ""
case "did.v1.Controller.claimed_block":
return x.ClaimedBlock != int64(0)
case "did.v1.Controller.creation_block":
return x.CreationBlock != int64(0)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Controller"))
}
panic(fmt.Errorf("message did.v1.Controller 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_Controller) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.Controller.number":
x.Number = uint64(0)
case "did.v1.Controller.did":
x.Did = ""
case "did.v1.Controller.sonr_address":
x.SonrAddress = ""
case "did.v1.Controller.eth_address":
x.EthAddress = ""
case "did.v1.Controller.btc_address":
x.BtcAddress = ""
case "did.v1.Controller.public_key":
x.PublicKey = nil
case "did.v1.Controller.ks_val":
x.KsVal = ""
case "did.v1.Controller.claimed_block":
x.ClaimedBlock = int64(0)
case "did.v1.Controller.creation_block":
x.CreationBlock = int64(0)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Controller"))
}
panic(fmt.Errorf("message did.v1.Controller 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_Controller) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.Controller.number":
value := x.Number
return protoreflect.ValueOfUint64(value)
case "did.v1.Controller.did":
value := x.Did
return protoreflect.ValueOfString(value)
case "did.v1.Controller.sonr_address":
value := x.SonrAddress
return protoreflect.ValueOfString(value)
case "did.v1.Controller.eth_address":
value := x.EthAddress
return protoreflect.ValueOfString(value)
case "did.v1.Controller.btc_address":
value := x.BtcAddress
return protoreflect.ValueOfString(value)
case "did.v1.Controller.public_key":
value := x.PublicKey
return protoreflect.ValueOfMessage(value.ProtoReflect())
case "did.v1.Controller.ks_val":
value := x.KsVal
return protoreflect.ValueOfString(value)
case "did.v1.Controller.claimed_block":
value := x.ClaimedBlock
return protoreflect.ValueOfInt64(value)
case "did.v1.Controller.creation_block":
value := x.CreationBlock
return protoreflect.ValueOfInt64(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Controller"))
}
panic(fmt.Errorf("message did.v1.Controller 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_Controller) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.Controller.number":
x.Number = value.Uint()
case "did.v1.Controller.did":
x.Did = value.Interface().(string)
case "did.v1.Controller.sonr_address":
x.SonrAddress = value.Interface().(string)
case "did.v1.Controller.eth_address":
x.EthAddress = value.Interface().(string)
case "did.v1.Controller.btc_address":
x.BtcAddress = value.Interface().(string)
case "did.v1.Controller.public_key":
x.PublicKey = value.Message().Interface().(*PubKey)
case "did.v1.Controller.ks_val":
x.KsVal = value.Interface().(string)
case "did.v1.Controller.claimed_block":
x.ClaimedBlock = value.Int()
case "did.v1.Controller.creation_block":
x.CreationBlock = value.Int()
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Controller"))
}
panic(fmt.Errorf("message did.v1.Controller 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_Controller) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.Controller.public_key":
if x.PublicKey == nil {
x.PublicKey = new(PubKey)
}
return protoreflect.ValueOfMessage(x.PublicKey.ProtoReflect())
case "did.v1.Controller.number":
panic(fmt.Errorf("field number of message did.v1.Controller is not mutable"))
case "did.v1.Controller.did":
panic(fmt.Errorf("field did of message did.v1.Controller is not mutable"))
case "did.v1.Controller.sonr_address":
panic(fmt.Errorf("field sonr_address of message did.v1.Controller is not mutable"))
case "did.v1.Controller.eth_address":
panic(fmt.Errorf("field eth_address of message did.v1.Controller is not mutable"))
case "did.v1.Controller.btc_address":
panic(fmt.Errorf("field btc_address of message did.v1.Controller is not mutable"))
case "did.v1.Controller.ks_val":
panic(fmt.Errorf("field ks_val of message did.v1.Controller is not mutable"))
case "did.v1.Controller.claimed_block":
panic(fmt.Errorf("field claimed_block of message did.v1.Controller is not mutable"))
case "did.v1.Controller.creation_block":
panic(fmt.Errorf("field creation_block of message did.v1.Controller is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Controller"))
}
panic(fmt.Errorf("message did.v1.Controller 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_Controller) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.Controller.number":
return protoreflect.ValueOfUint64(uint64(0))
case "did.v1.Controller.did":
return protoreflect.ValueOfString("")
case "did.v1.Controller.sonr_address":
return protoreflect.ValueOfString("")
case "did.v1.Controller.eth_address":
return protoreflect.ValueOfString("")
case "did.v1.Controller.btc_address":
return protoreflect.ValueOfString("")
case "did.v1.Controller.public_key":
m := new(PubKey)
return protoreflect.ValueOfMessage(m.ProtoReflect())
case "did.v1.Controller.ks_val":
return protoreflect.ValueOfString("")
case "did.v1.Controller.claimed_block":
return protoreflect.ValueOfInt64(int64(0))
case "did.v1.Controller.creation_block":
return protoreflect.ValueOfInt64(int64(0))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Controller"))
}
panic(fmt.Errorf("message did.v1.Controller 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_Controller) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.Controller", 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_Controller) 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_Controller) 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_Controller) 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_Controller) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*Controller)
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.Number != 0 {
n += 1 + runtime.Sov(uint64(x.Number))
}
l = len(x.Did)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.SonrAddress)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.EthAddress)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.BtcAddress)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.PublicKey != nil {
l = options.Size(x.PublicKey)
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.KsVal)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.ClaimedBlock != 0 {
n += 1 + runtime.Sov(uint64(x.ClaimedBlock))
}
if x.CreationBlock != 0 {
n += 1 + runtime.Sov(uint64(x.CreationBlock))
}
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().(*Controller)
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.CreationBlock != 0 {
i = runtime.EncodeVarint(dAtA, i, uint64(x.CreationBlock))
i--
dAtA[i] = 0x48
}
if x.ClaimedBlock != 0 {
i = runtime.EncodeVarint(dAtA, i, uint64(x.ClaimedBlock))
i--
dAtA[i] = 0x40
}
if len(x.KsVal) > 0 {
i -= len(x.KsVal)
copy(dAtA[i:], x.KsVal)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.KsVal)))
i--
dAtA[i] = 0x3a
}
if x.PublicKey != nil {
encoded, err := options.Marshal(x.PublicKey)
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] = 0x32
}
if len(x.BtcAddress) > 0 {
i -= len(x.BtcAddress)
copy(dAtA[i:], x.BtcAddress)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.BtcAddress)))
i--
dAtA[i] = 0x2a
}
if len(x.EthAddress) > 0 {
i -= len(x.EthAddress)
copy(dAtA[i:], x.EthAddress)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.EthAddress)))
i--
dAtA[i] = 0x22
}
if len(x.SonrAddress) > 0 {
i -= len(x.SonrAddress)
copy(dAtA[i:], x.SonrAddress)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.SonrAddress)))
i--
dAtA[i] = 0x1a
}
if len(x.Did) > 0 {
i -= len(x.Did)
copy(dAtA[i:], x.Did)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Did)))
i--
dAtA[i] = 0x12
}
if x.Number != 0 {
i = runtime.EncodeVarint(dAtA, i, uint64(x.Number))
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().(*Controller)
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: Controller: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: Controller: 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 Number", wireType)
}
x.Number = 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.Number |= uint64(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 Did", 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.Did = 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 SonrAddress", 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.SonrAddress = 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 EthAddress", 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.EthAddress = 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 BtcAddress", 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.BtcAddress = 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 PublicKey", 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.PublicKey == nil {
x.PublicKey = &PubKey{}
}
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.PublicKey); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
case 7:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field KsVal", 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.KsVal = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 8:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field ClaimedBlock", wireType)
}
x.ClaimedBlock = 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.ClaimedBlock |= int64(b&0x7F) << shift
if b < 0x80 {
break
}
}
case 9:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field CreationBlock", wireType)
}
x.CreationBlock = 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.CreationBlock |= int64(b&0x7F) << shift
if b < 0x80 {
break
}
}
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.Map = (*_Verification_8_map)(nil)
type _Verification_8_map struct {
m *map[string]string
}
func (x *_Verification_8_map) Len() int {
if x.m == nil {
return 0
}
return len(*x.m)
}
func (x *_Verification_8_map) Range(f func(protoreflect.MapKey, protoreflect.Value) bool) {
if x.m == nil {
return
}
for k, v := range *x.m {
mapKey := (protoreflect.MapKey)(protoreflect.ValueOfString(k))
mapValue := protoreflect.ValueOfString(v)
if !f(mapKey, mapValue) {
break
}
}
}
func (x *_Verification_8_map) Has(key protoreflect.MapKey) bool {
if x.m == nil {
return false
}
keyUnwrapped := key.String()
concreteValue := keyUnwrapped
_, ok := (*x.m)[concreteValue]
return ok
}
func (x *_Verification_8_map) Clear(key protoreflect.MapKey) {
if x.m == nil {
return
}
keyUnwrapped := key.String()
concreteKey := keyUnwrapped
delete(*x.m, concreteKey)
}
func (x *_Verification_8_map) Get(key protoreflect.MapKey) protoreflect.Value {
if x.m == nil {
return protoreflect.Value{}
}
keyUnwrapped := key.String()
concreteKey := keyUnwrapped
v, ok := (*x.m)[concreteKey]
if !ok {
return protoreflect.Value{}
}
return protoreflect.ValueOfString(v)
}
func (x *_Verification_8_map) Set(key protoreflect.MapKey, value protoreflect.Value) {
if !key.IsValid() || !value.IsValid() {
panic("invalid key or value provided")
}
keyUnwrapped := key.String()
concreteKey := keyUnwrapped
valueUnwrapped := value.String()
concreteValue := valueUnwrapped
(*x.m)[concreteKey] = concreteValue
}
func (x *_Verification_8_map) Mutable(key protoreflect.MapKey) protoreflect.Value {
panic("should not call Mutable on protoreflect.Map whose value is not of type protoreflect.Message")
}
func (x *_Verification_8_map) NewValue() protoreflect.Value {
v := ""
return protoreflect.ValueOfString(v)
}
func (x *_Verification_8_map) IsValid() bool {
return x.m != nil
}
var (
md_Verification protoreflect.MessageDescriptor
fd_Verification_did protoreflect.FieldDescriptor
fd_Verification_controller protoreflect.FieldDescriptor
fd_Verification_did_method protoreflect.FieldDescriptor
fd_Verification_issuer protoreflect.FieldDescriptor
fd_Verification_subject protoreflect.FieldDescriptor
fd_Verification_public_key protoreflect.FieldDescriptor
fd_Verification_verification_type protoreflect.FieldDescriptor
fd_Verification_metadata protoreflect.FieldDescriptor
fd_Verification_creation_block protoreflect.FieldDescriptor
)
func init() {
file_did_v1_state_proto_init()
md_Verification = File_did_v1_state_proto.Messages().ByName("Verification")
fd_Verification_did = md_Verification.Fields().ByName("did")
fd_Verification_controller = md_Verification.Fields().ByName("controller")
fd_Verification_did_method = md_Verification.Fields().ByName("did_method")
fd_Verification_issuer = md_Verification.Fields().ByName("issuer")
fd_Verification_subject = md_Verification.Fields().ByName("subject")
fd_Verification_public_key = md_Verification.Fields().ByName("public_key")
fd_Verification_verification_type = md_Verification.Fields().ByName("verification_type")
fd_Verification_metadata = md_Verification.Fields().ByName("metadata")
fd_Verification_creation_block = md_Verification.Fields().ByName("creation_block")
}
var _ protoreflect.Message = (*fastReflection_Verification)(nil)
type fastReflection_Verification Verification
func (x *Verification) ProtoReflect() protoreflect.Message {
return (*fastReflection_Verification)(x)
}
func (x *Verification) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_state_proto_msgTypes[2]
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_Verification_messageType fastReflection_Verification_messageType
var _ protoreflect.MessageType = fastReflection_Verification_messageType{}
type fastReflection_Verification_messageType struct{}
func (x fastReflection_Verification_messageType) Zero() protoreflect.Message {
return (*fastReflection_Verification)(nil)
}
func (x fastReflection_Verification_messageType) New() protoreflect.Message {
return new(fastReflection_Verification)
}
func (x fastReflection_Verification_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_Verification
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_Verification) Descriptor() protoreflect.MessageDescriptor {
return md_Verification
}
// 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_Verification) Type() protoreflect.MessageType {
return _fastReflection_Verification_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_Verification) New() protoreflect.Message {
return new(fastReflection_Verification)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_Verification) Interface() protoreflect.ProtoMessage {
return (*Verification)(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_Verification) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Did != "" {
value := protoreflect.ValueOfString(x.Did)
if !f(fd_Verification_did, value) {
return
}
}
if x.Controller != "" {
value := protoreflect.ValueOfString(x.Controller)
if !f(fd_Verification_controller, value) {
return
}
}
if x.DidMethod != "" {
value := protoreflect.ValueOfString(x.DidMethod)
if !f(fd_Verification_did_method, value) {
return
}
}
if x.Issuer != "" {
value := protoreflect.ValueOfString(x.Issuer)
if !f(fd_Verification_issuer, value) {
return
}
}
if x.Subject != "" {
value := protoreflect.ValueOfString(x.Subject)
if !f(fd_Verification_subject, value) {
return
}
}
if x.PublicKey != nil {
value := protoreflect.ValueOfMessage(x.PublicKey.ProtoReflect())
if !f(fd_Verification_public_key, value) {
return
}
}
if x.VerificationType != "" {
value := protoreflect.ValueOfString(x.VerificationType)
if !f(fd_Verification_verification_type, value) {
return
}
}
if len(x.Metadata) != 0 {
value := protoreflect.ValueOfMap(&_Verification_8_map{m: &x.Metadata})
if !f(fd_Verification_metadata, value) {
return
}
}
if x.CreationBlock != int64(0) {
value := protoreflect.ValueOfInt64(x.CreationBlock)
if !f(fd_Verification_creation_block, 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_Verification) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.Verification.did":
return x.Did != ""
case "did.v1.Verification.controller":
return x.Controller != ""
case "did.v1.Verification.did_method":
return x.DidMethod != ""
case "did.v1.Verification.issuer":
return x.Issuer != ""
case "did.v1.Verification.subject":
return x.Subject != ""
case "did.v1.Verification.public_key":
return x.PublicKey != nil
case "did.v1.Verification.verification_type":
return x.VerificationType != ""
case "did.v1.Verification.metadata":
return len(x.Metadata) != 0
case "did.v1.Verification.creation_block":
return x.CreationBlock != int64(0)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Verification"))
}
panic(fmt.Errorf("message did.v1.Verification 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_Verification) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.Verification.did":
x.Did = ""
case "did.v1.Verification.controller":
x.Controller = ""
case "did.v1.Verification.did_method":
x.DidMethod = ""
case "did.v1.Verification.issuer":
x.Issuer = ""
case "did.v1.Verification.subject":
x.Subject = ""
case "did.v1.Verification.public_key":
x.PublicKey = nil
case "did.v1.Verification.verification_type":
x.VerificationType = ""
case "did.v1.Verification.metadata":
x.Metadata = nil
case "did.v1.Verification.creation_block":
x.CreationBlock = int64(0)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Verification"))
}
panic(fmt.Errorf("message did.v1.Verification 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_Verification) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.Verification.did":
value := x.Did
return protoreflect.ValueOfString(value)
case "did.v1.Verification.controller":
value := x.Controller
return protoreflect.ValueOfString(value)
case "did.v1.Verification.did_method":
value := x.DidMethod
return protoreflect.ValueOfString(value)
case "did.v1.Verification.issuer":
value := x.Issuer
return protoreflect.ValueOfString(value)
case "did.v1.Verification.subject":
value := x.Subject
return protoreflect.ValueOfString(value)
case "did.v1.Verification.public_key":
value := x.PublicKey
return protoreflect.ValueOfMessage(value.ProtoReflect())
case "did.v1.Verification.verification_type":
value := x.VerificationType
return protoreflect.ValueOfString(value)
case "did.v1.Verification.metadata":
if len(x.Metadata) == 0 {
return protoreflect.ValueOfMap(&_Verification_8_map{})
}
mapValue := &_Verification_8_map{m: &x.Metadata}
return protoreflect.ValueOfMap(mapValue)
case "did.v1.Verification.creation_block":
value := x.CreationBlock
return protoreflect.ValueOfInt64(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Verification"))
}
panic(fmt.Errorf("message did.v1.Verification 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_Verification) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.Verification.did":
x.Did = value.Interface().(string)
case "did.v1.Verification.controller":
x.Controller = value.Interface().(string)
case "did.v1.Verification.did_method":
x.DidMethod = value.Interface().(string)
case "did.v1.Verification.issuer":
x.Issuer = value.Interface().(string)
case "did.v1.Verification.subject":
x.Subject = value.Interface().(string)
case "did.v1.Verification.public_key":
x.PublicKey = value.Message().Interface().(*PubKey)
case "did.v1.Verification.verification_type":
x.VerificationType = value.Interface().(string)
case "did.v1.Verification.metadata":
mv := value.Map()
cmv := mv.(*_Verification_8_map)
x.Metadata = *cmv.m
case "did.v1.Verification.creation_block":
x.CreationBlock = value.Int()
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Verification"))
}
panic(fmt.Errorf("message did.v1.Verification 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_Verification) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.Verification.public_key":
if x.PublicKey == nil {
x.PublicKey = new(PubKey)
}
return protoreflect.ValueOfMessage(x.PublicKey.ProtoReflect())
case "did.v1.Verification.metadata":
if x.Metadata == nil {
x.Metadata = make(map[string]string)
}
value := &_Verification_8_map{m: &x.Metadata}
return protoreflect.ValueOfMap(value)
case "did.v1.Verification.did":
panic(fmt.Errorf("field did of message did.v1.Verification is not mutable"))
case "did.v1.Verification.controller":
panic(fmt.Errorf("field controller of message did.v1.Verification is not mutable"))
case "did.v1.Verification.did_method":
panic(fmt.Errorf("field did_method of message did.v1.Verification is not mutable"))
case "did.v1.Verification.issuer":
panic(fmt.Errorf("field issuer of message did.v1.Verification is not mutable"))
case "did.v1.Verification.subject":
panic(fmt.Errorf("field subject of message did.v1.Verification is not mutable"))
case "did.v1.Verification.verification_type":
panic(fmt.Errorf("field verification_type of message did.v1.Verification is not mutable"))
case "did.v1.Verification.creation_block":
panic(fmt.Errorf("field creation_block of message did.v1.Verification is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Verification"))
}
panic(fmt.Errorf("message did.v1.Verification 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_Verification) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.Verification.did":
return protoreflect.ValueOfString("")
case "did.v1.Verification.controller":
return protoreflect.ValueOfString("")
case "did.v1.Verification.did_method":
return protoreflect.ValueOfString("")
case "did.v1.Verification.issuer":
return protoreflect.ValueOfString("")
case "did.v1.Verification.subject":
return protoreflect.ValueOfString("")
case "did.v1.Verification.public_key":
m := new(PubKey)
return protoreflect.ValueOfMessage(m.ProtoReflect())
case "did.v1.Verification.verification_type":
return protoreflect.ValueOfString("")
case "did.v1.Verification.metadata":
m := make(map[string]string)
return protoreflect.ValueOfMap(&_Verification_8_map{m: &m})
case "did.v1.Verification.creation_block":
return protoreflect.ValueOfInt64(int64(0))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Verification"))
}
panic(fmt.Errorf("message did.v1.Verification 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_Verification) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.Verification", 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_Verification) 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_Verification) 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_Verification) 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_Verification) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*Verification)
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.Did)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Controller)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.DidMethod)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Issuer)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Subject)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.PublicKey != nil {
l = options.Size(x.PublicKey)
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.VerificationType)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if len(x.Metadata) > 0 {
SiZeMaP := func(k string, v string) {
mapEntrySize := 1 + len(k) + runtime.Sov(uint64(len(k))) + 1 + len(v) + runtime.Sov(uint64(len(v)))
n += mapEntrySize + 1 + runtime.Sov(uint64(mapEntrySize))
}
if options.Deterministic {
sortme := make([]string, 0, len(x.Metadata))
for k := range x.Metadata {
sortme = append(sortme, k)
}
sort.Strings(sortme)
for _, k := range sortme {
v := x.Metadata[k]
SiZeMaP(k, v)
}
} else {
for k, v := range x.Metadata {
SiZeMaP(k, v)
}
}
}
if x.CreationBlock != 0 {
n += 1 + runtime.Sov(uint64(x.CreationBlock))
}
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().(*Verification)
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.CreationBlock != 0 {
i = runtime.EncodeVarint(dAtA, i, uint64(x.CreationBlock))
i--
dAtA[i] = 0x48
}
if len(x.Metadata) > 0 {
MaRsHaLmAp := func(k string, v string) (protoiface.MarshalOutput, error) {
baseI := i
i -= len(v)
copy(dAtA[i:], v)
i = runtime.EncodeVarint(dAtA, i, uint64(len(v)))
i--
dAtA[i] = 0x12
i -= len(k)
copy(dAtA[i:], k)
i = runtime.EncodeVarint(dAtA, i, uint64(len(k)))
i--
dAtA[i] = 0xa
i = runtime.EncodeVarint(dAtA, i, uint64(baseI-i))
i--
dAtA[i] = 0x42
return protoiface.MarshalOutput{}, nil
}
if options.Deterministic {
keysForMetadata := make([]string, 0, len(x.Metadata))
for k := range x.Metadata {
keysForMetadata = append(keysForMetadata, string(k))
}
sort.Slice(keysForMetadata, func(i, j int) bool {
return keysForMetadata[i] < keysForMetadata[j]
})
for iNdEx := len(keysForMetadata) - 1; iNdEx >= 0; iNdEx-- {
v := x.Metadata[string(keysForMetadata[iNdEx])]
out, err := MaRsHaLmAp(keysForMetadata[iNdEx], v)
if err != nil {
return out, err
}
}
} else {
for k := range x.Metadata {
v := x.Metadata[k]
out, err := MaRsHaLmAp(k, v)
if err != nil {
return out, err
}
}
}
}
if len(x.VerificationType) > 0 {
i -= len(x.VerificationType)
copy(dAtA[i:], x.VerificationType)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.VerificationType)))
i--
dAtA[i] = 0x3a
}
if x.PublicKey != nil {
encoded, err := options.Marshal(x.PublicKey)
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] = 0x32
}
if len(x.Subject) > 0 {
i -= len(x.Subject)
copy(dAtA[i:], x.Subject)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Subject)))
i--
dAtA[i] = 0x2a
}
if len(x.Issuer) > 0 {
i -= len(x.Issuer)
copy(dAtA[i:], x.Issuer)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Issuer)))
i--
dAtA[i] = 0x22
}
if len(x.DidMethod) > 0 {
i -= len(x.DidMethod)
copy(dAtA[i:], x.DidMethod)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.DidMethod)))
i--
dAtA[i] = 0x1a
}
if len(x.Controller) > 0 {
i -= len(x.Controller)
copy(dAtA[i:], x.Controller)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Controller)))
i--
dAtA[i] = 0x12
}
if len(x.Did) > 0 {
i -= len(x.Did)
copy(dAtA[i:], x.Did)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Did)))
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().(*Verification)
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: Verification: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: Verification: 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 Did", 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.Did = 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 Controller", 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.Controller = 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 DidMethod", 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.DidMethod = 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 Issuer", 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.Issuer = 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 Subject", 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.Subject = 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 PublicKey", 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.PublicKey == nil {
x.PublicKey = &PubKey{}
}
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.PublicKey); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
case 7:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field VerificationType", 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.VerificationType = string(dAtA[iNdEx:postIndex])
iNdEx = postIndex
case 8:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Metadata", 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.Metadata == nil {
x.Metadata = make(map[string]string)
}
var mapkey string
var mapvalue string
for iNdEx < postIndex {
entryPreIndex := 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)
if fieldNum == 1 {
var stringLenmapkey 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++
stringLenmapkey |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLenmapkey := int(stringLenmapkey)
if intStringLenmapkey < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postStringIndexmapkey := iNdEx + intStringLenmapkey
if postStringIndexmapkey < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postStringIndexmapkey > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
mapkey = string(dAtA[iNdEx:postStringIndexmapkey])
iNdEx = postStringIndexmapkey
} else if fieldNum == 2 {
var stringLenmapvalue 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++
stringLenmapvalue |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
intStringLenmapvalue := int(stringLenmapvalue)
if intStringLenmapvalue < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postStringIndexmapvalue := iNdEx + intStringLenmapvalue
if postStringIndexmapvalue < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postStringIndexmapvalue > l {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
mapvalue = string(dAtA[iNdEx:postStringIndexmapvalue])
iNdEx = postStringIndexmapvalue
} else {
iNdEx = entryPreIndex
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) > postIndex {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
}
iNdEx += skippy
}
}
x.Metadata[mapkey] = mapvalue
iNdEx = postIndex
case 9:
if wireType != 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field CreationBlock", wireType)
}
x.CreationBlock = 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.CreationBlock |= int64(b&0x7F) << shift
if b < 0x80 {
break
}
}
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_Keyshares protoreflect.MessageDescriptor
fd_Keyshares_validator_cid protoreflect.FieldDescriptor
fd_Keyshares_user_cid protoreflect.FieldDescriptor
fd_Keyshares_last_updated_block protoreflect.FieldDescriptor
)
func init() {
file_did_v1_state_proto_init()
md_Keyshares = File_did_v1_state_proto.Messages().ByName("Keyshares")
fd_Keyshares_validator_cid = md_Keyshares.Fields().ByName("validator_cid")
fd_Keyshares_user_cid = md_Keyshares.Fields().ByName("user_cid")
fd_Keyshares_last_updated_block = md_Keyshares.Fields().ByName("last_updated_block")
}
var _ protoreflect.Message = (*fastReflection_Keyshares)(nil)
type fastReflection_Keyshares Keyshares
func (x *Keyshares) ProtoReflect() protoreflect.Message {
return (*fastReflection_Keyshares)(x)
}
func (x *Keyshares) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_state_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_Keyshares_messageType fastReflection_Keyshares_messageType
var _ protoreflect.MessageType = fastReflection_Keyshares_messageType{}
type fastReflection_Keyshares_messageType struct{}
func (x fastReflection_Keyshares_messageType) Zero() protoreflect.Message {
return (*fastReflection_Keyshares)(nil)
}
func (x fastReflection_Keyshares_messageType) New() protoreflect.Message {
return new(fastReflection_Keyshares)
}
func (x fastReflection_Keyshares_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_Keyshares
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_Keyshares) Descriptor() protoreflect.MessageDescriptor {
return md_Keyshares
}
// 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_Keyshares) Type() protoreflect.MessageType {
return _fastReflection_Keyshares_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_Keyshares) New() protoreflect.Message {
return new(fastReflection_Keyshares)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_Keyshares) Interface() protoreflect.ProtoMessage {
return (*Keyshares)(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_Keyshares) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.ValidatorCid != "" {
value := protoreflect.ValueOfString(x.ValidatorCid)
if !f(fd_Keyshares_validator_cid, value) {
return
}
}
if x.UserCid != "" {
value := protoreflect.ValueOfString(x.UserCid)
if !f(fd_Keyshares_user_cid, value) {
return
}
}
if x.LastUpdatedBlock != int64(0) {
value := protoreflect.ValueOfInt64(x.LastUpdatedBlock)
if !f(fd_Keyshares_last_updated_block, 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_Keyshares) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.Keyshares.validator_cid":
return x.ValidatorCid != ""
case "did.v1.Keyshares.user_cid":
return x.UserCid != ""
case "did.v1.Keyshares.last_updated_block":
return x.LastUpdatedBlock != int64(0)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Keyshares"))
}
panic(fmt.Errorf("message did.v1.Keyshares 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_Keyshares) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.Keyshares.validator_cid":
x.ValidatorCid = ""
case "did.v1.Keyshares.user_cid":
x.UserCid = ""
case "did.v1.Keyshares.last_updated_block":
x.LastUpdatedBlock = int64(0)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Keyshares"))
}
panic(fmt.Errorf("message did.v1.Keyshares 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_Keyshares) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.Keyshares.validator_cid":
value := x.ValidatorCid
return protoreflect.ValueOfString(value)
case "did.v1.Keyshares.user_cid":
value := x.UserCid
return protoreflect.ValueOfString(value)
case "did.v1.Keyshares.last_updated_block":
value := x.LastUpdatedBlock
return protoreflect.ValueOfInt64(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Keyshares"))
}
panic(fmt.Errorf("message did.v1.Keyshares 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_Keyshares) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.Keyshares.validator_cid":
x.ValidatorCid = value.Interface().(string)
case "did.v1.Keyshares.user_cid":
x.UserCid = value.Interface().(string)
case "did.v1.Keyshares.last_updated_block":
x.LastUpdatedBlock = value.Int()
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Keyshares"))
}
panic(fmt.Errorf("message did.v1.Keyshares 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_Keyshares) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.Keyshares.validator_cid":
panic(fmt.Errorf("field validator_cid of message did.v1.Keyshares is not mutable"))
case "did.v1.Keyshares.user_cid":
panic(fmt.Errorf("field user_cid of message did.v1.Keyshares is not mutable"))
case "did.v1.Keyshares.last_updated_block":
panic(fmt.Errorf("field last_updated_block of message did.v1.Keyshares is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Keyshares"))
}
panic(fmt.Errorf("message did.v1.Keyshares 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_Keyshares) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.Keyshares.validator_cid":
return protoreflect.ValueOfString("")
case "did.v1.Keyshares.user_cid":
return protoreflect.ValueOfString("")
case "did.v1.Keyshares.last_updated_block":
return protoreflect.ValueOfInt64(int64(0))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.Keyshares"))
}
panic(fmt.Errorf("message did.v1.Keyshares 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_Keyshares) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.Keyshares", 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_Keyshares) 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_Keyshares) 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_Keyshares) 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_Keyshares) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*Keyshares)
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.ValidatorCid)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.UserCid)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.LastUpdatedBlock != 0 {
n += 1 + runtime.Sov(uint64(x.LastUpdatedBlock))
}
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().(*Keyshares)
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.LastUpdatedBlock != 0 {
i = runtime.EncodeVarint(dAtA, i, uint64(x.LastUpdatedBlock))
i--
dAtA[i] = 0x18
}
if len(x.UserCid) > 0 {
i -= len(x.UserCid)
copy(dAtA[i:], x.UserCid)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.UserCid)))
i--
dAtA[i] = 0x12
}
if len(x.ValidatorCid) > 0 {
i -= len(x.ValidatorCid)
copy(dAtA[i:], x.ValidatorCid)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.ValidatorCid)))
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().(*Keyshares)
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: Keyshares: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: Keyshares: 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 ValidatorCid", 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.ValidatorCid = 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 UserCid", 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.UserCid = 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 LastUpdatedBlock", wireType)
}
x.LastUpdatedBlock = 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.LastUpdatedBlock |= int64(b&0x7F) << shift
if b < 0x80 {
break
}
}
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_PubKey protoreflect.MessageDescriptor
fd_PubKey_role protoreflect.FieldDescriptor
fd_PubKey_key_type protoreflect.FieldDescriptor
fd_PubKey_raw_key protoreflect.FieldDescriptor
fd_PubKey_jwk protoreflect.FieldDescriptor
)
func init() {
file_did_v1_state_proto_init()
md_PubKey = File_did_v1_state_proto.Messages().ByName("PubKey")
fd_PubKey_role = md_PubKey.Fields().ByName("role")
fd_PubKey_key_type = md_PubKey.Fields().ByName("key_type")
fd_PubKey_raw_key = md_PubKey.Fields().ByName("raw_key")
fd_PubKey_jwk = md_PubKey.Fields().ByName("jwk")
}
var _ protoreflect.Message = (*fastReflection_PubKey)(nil)
type fastReflection_PubKey PubKey
func (x *PubKey) ProtoReflect() protoreflect.Message {
return (*fastReflection_PubKey)(x)
}
func (x *PubKey) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_state_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_PubKey_messageType fastReflection_PubKey_messageType
var _ protoreflect.MessageType = fastReflection_PubKey_messageType{}
type fastReflection_PubKey_messageType struct{}
func (x fastReflection_PubKey_messageType) Zero() protoreflect.Message {
return (*fastReflection_PubKey)(nil)
}
func (x fastReflection_PubKey_messageType) New() protoreflect.Message {
return new(fastReflection_PubKey)
}
func (x fastReflection_PubKey_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_PubKey
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_PubKey) Descriptor() protoreflect.MessageDescriptor {
return md_PubKey
}
// 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_PubKey) Type() protoreflect.MessageType {
return _fastReflection_PubKey_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_PubKey) New() protoreflect.Message {
return new(fastReflection_PubKey)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_PubKey) Interface() protoreflect.ProtoMessage {
return (*PubKey)(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_PubKey) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Role != "" {
value := protoreflect.ValueOfString(x.Role)
if !f(fd_PubKey_role, value) {
return
}
}
if x.KeyType != "" {
value := protoreflect.ValueOfString(x.KeyType)
if !f(fd_PubKey_key_type, value) {
return
}
}
if x.RawKey != nil {
value := protoreflect.ValueOfMessage(x.RawKey.ProtoReflect())
if !f(fd_PubKey_raw_key, value) {
return
}
}
if x.Jwk != nil {
value := protoreflect.ValueOfMessage(x.Jwk.ProtoReflect())
if !f(fd_PubKey_jwk, 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_PubKey) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.PubKey.role":
return x.Role != ""
case "did.v1.PubKey.key_type":
return x.KeyType != ""
case "did.v1.PubKey.raw_key":
return x.RawKey != nil
case "did.v1.PubKey.jwk":
return x.Jwk != nil
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.PubKey"))
}
panic(fmt.Errorf("message did.v1.PubKey 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_PubKey) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.PubKey.role":
x.Role = ""
case "did.v1.PubKey.key_type":
x.KeyType = ""
case "did.v1.PubKey.raw_key":
x.RawKey = nil
case "did.v1.PubKey.jwk":
x.Jwk = nil
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.PubKey"))
}
panic(fmt.Errorf("message did.v1.PubKey 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_PubKey) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.PubKey.role":
value := x.Role
return protoreflect.ValueOfString(value)
case "did.v1.PubKey.key_type":
value := x.KeyType
return protoreflect.ValueOfString(value)
case "did.v1.PubKey.raw_key":
value := x.RawKey
return protoreflect.ValueOfMessage(value.ProtoReflect())
case "did.v1.PubKey.jwk":
value := x.Jwk
return protoreflect.ValueOfMessage(value.ProtoReflect())
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.PubKey"))
}
panic(fmt.Errorf("message did.v1.PubKey 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_PubKey) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.PubKey.role":
x.Role = value.Interface().(string)
case "did.v1.PubKey.key_type":
x.KeyType = value.Interface().(string)
case "did.v1.PubKey.raw_key":
x.RawKey = value.Message().Interface().(*RawKey)
case "did.v1.PubKey.jwk":
x.Jwk = value.Message().Interface().(*JSONWebKey)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.PubKey"))
}
panic(fmt.Errorf("message did.v1.PubKey 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_PubKey) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.PubKey.raw_key":
if x.RawKey == nil {
x.RawKey = new(RawKey)
}
return protoreflect.ValueOfMessage(x.RawKey.ProtoReflect())
case "did.v1.PubKey.jwk":
if x.Jwk == nil {
x.Jwk = new(JSONWebKey)
}
return protoreflect.ValueOfMessage(x.Jwk.ProtoReflect())
case "did.v1.PubKey.role":
panic(fmt.Errorf("field role of message did.v1.PubKey is not mutable"))
case "did.v1.PubKey.key_type":
panic(fmt.Errorf("field key_type of message did.v1.PubKey is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.PubKey"))
}
panic(fmt.Errorf("message did.v1.PubKey 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_PubKey) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.PubKey.role":
return protoreflect.ValueOfString("")
case "did.v1.PubKey.key_type":
return protoreflect.ValueOfString("")
case "did.v1.PubKey.raw_key":
m := new(RawKey)
return protoreflect.ValueOfMessage(m.ProtoReflect())
case "did.v1.PubKey.jwk":
m := new(JSONWebKey)
return protoreflect.ValueOfMessage(m.ProtoReflect())
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.PubKey"))
}
panic(fmt.Errorf("message did.v1.PubKey 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_PubKey) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.PubKey", 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_PubKey) 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_PubKey) 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_PubKey) 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_PubKey) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*PubKey)
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.Role)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.KeyType)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
if x.RawKey != nil {
l = options.Size(x.RawKey)
n += 1 + l + runtime.Sov(uint64(l))
}
if x.Jwk != nil {
l = options.Size(x.Jwk)
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().(*PubKey)
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.Jwk != nil {
encoded, err := options.Marshal(x.Jwk)
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] = 0x22
}
if x.RawKey != nil {
encoded, err := options.Marshal(x.RawKey)
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
}
if len(x.KeyType) > 0 {
i -= len(x.KeyType)
copy(dAtA[i:], x.KeyType)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.KeyType)))
i--
dAtA[i] = 0x12
}
if len(x.Role) > 0 {
i -= len(x.Role)
copy(dAtA[i:], x.Role)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Role)))
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().(*PubKey)
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: PubKey: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: PubKey: 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 Role", 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.Role = 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 KeyType", 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.KeyType = 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 RawKey", 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.RawKey == nil {
x.RawKey = &RawKey{}
}
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.RawKey); err != nil {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
iNdEx = postIndex
case 4:
if wireType != 2 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: wrong wireType = %d for field Jwk", 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.Jwk == nil {
x.Jwk = &JSONWebKey{}
}
if err := options.Unmarshal(dAtA[iNdEx:postIndex], x.Jwk); 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_JSONWebKey protoreflect.MessageDescriptor
fd_JSONWebKey_kty protoreflect.FieldDescriptor
fd_JSONWebKey_crv protoreflect.FieldDescriptor
fd_JSONWebKey_x protoreflect.FieldDescriptor
fd_JSONWebKey_y protoreflect.FieldDescriptor
fd_JSONWebKey_n protoreflect.FieldDescriptor
fd_JSONWebKey_e protoreflect.FieldDescriptor
)
func init() {
file_did_v1_state_proto_init()
md_JSONWebKey = File_did_v1_state_proto.Messages().ByName("JSONWebKey")
fd_JSONWebKey_kty = md_JSONWebKey.Fields().ByName("kty")
fd_JSONWebKey_crv = md_JSONWebKey.Fields().ByName("crv")
fd_JSONWebKey_x = md_JSONWebKey.Fields().ByName("x")
fd_JSONWebKey_y = md_JSONWebKey.Fields().ByName("y")
fd_JSONWebKey_n = md_JSONWebKey.Fields().ByName("n")
fd_JSONWebKey_e = md_JSONWebKey.Fields().ByName("e")
}
var _ protoreflect.Message = (*fastReflection_JSONWebKey)(nil)
type fastReflection_JSONWebKey JSONWebKey
func (x *JSONWebKey) ProtoReflect() protoreflect.Message {
return (*fastReflection_JSONWebKey)(x)
}
func (x *JSONWebKey) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_state_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_JSONWebKey_messageType fastReflection_JSONWebKey_messageType
var _ protoreflect.MessageType = fastReflection_JSONWebKey_messageType{}
type fastReflection_JSONWebKey_messageType struct{}
func (x fastReflection_JSONWebKey_messageType) Zero() protoreflect.Message {
return (*fastReflection_JSONWebKey)(nil)
}
func (x fastReflection_JSONWebKey_messageType) New() protoreflect.Message {
return new(fastReflection_JSONWebKey)
}
func (x fastReflection_JSONWebKey_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_JSONWebKey
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_JSONWebKey) Descriptor() protoreflect.MessageDescriptor {
return md_JSONWebKey
}
// 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_JSONWebKey) Type() protoreflect.MessageType {
return _fastReflection_JSONWebKey_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_JSONWebKey) New() protoreflect.Message {
return new(fastReflection_JSONWebKey)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_JSONWebKey) Interface() protoreflect.ProtoMessage {
return (*JSONWebKey)(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_JSONWebKey) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Kty != "" {
value := protoreflect.ValueOfString(x.Kty)
if !f(fd_JSONWebKey_kty, value) {
return
}
}
if x.Crv != "" {
value := protoreflect.ValueOfString(x.Crv)
if !f(fd_JSONWebKey_crv, value) {
return
}
}
if x.X != "" {
value := protoreflect.ValueOfString(x.X)
if !f(fd_JSONWebKey_x, value) {
return
}
}
if x.Y != "" {
value := protoreflect.ValueOfString(x.Y)
if !f(fd_JSONWebKey_y, value) {
return
}
}
if x.N != "" {
value := protoreflect.ValueOfString(x.N)
if !f(fd_JSONWebKey_n, value) {
return
}
}
if x.E != "" {
value := protoreflect.ValueOfString(x.E)
if !f(fd_JSONWebKey_e, 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_JSONWebKey) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.JSONWebKey.kty":
return x.Kty != ""
case "did.v1.JSONWebKey.crv":
return x.Crv != ""
case "did.v1.JSONWebKey.x":
return x.X != ""
case "did.v1.JSONWebKey.y":
return x.Y != ""
case "did.v1.JSONWebKey.n":
return x.N != ""
case "did.v1.JSONWebKey.e":
return x.E != ""
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.JSONWebKey"))
}
panic(fmt.Errorf("message did.v1.JSONWebKey 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_JSONWebKey) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.JSONWebKey.kty":
x.Kty = ""
case "did.v1.JSONWebKey.crv":
x.Crv = ""
case "did.v1.JSONWebKey.x":
x.X = ""
case "did.v1.JSONWebKey.y":
x.Y = ""
case "did.v1.JSONWebKey.n":
x.N = ""
case "did.v1.JSONWebKey.e":
x.E = ""
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.JSONWebKey"))
}
panic(fmt.Errorf("message did.v1.JSONWebKey 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_JSONWebKey) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.JSONWebKey.kty":
value := x.Kty
return protoreflect.ValueOfString(value)
case "did.v1.JSONWebKey.crv":
value := x.Crv
return protoreflect.ValueOfString(value)
case "did.v1.JSONWebKey.x":
value := x.X
return protoreflect.ValueOfString(value)
case "did.v1.JSONWebKey.y":
value := x.Y
return protoreflect.ValueOfString(value)
case "did.v1.JSONWebKey.n":
value := x.N
return protoreflect.ValueOfString(value)
case "did.v1.JSONWebKey.e":
value := x.E
return protoreflect.ValueOfString(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.JSONWebKey"))
}
panic(fmt.Errorf("message did.v1.JSONWebKey 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_JSONWebKey) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.JSONWebKey.kty":
x.Kty = value.Interface().(string)
case "did.v1.JSONWebKey.crv":
x.Crv = value.Interface().(string)
case "did.v1.JSONWebKey.x":
x.X = value.Interface().(string)
case "did.v1.JSONWebKey.y":
x.Y = value.Interface().(string)
case "did.v1.JSONWebKey.n":
x.N = value.Interface().(string)
case "did.v1.JSONWebKey.e":
x.E = value.Interface().(string)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.JSONWebKey"))
}
panic(fmt.Errorf("message did.v1.JSONWebKey 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_JSONWebKey) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.JSONWebKey.kty":
panic(fmt.Errorf("field kty of message did.v1.JSONWebKey is not mutable"))
case "did.v1.JSONWebKey.crv":
panic(fmt.Errorf("field crv of message did.v1.JSONWebKey is not mutable"))
case "did.v1.JSONWebKey.x":
panic(fmt.Errorf("field x of message did.v1.JSONWebKey is not mutable"))
case "did.v1.JSONWebKey.y":
panic(fmt.Errorf("field y of message did.v1.JSONWebKey is not mutable"))
case "did.v1.JSONWebKey.n":
panic(fmt.Errorf("field n of message did.v1.JSONWebKey is not mutable"))
case "did.v1.JSONWebKey.e":
panic(fmt.Errorf("field e of message did.v1.JSONWebKey is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.JSONWebKey"))
}
panic(fmt.Errorf("message did.v1.JSONWebKey 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_JSONWebKey) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.JSONWebKey.kty":
return protoreflect.ValueOfString("")
case "did.v1.JSONWebKey.crv":
return protoreflect.ValueOfString("")
case "did.v1.JSONWebKey.x":
return protoreflect.ValueOfString("")
case "did.v1.JSONWebKey.y":
return protoreflect.ValueOfString("")
case "did.v1.JSONWebKey.n":
return protoreflect.ValueOfString("")
case "did.v1.JSONWebKey.e":
return protoreflect.ValueOfString("")
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.JSONWebKey"))
}
panic(fmt.Errorf("message did.v1.JSONWebKey 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_JSONWebKey) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.JSONWebKey", 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_JSONWebKey) 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_JSONWebKey) 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_JSONWebKey) 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_JSONWebKey) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*JSONWebKey)
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.Kty)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Crv)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.X)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Y)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.N)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.E)
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().(*JSONWebKey)
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.E) > 0 {
i -= len(x.E)
copy(dAtA[i:], x.E)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.E)))
i--
dAtA[i] = 0x32
}
if len(x.N) > 0 {
i -= len(x.N)
copy(dAtA[i:], x.N)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.N)))
i--
dAtA[i] = 0x2a
}
if len(x.Y) > 0 {
i -= len(x.Y)
copy(dAtA[i:], x.Y)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Y)))
i--
dAtA[i] = 0x22
}
if len(x.X) > 0 {
i -= len(x.X)
copy(dAtA[i:], x.X)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.X)))
i--
dAtA[i] = 0x1a
}
if len(x.Crv) > 0 {
i -= len(x.Crv)
copy(dAtA[i:], x.Crv)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Crv)))
i--
dAtA[i] = 0x12
}
if len(x.Kty) > 0 {
i -= len(x.Kty)
copy(dAtA[i:], x.Kty)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Kty)))
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().(*JSONWebKey)
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: JSONWebKey: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: JSONWebKey: 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 Kty", 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.Kty = 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 Crv", 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.Crv = 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 X", 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.X = 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 Y", 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.Y = 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 N", 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.N = 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 E", 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.E = 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 (
md_RawKey protoreflect.MessageDescriptor
fd_RawKey_algorithm protoreflect.FieldDescriptor
fd_RawKey_encoding protoreflect.FieldDescriptor
fd_RawKey_curve protoreflect.FieldDescriptor
fd_RawKey_key protoreflect.FieldDescriptor
)
func init() {
file_did_v1_state_proto_init()
md_RawKey = File_did_v1_state_proto.Messages().ByName("RawKey")
fd_RawKey_algorithm = md_RawKey.Fields().ByName("algorithm")
fd_RawKey_encoding = md_RawKey.Fields().ByName("encoding")
fd_RawKey_curve = md_RawKey.Fields().ByName("curve")
fd_RawKey_key = md_RawKey.Fields().ByName("key")
}
var _ protoreflect.Message = (*fastReflection_RawKey)(nil)
type fastReflection_RawKey RawKey
func (x *RawKey) ProtoReflect() protoreflect.Message {
return (*fastReflection_RawKey)(x)
}
func (x *RawKey) slowProtoReflect() protoreflect.Message {
mi := &file_did_v1_state_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_RawKey_messageType fastReflection_RawKey_messageType
var _ protoreflect.MessageType = fastReflection_RawKey_messageType{}
type fastReflection_RawKey_messageType struct{}
func (x fastReflection_RawKey_messageType) Zero() protoreflect.Message {
return (*fastReflection_RawKey)(nil)
}
func (x fastReflection_RawKey_messageType) New() protoreflect.Message {
return new(fastReflection_RawKey)
}
func (x fastReflection_RawKey_messageType) Descriptor() protoreflect.MessageDescriptor {
return md_RawKey
}
// Descriptor returns message descriptor, which contains only the protobuf
// type information for the message.
func (x *fastReflection_RawKey) Descriptor() protoreflect.MessageDescriptor {
return md_RawKey
}
// 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_RawKey) Type() protoreflect.MessageType {
return _fastReflection_RawKey_messageType
}
// New returns a newly allocated and mutable empty message.
func (x *fastReflection_RawKey) New() protoreflect.Message {
return new(fastReflection_RawKey)
}
// Interface unwraps the message reflection interface and
// returns the underlying ProtoMessage interface.
func (x *fastReflection_RawKey) Interface() protoreflect.ProtoMessage {
return (*RawKey)(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_RawKey) Range(f func(protoreflect.FieldDescriptor, protoreflect.Value) bool) {
if x.Algorithm != "" {
value := protoreflect.ValueOfString(x.Algorithm)
if !f(fd_RawKey_algorithm, value) {
return
}
}
if x.Encoding != "" {
value := protoreflect.ValueOfString(x.Encoding)
if !f(fd_RawKey_encoding, value) {
return
}
}
if x.Curve != "" {
value := protoreflect.ValueOfString(x.Curve)
if !f(fd_RawKey_curve, value) {
return
}
}
if len(x.Key) != 0 {
value := protoreflect.ValueOfBytes(x.Key)
if !f(fd_RawKey_key, 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_RawKey) Has(fd protoreflect.FieldDescriptor) bool {
switch fd.FullName() {
case "did.v1.RawKey.algorithm":
return x.Algorithm != ""
case "did.v1.RawKey.encoding":
return x.Encoding != ""
case "did.v1.RawKey.curve":
return x.Curve != ""
case "did.v1.RawKey.key":
return len(x.Key) != 0
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.RawKey"))
}
panic(fmt.Errorf("message did.v1.RawKey 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_RawKey) Clear(fd protoreflect.FieldDescriptor) {
switch fd.FullName() {
case "did.v1.RawKey.algorithm":
x.Algorithm = ""
case "did.v1.RawKey.encoding":
x.Encoding = ""
case "did.v1.RawKey.curve":
x.Curve = ""
case "did.v1.RawKey.key":
x.Key = nil
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.RawKey"))
}
panic(fmt.Errorf("message did.v1.RawKey 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_RawKey) Get(descriptor protoreflect.FieldDescriptor) protoreflect.Value {
switch descriptor.FullName() {
case "did.v1.RawKey.algorithm":
value := x.Algorithm
return protoreflect.ValueOfString(value)
case "did.v1.RawKey.encoding":
value := x.Encoding
return protoreflect.ValueOfString(value)
case "did.v1.RawKey.curve":
value := x.Curve
return protoreflect.ValueOfString(value)
case "did.v1.RawKey.key":
value := x.Key
return protoreflect.ValueOfBytes(value)
default:
if descriptor.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.RawKey"))
}
panic(fmt.Errorf("message did.v1.RawKey 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_RawKey) Set(fd protoreflect.FieldDescriptor, value protoreflect.Value) {
switch fd.FullName() {
case "did.v1.RawKey.algorithm":
x.Algorithm = value.Interface().(string)
case "did.v1.RawKey.encoding":
x.Encoding = value.Interface().(string)
case "did.v1.RawKey.curve":
x.Curve = value.Interface().(string)
case "did.v1.RawKey.key":
x.Key = value.Bytes()
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.RawKey"))
}
panic(fmt.Errorf("message did.v1.RawKey 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_RawKey) Mutable(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.RawKey.algorithm":
panic(fmt.Errorf("field algorithm of message did.v1.RawKey is not mutable"))
case "did.v1.RawKey.encoding":
panic(fmt.Errorf("field encoding of message did.v1.RawKey is not mutable"))
case "did.v1.RawKey.curve":
panic(fmt.Errorf("field curve of message did.v1.RawKey is not mutable"))
case "did.v1.RawKey.key":
panic(fmt.Errorf("field key of message did.v1.RawKey is not mutable"))
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.RawKey"))
}
panic(fmt.Errorf("message did.v1.RawKey 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_RawKey) NewField(fd protoreflect.FieldDescriptor) protoreflect.Value {
switch fd.FullName() {
case "did.v1.RawKey.algorithm":
return protoreflect.ValueOfString("")
case "did.v1.RawKey.encoding":
return protoreflect.ValueOfString("")
case "did.v1.RawKey.curve":
return protoreflect.ValueOfString("")
case "did.v1.RawKey.key":
return protoreflect.ValueOfBytes(nil)
default:
if fd.IsExtension() {
panic(fmt.Errorf("proto3 declared messages do not support extensions: did.v1.RawKey"))
}
panic(fmt.Errorf("message did.v1.RawKey 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_RawKey) WhichOneof(d protoreflect.OneofDescriptor) protoreflect.FieldDescriptor {
switch d.FullName() {
default:
panic(fmt.Errorf("%s is not a oneof field in did.v1.RawKey", 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_RawKey) 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_RawKey) 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_RawKey) 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_RawKey) ProtoMethods() *protoiface.Methods {
size := func(input protoiface.SizeInput) protoiface.SizeOutput {
x := input.Message.Interface().(*RawKey)
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.Algorithm)
if l > 0 {
n += 1 + l + runtime.Sov(uint64(l))
}
l = len(x.Encoding)
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.Key)
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().(*RawKey)
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.Key) > 0 {
i -= len(x.Key)
copy(dAtA[i:], x.Key)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Key)))
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.Encoding) > 0 {
i -= len(x.Encoding)
copy(dAtA[i:], x.Encoding)
i = runtime.EncodeVarint(dAtA, i, uint64(len(x.Encoding)))
i--
dAtA[i] = 0x12
}
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] = 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().(*RawKey)
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: RawKey: wiretype end group for non-group")
}
if fieldNum <= 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, fmt.Errorf("proto: RawKey: 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 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
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return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
if postIndex > l {
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}
x.Algorithm = 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 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
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b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
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intStringLen := int(stringLen)
if intStringLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + intStringLen
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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
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
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b := dAtA[iNdEx]
iNdEx++
stringLen |= uint64(b&0x7F) << shift
if b < 0x80 {
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}
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 {
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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 Key", wireType)
}
var byteLen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrIntOverflow
}
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byteLen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
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if byteLen < 0 {
return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
postIndex := iNdEx + byteLen
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return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, runtime.ErrInvalidLength
}
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return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, io.ErrUnexpectedEOF
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}
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iNdEx = preIndex
skippy, err := runtime.Skip(dAtA[iNdEx:])
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return protoiface.UnmarshalOutput{NoUnkeyedLiterals: input.NoUnkeyedLiterals, Flags: input.Flags}, err
}
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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/state.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)
)
type Authentication struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// The unique identifier of the authentication
Did string `protobuf:"bytes,1,opt,name=did,proto3" json:"did,omitempty"`
// The authentication of the DID
Controller string `protobuf:"bytes,2,opt,name=controller,proto3" json:"controller,omitempty"`
// Origin of the authentication
Subject string `protobuf:"bytes,3,opt,name=subject,proto3" json:"subject,omitempty"`
// PubKey is the verification method
PublicKey *PubKey `protobuf:"bytes,4,opt,name=public_key,json=publicKey,proto3" json:"public_key,omitempty"`
// CredentialID is the byte representation of the credential ID
CredentialId []byte `protobuf:"bytes,5,opt,name=credential_id,json=credentialId,proto3" json:"credential_id,omitempty"`
// Metadata of the authentication
Metadata map[string]string `protobuf:"bytes,6,rep,name=metadata,proto3" json:"metadata,omitempty" protobuf_key:"bytes,1,opt,name=key,proto3" protobuf_val:"bytes,2,opt,name=value,proto3"`
// CreationBlock is the block number of the creation of the authentication
CreationBlock int64 `protobuf:"varint,7,opt,name=creation_block,json=creationBlock,proto3" json:"creation_block,omitempty"`
}
func (x *Authentication) Reset() {
*x = Authentication{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_state_proto_msgTypes[0]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *Authentication) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*Authentication) ProtoMessage() {}
// Deprecated: Use Authentication.ProtoReflect.Descriptor instead.
func (*Authentication) Descriptor() ([]byte, []int) {
return file_did_v1_state_proto_rawDescGZIP(), []int{0}
}
func (x *Authentication) GetDid() string {
if x != nil {
return x.Did
}
return ""
}
func (x *Authentication) GetController() string {
if x != nil {
return x.Controller
}
return ""
}
func (x *Authentication) GetSubject() string {
if x != nil {
return x.Subject
}
return ""
}
func (x *Authentication) GetPublicKey() *PubKey {
if x != nil {
return x.PublicKey
}
return nil
}
func (x *Authentication) GetCredentialId() []byte {
if x != nil {
return x.CredentialId
}
return nil
}
func (x *Authentication) GetMetadata() map[string]string {
if x != nil {
return x.Metadata
}
return nil
}
func (x *Authentication) GetCreationBlock() int64 {
if x != nil {
return x.CreationBlock
}
return 0
}
// Controller represents a Sonr DWN Vault
type Controller struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// The unique identifier of the controller
Number uint64 `protobuf:"varint,1,opt,name=number,proto3" json:"number,omitempty"`
// The unique identifier of the controller
Did string `protobuf:"bytes,2,opt,name=did,proto3" json:"did,omitempty"`
// The DID of the controller
SonrAddress string `protobuf:"bytes,3,opt,name=sonr_address,json=sonrAddress,proto3" json:"sonr_address,omitempty"`
// The DID of the controller
EthAddress string `protobuf:"bytes,4,opt,name=eth_address,json=ethAddress,proto3" json:"eth_address,omitempty"`
// The DID of the controller
BtcAddress string `protobuf:"bytes,5,opt,name=btc_address,json=btcAddress,proto3" json:"btc_address,omitempty"`
// PubKey is the verification method
PublicKey *PubKey `protobuf:"bytes,6,opt,name=public_key,json=publicKey,proto3" json:"public_key,omitempty"`
// Pointer to the Keyshares
KsVal string `protobuf:"bytes,7,opt,name=ks_val,json=ksVal,proto3" json:"ks_val,omitempty"`
// The block number of when a user claimed the controller
ClaimedBlock int64 `protobuf:"varint,8,opt,name=claimed_block,json=claimedBlock,proto3" json:"claimed_block,omitempty"`
// CreationBlock is the block number of the creation of the controller
CreationBlock int64 `protobuf:"varint,9,opt,name=creation_block,json=creationBlock,proto3" json:"creation_block,omitempty"`
}
func (x *Controller) Reset() {
*x = Controller{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_state_proto_msgTypes[1]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *Controller) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*Controller) ProtoMessage() {}
// Deprecated: Use Controller.ProtoReflect.Descriptor instead.
func (*Controller) Descriptor() ([]byte, []int) {
return file_did_v1_state_proto_rawDescGZIP(), []int{1}
}
func (x *Controller) GetNumber() uint64 {
if x != nil {
return x.Number
}
return 0
}
func (x *Controller) GetDid() string {
if x != nil {
return x.Did
}
return ""
}
func (x *Controller) GetSonrAddress() string {
if x != nil {
return x.SonrAddress
}
return ""
}
func (x *Controller) GetEthAddress() string {
if x != nil {
return x.EthAddress
}
return ""
}
func (x *Controller) GetBtcAddress() string {
if x != nil {
return x.BtcAddress
}
return ""
}
func (x *Controller) GetPublicKey() *PubKey {
if x != nil {
return x.PublicKey
}
return nil
}
func (x *Controller) GetKsVal() string {
if x != nil {
return x.KsVal
}
return ""
}
func (x *Controller) GetClaimedBlock() int64 {
if x != nil {
return x.ClaimedBlock
}
return 0
}
func (x *Controller) GetCreationBlock() int64 {
if x != nil {
return x.CreationBlock
}
return 0
}
// Verification represents a verification method
type Verification struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// The unique identifier of the verification
Did string `protobuf:"bytes,1,opt,name=did,proto3" json:"did,omitempty"`
// The controller of the verification
Controller string `protobuf:"bytes,2,opt,name=controller,proto3" json:"controller,omitempty"`
// The DIDNamespace of the verification
DidMethod string `protobuf:"bytes,3,opt,name=did_method,json=didMethod,proto3" json:"did_method,omitempty"`
// The value of the linked identifier
Issuer string `protobuf:"bytes,4,opt,name=issuer,proto3" json:"issuer,omitempty"`
// The subject of the verification
Subject string `protobuf:"bytes,5,opt,name=subject,proto3" json:"subject,omitempty"`
// The public key of the verification
PublicKey *PubKey `protobuf:"bytes,6,opt,name=public_key,json=publicKey,proto3" json:"public_key,omitempty"`
// The verification method type
VerificationType string `protobuf:"bytes,7,opt,name=verification_type,json=verificationType,proto3" json:"verification_type,omitempty"`
// Metadata of the verification
Metadata map[string]string `protobuf:"bytes,8,rep,name=metadata,proto3" json:"metadata,omitempty" protobuf_key:"bytes,1,opt,name=key,proto3" protobuf_val:"bytes,2,opt,name=value,proto3"`
// CreationBlock is the block number of the creation of the controller
CreationBlock int64 `protobuf:"varint,9,opt,name=creation_block,json=creationBlock,proto3" json:"creation_block,omitempty"`
}
func (x *Verification) Reset() {
*x = Verification{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_state_proto_msgTypes[2]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *Verification) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*Verification) ProtoMessage() {}
// Deprecated: Use Verification.ProtoReflect.Descriptor instead.
func (*Verification) Descriptor() ([]byte, []int) {
return file_did_v1_state_proto_rawDescGZIP(), []int{2}
}
func (x *Verification) GetDid() string {
if x != nil {
return x.Did
}
return ""
}
func (x *Verification) GetController() string {
if x != nil {
return x.Controller
}
return ""
}
func (x *Verification) GetDidMethod() string {
if x != nil {
return x.DidMethod
}
return ""
}
func (x *Verification) GetIssuer() string {
if x != nil {
return x.Issuer
}
return ""
}
func (x *Verification) GetSubject() string {
if x != nil {
return x.Subject
}
return ""
}
func (x *Verification) GetPublicKey() *PubKey {
if x != nil {
return x.PublicKey
}
return nil
}
func (x *Verification) GetVerificationType() string {
if x != nil {
return x.VerificationType
}
return ""
}
func (x *Verification) GetMetadata() map[string]string {
if x != nil {
return x.Metadata
}
return nil
}
func (x *Verification) GetCreationBlock() int64 {
if x != nil {
return x.CreationBlock
}
return 0
}
type Keyshares struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
ValidatorCid string `protobuf:"bytes,1,opt,name=validator_cid,json=validatorCid,proto3" json:"validator_cid,omitempty"`
UserCid string `protobuf:"bytes,2,opt,name=user_cid,json=userCid,proto3" json:"user_cid,omitempty"`
LastUpdatedBlock int64 `protobuf:"varint,3,opt,name=last_updated_block,json=lastUpdatedBlock,proto3" json:"last_updated_block,omitempty"`
}
func (x *Keyshares) Reset() {
*x = Keyshares{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_state_proto_msgTypes[3]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *Keyshares) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*Keyshares) ProtoMessage() {}
// Deprecated: Use Keyshares.ProtoReflect.Descriptor instead.
func (*Keyshares) Descriptor() ([]byte, []int) {
return file_did_v1_state_proto_rawDescGZIP(), []int{3}
}
func (x *Keyshares) GetValidatorCid() string {
if x != nil {
return x.ValidatorCid
}
return ""
}
func (x *Keyshares) GetUserCid() string {
if x != nil {
return x.UserCid
}
return ""
}
func (x *Keyshares) GetLastUpdatedBlock() int64 {
if x != nil {
return x.LastUpdatedBlock
}
return 0
}
// PubKey defines a public key for a did
type PubKey struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Role string `protobuf:"bytes,1,opt,name=role,proto3" json:"role,omitempty"`
KeyType string `protobuf:"bytes,2,opt,name=key_type,json=keyType,proto3" json:"key_type,omitempty"`
RawKey *RawKey `protobuf:"bytes,3,opt,name=raw_key,json=rawKey,proto3" json:"raw_key,omitempty"`
Jwk *JSONWebKey `protobuf:"bytes,4,opt,name=jwk,proto3" json:"jwk,omitempty"`
}
func (x *PubKey) Reset() {
*x = PubKey{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_state_proto_msgTypes[4]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *PubKey) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*PubKey) ProtoMessage() {}
// Deprecated: Use PubKey.ProtoReflect.Descriptor instead.
func (*PubKey) Descriptor() ([]byte, []int) {
return file_did_v1_state_proto_rawDescGZIP(), []int{4}
}
func (x *PubKey) GetRole() string {
if x != nil {
return x.Role
}
return ""
}
func (x *PubKey) GetKeyType() string {
if x != nil {
return x.KeyType
}
return ""
}
func (x *PubKey) GetRawKey() *RawKey {
if x != nil {
return x.RawKey
}
return nil
}
func (x *PubKey) GetJwk() *JSONWebKey {
if x != nil {
return x.Jwk
}
return nil
}
// JWK represents a JSON Web Key
type JSONWebKey struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Kty string `protobuf:"bytes,1,opt,name=kty,proto3" json:"kty,omitempty"` // Key Type
Crv string `protobuf:"bytes,2,opt,name=crv,proto3" json:"crv,omitempty"` // Curve (for EC and OKP keys)
X string `protobuf:"bytes,3,opt,name=x,proto3" json:"x,omitempty"` // X coordinate (for EC and OKP keys)
Y string `protobuf:"bytes,4,opt,name=y,proto3" json:"y,omitempty"` // Y coordinate (for EC keys)
N string `protobuf:"bytes,5,opt,name=n,proto3" json:"n,omitempty"` // Modulus (for RSA keys)
E string `protobuf:"bytes,6,opt,name=e,proto3" json:"e,omitempty"` // Exponent (for RSA keys)
}
func (x *JSONWebKey) Reset() {
*x = JSONWebKey{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_state_proto_msgTypes[5]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *JSONWebKey) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*JSONWebKey) ProtoMessage() {}
// Deprecated: Use JSONWebKey.ProtoReflect.Descriptor instead.
func (*JSONWebKey) Descriptor() ([]byte, []int) {
return file_did_v1_state_proto_rawDescGZIP(), []int{5}
}
func (x *JSONWebKey) GetKty() string {
if x != nil {
return x.Kty
}
return ""
}
func (x *JSONWebKey) GetCrv() string {
if x != nil {
return x.Crv
}
return ""
}
func (x *JSONWebKey) GetX() string {
if x != nil {
return x.X
}
return ""
}
func (x *JSONWebKey) GetY() string {
if x != nil {
return x.Y
}
return ""
}
func (x *JSONWebKey) GetN() string {
if x != nil {
return x.N
}
return ""
}
func (x *JSONWebKey) GetE() string {
if x != nil {
return x.E
}
return ""
}
type RawKey struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
Algorithm string `protobuf:"bytes,1,opt,name=algorithm,proto3" json:"algorithm,omitempty"`
Encoding string `protobuf:"bytes,2,opt,name=encoding,proto3" json:"encoding,omitempty"`
Curve string `protobuf:"bytes,3,opt,name=curve,proto3" json:"curve,omitempty"`
Key []byte `protobuf:"bytes,4,opt,name=key,proto3" json:"key,omitempty"`
}
func (x *RawKey) Reset() {
*x = RawKey{}
if protoimpl.UnsafeEnabled {
mi := &file_did_v1_state_proto_msgTypes[6]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *RawKey) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*RawKey) ProtoMessage() {}
// Deprecated: Use RawKey.ProtoReflect.Descriptor instead.
func (*RawKey) Descriptor() ([]byte, []int) {
return file_did_v1_state_proto_rawDescGZIP(), []int{6}
}
func (x *RawKey) GetAlgorithm() string {
if x != nil {
return x.Algorithm
}
return ""
}
func (x *RawKey) GetEncoding() string {
if x != nil {
return x.Encoding
}
return ""
}
func (x *RawKey) GetCurve() string {
if x != nil {
return x.Curve
}
return ""
}
func (x *RawKey) GetKey() []byte {
if x != nil {
return x.Key
}
return nil
}
var File_did_v1_state_proto protoreflect.FileDescriptor
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}
var (
file_did_v1_state_proto_rawDescOnce sync.Once
file_did_v1_state_proto_rawDescData = file_did_v1_state_proto_rawDesc
)
func file_did_v1_state_proto_rawDescGZIP() []byte {
file_did_v1_state_proto_rawDescOnce.Do(func() {
file_did_v1_state_proto_rawDescData = protoimpl.X.CompressGZIP(file_did_v1_state_proto_rawDescData)
})
return file_did_v1_state_proto_rawDescData
}
var file_did_v1_state_proto_msgTypes = make([]protoimpl.MessageInfo, 9)
var file_did_v1_state_proto_goTypes = []interface{}{
(*Authentication)(nil), // 0: did.v1.Authentication
(*Controller)(nil), // 1: did.v1.Controller
(*Verification)(nil), // 2: did.v1.Verification
(*Keyshares)(nil), // 3: did.v1.Keyshares
(*PubKey)(nil), // 4: did.v1.PubKey
(*JSONWebKey)(nil), // 5: did.v1.JSONWebKey
(*RawKey)(nil), // 6: did.v1.RawKey
nil, // 7: did.v1.Authentication.MetadataEntry
nil, // 8: did.v1.Verification.MetadataEntry
}
var file_did_v1_state_proto_depIdxs = []int32{
4, // 0: did.v1.Authentication.public_key:type_name -> did.v1.PubKey
7, // 1: did.v1.Authentication.metadata:type_name -> did.v1.Authentication.MetadataEntry
4, // 2: did.v1.Controller.public_key:type_name -> did.v1.PubKey
4, // 3: did.v1.Verification.public_key:type_name -> did.v1.PubKey
8, // 4: did.v1.Verification.metadata:type_name -> did.v1.Verification.MetadataEntry
6, // 5: did.v1.PubKey.raw_key:type_name -> did.v1.RawKey
5, // 6: did.v1.PubKey.jwk:type_name -> did.v1.JSONWebKey
7, // [7:7] is the sub-list for method output_type
7, // [7:7] is the sub-list for method input_type
7, // [7:7] is the sub-list for extension type_name
7, // [7:7] is the sub-list for extension extendee
0, // [0:7] is the sub-list for field type_name
}
func init() { file_did_v1_state_proto_init() }
func file_did_v1_state_proto_init() {
if File_did_v1_state_proto != nil {
return
}
if !protoimpl.UnsafeEnabled {
file_did_v1_state_proto_msgTypes[0].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*Authentication); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_state_proto_msgTypes[1].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*Controller); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_state_proto_msgTypes[2].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*Verification); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_state_proto_msgTypes[3].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*Keyshares); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_state_proto_msgTypes[4].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*PubKey); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_state_proto_msgTypes[5].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*JSONWebKey); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_did_v1_state_proto_msgTypes[6].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*RawKey); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
}
type x struct{}
out := protoimpl.TypeBuilder{
File: protoimpl.DescBuilder{
GoPackagePath: reflect.TypeOf(x{}).PkgPath(),
RawDescriptor: file_did_v1_state_proto_rawDesc,
NumEnums: 0,
NumMessages: 9,
NumExtensions: 0,
NumServices: 0,
},
GoTypes: file_did_v1_state_proto_goTypes,
DependencyIndexes: file_did_v1_state_proto_depIdxs,
MessageInfos: file_did_v1_state_proto_msgTypes,
}.Build()
File_did_v1_state_proto = out.File
file_did_v1_state_proto_rawDesc = nil
file_did_v1_state_proto_goTypes = nil
file_did_v1_state_proto_depIdxs = nil
}