legacy_enum.go 5.1 KB

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  1. // Copyright 2018 The Go Authors. All rights reserved.
  2. // Use of this source code is governed by a BSD-style
  3. // license that can be found in the LICENSE file.
  4. package impl
  5. import (
  6. "fmt"
  7. "math"
  8. "reflect"
  9. "sync"
  10. ptype "google.golang.org/protobuf/internal/prototype"
  11. pvalue "google.golang.org/protobuf/internal/value"
  12. pref "google.golang.org/protobuf/reflect/protoreflect"
  13. "google.golang.org/protobuf/reflect/prototype"
  14. )
  15. // legacyWrapEnum wraps v as a protoreflect.Enum,
  16. // where v must be a int32 kind and not implement the v2 API already.
  17. func legacyWrapEnum(v reflect.Value) pref.Enum {
  18. et := legacyLoadEnumType(v.Type())
  19. return et.New(pref.EnumNumber(v.Int()))
  20. }
  21. var legacyEnumTypeCache sync.Map // map[reflect.Type]protoreflect.EnumType
  22. // legacyLoadEnumType dynamically loads a protoreflect.EnumType for t,
  23. // where t must be an int32 kind and not implement the v2 API already.
  24. func legacyLoadEnumType(t reflect.Type) pref.EnumType {
  25. // Fast-path: check if a EnumType is cached for this concrete type.
  26. if et, ok := legacyEnumTypeCache.Load(t); ok {
  27. return et.(pref.EnumType)
  28. }
  29. // Slow-path: derive enum descriptor and initialize EnumType.
  30. var et pref.EnumType
  31. var m sync.Map // map[protoreflect.EnumNumber]proto.Enum
  32. ed := LegacyLoadEnumDesc(t)
  33. et = &prototype.Enum{
  34. EnumDescriptor: ed,
  35. NewEnum: func(n pref.EnumNumber) pref.Enum {
  36. if e, ok := m.Load(n); ok {
  37. return e.(pref.Enum)
  38. }
  39. e := &legacyEnumWrapper{num: n, pbTyp: et, goTyp: t}
  40. m.Store(n, e)
  41. return e
  42. },
  43. }
  44. if et, ok := legacyEnumTypeCache.LoadOrStore(t, et); ok {
  45. return et.(pref.EnumType)
  46. }
  47. return et
  48. }
  49. type legacyEnumWrapper struct {
  50. num pref.EnumNumber
  51. pbTyp pref.EnumType
  52. goTyp reflect.Type
  53. }
  54. func (e *legacyEnumWrapper) Descriptor() pref.EnumDescriptor {
  55. return e.pbTyp.Descriptor()
  56. }
  57. func (e *legacyEnumWrapper) Number() pref.EnumNumber {
  58. return e.num
  59. }
  60. func (e *legacyEnumWrapper) ProtoReflect() pref.Enum {
  61. return e
  62. }
  63. func (e *legacyEnumWrapper) ProtoUnwrap() interface{} {
  64. v := reflect.New(e.goTyp).Elem()
  65. v.SetInt(int64(e.num))
  66. return v.Interface()
  67. }
  68. var (
  69. _ pref.Enum = (*legacyEnumWrapper)(nil)
  70. _ pvalue.Unwrapper = (*legacyEnumWrapper)(nil)
  71. )
  72. var legacyEnumDescCache sync.Map // map[reflect.Type]protoreflect.EnumDescriptor
  73. var legacyEnumNumberType = reflect.TypeOf(pref.EnumNumber(0))
  74. // LegacyLoadEnumDesc returns an EnumDescriptor derived from the Go type,
  75. // which must be an int32 kind and not implement the v2 API already.
  76. //
  77. // This is exported for testing purposes.
  78. func LegacyLoadEnumDesc(t reflect.Type) pref.EnumDescriptor {
  79. // Fast-path: check if an EnumDescriptor is cached for this concrete type.
  80. if ed, ok := legacyEnumDescCache.Load(t); ok {
  81. return ed.(pref.EnumDescriptor)
  82. }
  83. // Slow-path: initialize EnumDescriptor from the proto descriptor.
  84. if t.Kind() != reflect.Int32 || t.PkgPath() == "" {
  85. panic(fmt.Sprintf("got %v, want named int32 kind", t))
  86. }
  87. if t == legacyEnumNumberType {
  88. panic(fmt.Sprintf("cannot be %v", t))
  89. }
  90. // Derive the enum descriptor from the raw descriptor proto.
  91. e := new(ptype.StandaloneEnum)
  92. ev := reflect.Zero(t).Interface()
  93. if _, ok := ev.(pref.Enum); ok {
  94. panic(fmt.Sprintf("%v already implements proto.Enum", t))
  95. }
  96. if ed, ok := ev.(enumV1); ok {
  97. b, idxs := ed.EnumDescriptor()
  98. fd := legacyLoadFileDesc(b)
  99. // Derive syntax.
  100. switch fd.GetSyntax() {
  101. case "proto2", "":
  102. e.Syntax = pref.Proto2
  103. case "proto3":
  104. e.Syntax = pref.Proto3
  105. }
  106. // Derive the full name and correct enum descriptor.
  107. var ed *legacyEnumDescriptorProto
  108. e.FullName = pref.FullName(fd.GetPackage())
  109. if len(idxs) == 1 {
  110. ed = fd.EnumType[idxs[0]]
  111. e.FullName = e.FullName.Append(pref.Name(ed.GetName()))
  112. } else {
  113. md := fd.MessageType[idxs[0]]
  114. e.FullName = e.FullName.Append(pref.Name(md.GetName()))
  115. for _, i := range idxs[1 : len(idxs)-1] {
  116. md = md.NestedType[i]
  117. e.FullName = e.FullName.Append(pref.Name(md.GetName()))
  118. }
  119. ed = md.EnumType[idxs[len(idxs)-1]]
  120. e.FullName = e.FullName.Append(pref.Name(ed.GetName()))
  121. }
  122. // Derive the enum values.
  123. for _, vd := range ed.Value {
  124. e.Values = append(e.Values, ptype.EnumValue{
  125. Name: pref.Name(vd.GetName()),
  126. Number: pref.EnumNumber(vd.GetNumber()),
  127. })
  128. }
  129. } else {
  130. // If the type does not implement enumV1, then there is no reliable
  131. // way to derive the original protobuf type information.
  132. // We are unable to use the global enum registry since it is
  133. // unfortunately keyed by the full name, which we do not know.
  134. // Furthermore, some generated enums register with a fork of
  135. // golang/protobuf so the enum may not even be found in the registry.
  136. //
  137. // Instead, create a bogus enum descriptor to ensure that
  138. // most operations continue to work. For example, prototext and protojson
  139. // will be unable to parse a message with an enum value by name.
  140. e.Syntax = pref.Proto2
  141. e.FullName = legacyDeriveFullName(t)
  142. e.Values = []ptype.EnumValue{{Name: "INVALID", Number: math.MinInt32}}
  143. }
  144. ed, err := ptype.NewEnum(e)
  145. if err != nil {
  146. panic(err)
  147. }
  148. if ed, ok := legacyEnumDescCache.LoadOrStore(t, ed); ok {
  149. return ed.(pref.EnumDescriptor)
  150. }
  151. return ed
  152. }