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image.pb.go
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image.pb.go
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// Copyright 2021 Google LLC
//
// Licensed under the Apache License, Version 2.0 (the "License");
// you may not use this file except in compliance with the License.
// You may obtain a copy of the License at
//
// http://www.apache.org/licenses/LICENSE-2.0
//
// Unless required by applicable law or agreed to in writing, software
// distributed under the License is distributed on an "AS IS" BASIS,
// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
// See the License for the specific language governing permissions and
// limitations under the License.
// Code generated by protoc-gen-go. DO NOT EDIT.
// versions:
// protoc-gen-go v1.26.0
// protoc v3.12.2
// source: google/cloud/automl/v1/image.proto
package automl
import (
reflect "reflect"
sync "sync"
_ "google.golang.org/genproto/googleapis/api/annotations"
protoreflect "google.golang.org/protobuf/reflect/protoreflect"
protoimpl "google.golang.org/protobuf/runtime/protoimpl"
_ "google.golang.org/protobuf/types/known/timestamppb"
)
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)
)
// Dataset metadata that is specific to image classification.
type ImageClassificationDatasetMetadata struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// Required. Type of the classification problem.
ClassificationType ClassificationType `protobuf:"varint,1,opt,name=classification_type,json=classificationType,proto3,enum=google.cloud.automl.v1.ClassificationType" json:"classification_type,omitempty"`
}
func (x *ImageClassificationDatasetMetadata) Reset() {
*x = ImageClassificationDatasetMetadata{}
if protoimpl.UnsafeEnabled {
mi := &file_google_cloud_automl_v1_image_proto_msgTypes[0]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ImageClassificationDatasetMetadata) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ImageClassificationDatasetMetadata) ProtoMessage() {}
func (x *ImageClassificationDatasetMetadata) ProtoReflect() protoreflect.Message {
mi := &file_google_cloud_automl_v1_image_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)
}
// Deprecated: Use ImageClassificationDatasetMetadata.ProtoReflect.Descriptor instead.
func (*ImageClassificationDatasetMetadata) Descriptor() ([]byte, []int) {
return file_google_cloud_automl_v1_image_proto_rawDescGZIP(), []int{0}
}
func (x *ImageClassificationDatasetMetadata) GetClassificationType() ClassificationType {
if x != nil {
return x.ClassificationType
}
return ClassificationType_CLASSIFICATION_TYPE_UNSPECIFIED
}
// Dataset metadata specific to image object detection.
type ImageObjectDetectionDatasetMetadata struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
}
func (x *ImageObjectDetectionDatasetMetadata) Reset() {
*x = ImageObjectDetectionDatasetMetadata{}
if protoimpl.UnsafeEnabled {
mi := &file_google_cloud_automl_v1_image_proto_msgTypes[1]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ImageObjectDetectionDatasetMetadata) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ImageObjectDetectionDatasetMetadata) ProtoMessage() {}
func (x *ImageObjectDetectionDatasetMetadata) ProtoReflect() protoreflect.Message {
mi := &file_google_cloud_automl_v1_image_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)
}
// Deprecated: Use ImageObjectDetectionDatasetMetadata.ProtoReflect.Descriptor instead.
func (*ImageObjectDetectionDatasetMetadata) Descriptor() ([]byte, []int) {
return file_google_cloud_automl_v1_image_proto_rawDescGZIP(), []int{1}
}
// Model metadata for image classification.
type ImageClassificationModelMetadata struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// Optional. The ID of the `base` model. If it is specified, the new model
// will be created based on the `base` model. Otherwise, the new model will be
// created from scratch. The `base` model must be in the same
// `project` and `location` as the new model to create, and have the same
// `model_type`.
BaseModelId string `protobuf:"bytes,1,opt,name=base_model_id,json=baseModelId,proto3" json:"base_model_id,omitempty"`
// Optional. The train budget of creating this model, expressed in milli node
// hours i.e. 1,000 value in this field means 1 node hour. The actual
// `train_cost` will be equal or less than this value. If further model
// training ceases to provide any improvements, it will stop without using
// full budget and the stop_reason will be `MODEL_CONVERGED`.
// Note, node_hour = actual_hour * number_of_nodes_invovled.
// For model type `cloud`(default), the train budget must be between 8,000
// and 800,000 milli node hours, inclusive. The default value is 192, 000
// which represents one day in wall time. For model type
// `mobile-low-latency-1`, `mobile-versatile-1`, `mobile-high-accuracy-1`,
// `mobile-core-ml-low-latency-1`, `mobile-core-ml-versatile-1`,
// `mobile-core-ml-high-accuracy-1`, the train budget must be between 1,000
// and 100,000 milli node hours, inclusive. The default value is 24, 000 which
// represents one day in wall time.
TrainBudgetMilliNodeHours int64 `protobuf:"varint,16,opt,name=train_budget_milli_node_hours,json=trainBudgetMilliNodeHours,proto3" json:"train_budget_milli_node_hours,omitempty"`
// Output only. The actual train cost of creating this model, expressed in
// milli node hours, i.e. 1,000 value in this field means 1 node hour.
// Guaranteed to not exceed the train budget.
TrainCostMilliNodeHours int64 `protobuf:"varint,17,opt,name=train_cost_milli_node_hours,json=trainCostMilliNodeHours,proto3" json:"train_cost_milli_node_hours,omitempty"`
// Output only. The reason that this create model operation stopped,
// e.g. `BUDGET_REACHED`, `MODEL_CONVERGED`.
StopReason string `protobuf:"bytes,5,opt,name=stop_reason,json=stopReason,proto3" json:"stop_reason,omitempty"`
// Optional. Type of the model. The available values are:
// * `cloud` - Model to be used via prediction calls to AutoML API.
// This is the default value.
// * `mobile-low-latency-1` - A model that, in addition to providing
// prediction via AutoML API, can also be exported (see
// [AutoMl.ExportModel][google.cloud.automl.v1.AutoMl.ExportModel]) and used on a mobile or edge device
// with TensorFlow afterwards. Expected to have low latency, but
// may have lower prediction quality than other models.
// * `mobile-versatile-1` - A model that, in addition to providing
// prediction via AutoML API, can also be exported (see
// [AutoMl.ExportModel][google.cloud.automl.v1.AutoMl.ExportModel]) and used on a mobile or edge device
// with TensorFlow afterwards.
// * `mobile-high-accuracy-1` - A model that, in addition to providing
// prediction via AutoML API, can also be exported (see
// [AutoMl.ExportModel][google.cloud.automl.v1.AutoMl.ExportModel]) and used on a mobile or edge device
// with TensorFlow afterwards. Expected to have a higher
// latency, but should also have a higher prediction quality
// than other models.
// * `mobile-core-ml-low-latency-1` - A model that, in addition to providing
// prediction via AutoML API, can also be exported (see
// [AutoMl.ExportModel][google.cloud.automl.v1.AutoMl.ExportModel]) and used on a mobile device with Core
// ML afterwards. Expected to have low latency, but may have
// lower prediction quality than other models.
// * `mobile-core-ml-versatile-1` - A model that, in addition to providing
// prediction via AutoML API, can also be exported (see
// [AutoMl.ExportModel][google.cloud.automl.v1.AutoMl.ExportModel]) and used on a mobile device with Core
// ML afterwards.
// * `mobile-core-ml-high-accuracy-1` - A model that, in addition to
// providing prediction via AutoML API, can also be exported
// (see [AutoMl.ExportModel][google.cloud.automl.v1.AutoMl.ExportModel]) and used on a mobile device with
// Core ML afterwards. Expected to have a higher latency, but
// should also have a higher prediction quality than other
// models.
ModelType string `protobuf:"bytes,7,opt,name=model_type,json=modelType,proto3" json:"model_type,omitempty"`
// Output only. An approximate number of online prediction QPS that can
// be supported by this model per each node on which it is deployed.
NodeQps float64 `protobuf:"fixed64,13,opt,name=node_qps,json=nodeQps,proto3" json:"node_qps,omitempty"`
// Output only. The number of nodes this model is deployed on. A node is an
// abstraction of a machine resource, which can handle online prediction QPS
// as given in the node_qps field.
NodeCount int64 `protobuf:"varint,14,opt,name=node_count,json=nodeCount,proto3" json:"node_count,omitempty"`
}
func (x *ImageClassificationModelMetadata) Reset() {
*x = ImageClassificationModelMetadata{}
if protoimpl.UnsafeEnabled {
mi := &file_google_cloud_automl_v1_image_proto_msgTypes[2]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ImageClassificationModelMetadata) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ImageClassificationModelMetadata) ProtoMessage() {}
func (x *ImageClassificationModelMetadata) ProtoReflect() protoreflect.Message {
mi := &file_google_cloud_automl_v1_image_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)
}
// Deprecated: Use ImageClassificationModelMetadata.ProtoReflect.Descriptor instead.
func (*ImageClassificationModelMetadata) Descriptor() ([]byte, []int) {
return file_google_cloud_automl_v1_image_proto_rawDescGZIP(), []int{2}
}
func (x *ImageClassificationModelMetadata) GetBaseModelId() string {
if x != nil {
return x.BaseModelId
}
return ""
}
func (x *ImageClassificationModelMetadata) GetTrainBudgetMilliNodeHours() int64 {
if x != nil {
return x.TrainBudgetMilliNodeHours
}
return 0
}
func (x *ImageClassificationModelMetadata) GetTrainCostMilliNodeHours() int64 {
if x != nil {
return x.TrainCostMilliNodeHours
}
return 0
}
func (x *ImageClassificationModelMetadata) GetStopReason() string {
if x != nil {
return x.StopReason
}
return ""
}
func (x *ImageClassificationModelMetadata) GetModelType() string {
if x != nil {
return x.ModelType
}
return ""
}
func (x *ImageClassificationModelMetadata) GetNodeQps() float64 {
if x != nil {
return x.NodeQps
}
return 0
}
func (x *ImageClassificationModelMetadata) GetNodeCount() int64 {
if x != nil {
return x.NodeCount
}
return 0
}
// Model metadata specific to image object detection.
type ImageObjectDetectionModelMetadata struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// Optional. Type of the model. The available values are:
// * `cloud-high-accuracy-1` - (default) A model to be used via prediction
// calls to AutoML API. Expected to have a higher latency, but
// should also have a higher prediction quality than other
// models.
// * `cloud-low-latency-1` - A model to be used via prediction
// calls to AutoML API. Expected to have low latency, but may
// have lower prediction quality than other models.
// * `mobile-low-latency-1` - A model that, in addition to providing
// prediction via AutoML API, can also be exported (see
// [AutoMl.ExportModel][google.cloud.automl.v1.AutoMl.ExportModel]) and used on a mobile or edge device
// with TensorFlow afterwards. Expected to have low latency, but
// may have lower prediction quality than other models.
// * `mobile-versatile-1` - A model that, in addition to providing
// prediction via AutoML API, can also be exported (see
// [AutoMl.ExportModel][google.cloud.automl.v1.AutoMl.ExportModel]) and used on a mobile or edge device
// with TensorFlow afterwards.
// * `mobile-high-accuracy-1` - A model that, in addition to providing
// prediction via AutoML API, can also be exported (see
// [AutoMl.ExportModel][google.cloud.automl.v1.AutoMl.ExportModel]) and used on a mobile or edge device
// with TensorFlow afterwards. Expected to have a higher
// latency, but should also have a higher prediction quality
// than other models.
ModelType string `protobuf:"bytes,1,opt,name=model_type,json=modelType,proto3" json:"model_type,omitempty"`
// Output only. The number of nodes this model is deployed on. A node is an
// abstraction of a machine resource, which can handle online prediction QPS
// as given in the qps_per_node field.
NodeCount int64 `protobuf:"varint,3,opt,name=node_count,json=nodeCount,proto3" json:"node_count,omitempty"`
// Output only. An approximate number of online prediction QPS that can
// be supported by this model per each node on which it is deployed.
NodeQps float64 `protobuf:"fixed64,4,opt,name=node_qps,json=nodeQps,proto3" json:"node_qps,omitempty"`
// Output only. The reason that this create model operation stopped,
// e.g. `BUDGET_REACHED`, `MODEL_CONVERGED`.
StopReason string `protobuf:"bytes,5,opt,name=stop_reason,json=stopReason,proto3" json:"stop_reason,omitempty"`
// Optional. The train budget of creating this model, expressed in milli node
// hours i.e. 1,000 value in this field means 1 node hour. The actual
// `train_cost` will be equal or less than this value. If further model
// training ceases to provide any improvements, it will stop without using
// full budget and the stop_reason will be `MODEL_CONVERGED`.
// Note, node_hour = actual_hour * number_of_nodes_invovled.
// For model type `cloud-high-accuracy-1`(default) and `cloud-low-latency-1`,
// the train budget must be between 20,000 and 900,000 milli node hours,
// inclusive. The default value is 216, 000 which represents one day in
// wall time.
// For model type `mobile-low-latency-1`, `mobile-versatile-1`,
// `mobile-high-accuracy-1`, `mobile-core-ml-low-latency-1`,
// `mobile-core-ml-versatile-1`, `mobile-core-ml-high-accuracy-1`, the train
// budget must be between 1,000 and 100,000 milli node hours, inclusive.
// The default value is 24, 000 which represents one day in wall time.
TrainBudgetMilliNodeHours int64 `protobuf:"varint,6,opt,name=train_budget_milli_node_hours,json=trainBudgetMilliNodeHours,proto3" json:"train_budget_milli_node_hours,omitempty"`
// Output only. The actual train cost of creating this model, expressed in
// milli node hours, i.e. 1,000 value in this field means 1 node hour.
// Guaranteed to not exceed the train budget.
TrainCostMilliNodeHours int64 `protobuf:"varint,7,opt,name=train_cost_milli_node_hours,json=trainCostMilliNodeHours,proto3" json:"train_cost_milli_node_hours,omitempty"`
}
func (x *ImageObjectDetectionModelMetadata) Reset() {
*x = ImageObjectDetectionModelMetadata{}
if protoimpl.UnsafeEnabled {
mi := &file_google_cloud_automl_v1_image_proto_msgTypes[3]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ImageObjectDetectionModelMetadata) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ImageObjectDetectionModelMetadata) ProtoMessage() {}
func (x *ImageObjectDetectionModelMetadata) ProtoReflect() protoreflect.Message {
mi := &file_google_cloud_automl_v1_image_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)
}
// Deprecated: Use ImageObjectDetectionModelMetadata.ProtoReflect.Descriptor instead.
func (*ImageObjectDetectionModelMetadata) Descriptor() ([]byte, []int) {
return file_google_cloud_automl_v1_image_proto_rawDescGZIP(), []int{3}
}
func (x *ImageObjectDetectionModelMetadata) GetModelType() string {
if x != nil {
return x.ModelType
}
return ""
}
func (x *ImageObjectDetectionModelMetadata) GetNodeCount() int64 {
if x != nil {
return x.NodeCount
}
return 0
}
func (x *ImageObjectDetectionModelMetadata) GetNodeQps() float64 {
if x != nil {
return x.NodeQps
}
return 0
}
func (x *ImageObjectDetectionModelMetadata) GetStopReason() string {
if x != nil {
return x.StopReason
}
return ""
}
func (x *ImageObjectDetectionModelMetadata) GetTrainBudgetMilliNodeHours() int64 {
if x != nil {
return x.TrainBudgetMilliNodeHours
}
return 0
}
func (x *ImageObjectDetectionModelMetadata) GetTrainCostMilliNodeHours() int64 {
if x != nil {
return x.TrainCostMilliNodeHours
}
return 0
}
// Model deployment metadata specific to Image Classification.
type ImageClassificationModelDeploymentMetadata struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// Input only. The number of nodes to deploy the model on. A node is an
// abstraction of a machine resource, which can handle online prediction QPS
// as given in the model's
// [node_qps][google.cloud.automl.v1.ImageClassificationModelMetadata.node_qps].
// Must be between 1 and 100, inclusive on both ends.
NodeCount int64 `protobuf:"varint,1,opt,name=node_count,json=nodeCount,proto3" json:"node_count,omitempty"`
}
func (x *ImageClassificationModelDeploymentMetadata) Reset() {
*x = ImageClassificationModelDeploymentMetadata{}
if protoimpl.UnsafeEnabled {
mi := &file_google_cloud_automl_v1_image_proto_msgTypes[4]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ImageClassificationModelDeploymentMetadata) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ImageClassificationModelDeploymentMetadata) ProtoMessage() {}
func (x *ImageClassificationModelDeploymentMetadata) ProtoReflect() protoreflect.Message {
mi := &file_google_cloud_automl_v1_image_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)
}
// Deprecated: Use ImageClassificationModelDeploymentMetadata.ProtoReflect.Descriptor instead.
func (*ImageClassificationModelDeploymentMetadata) Descriptor() ([]byte, []int) {
return file_google_cloud_automl_v1_image_proto_rawDescGZIP(), []int{4}
}
func (x *ImageClassificationModelDeploymentMetadata) GetNodeCount() int64 {
if x != nil {
return x.NodeCount
}
return 0
}
// Model deployment metadata specific to Image Object Detection.
type ImageObjectDetectionModelDeploymentMetadata struct {
state protoimpl.MessageState
sizeCache protoimpl.SizeCache
unknownFields protoimpl.UnknownFields
// Input only. The number of nodes to deploy the model on. A node is an
// abstraction of a machine resource, which can handle online prediction QPS
// as given in the model's
// [qps_per_node][google.cloud.automl.v1.ImageObjectDetectionModelMetadata.qps_per_node].
// Must be between 1 and 100, inclusive on both ends.
NodeCount int64 `protobuf:"varint,1,opt,name=node_count,json=nodeCount,proto3" json:"node_count,omitempty"`
}
func (x *ImageObjectDetectionModelDeploymentMetadata) Reset() {
*x = ImageObjectDetectionModelDeploymentMetadata{}
if protoimpl.UnsafeEnabled {
mi := &file_google_cloud_automl_v1_image_proto_msgTypes[5]
ms := protoimpl.X.MessageStateOf(protoimpl.Pointer(x))
ms.StoreMessageInfo(mi)
}
}
func (x *ImageObjectDetectionModelDeploymentMetadata) String() string {
return protoimpl.X.MessageStringOf(x)
}
func (*ImageObjectDetectionModelDeploymentMetadata) ProtoMessage() {}
func (x *ImageObjectDetectionModelDeploymentMetadata) ProtoReflect() protoreflect.Message {
mi := &file_google_cloud_automl_v1_image_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)
}
// Deprecated: Use ImageObjectDetectionModelDeploymentMetadata.ProtoReflect.Descriptor instead.
func (*ImageObjectDetectionModelDeploymentMetadata) Descriptor() ([]byte, []int) {
return file_google_cloud_automl_v1_image_proto_rawDescGZIP(), []int{5}
}
func (x *ImageObjectDetectionModelDeploymentMetadata) GetNodeCount() int64 {
if x != nil {
return x.NodeCount
}
return 0
}
var File_google_cloud_automl_v1_image_proto protoreflect.FileDescriptor
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}
var (
file_google_cloud_automl_v1_image_proto_rawDescOnce sync.Once
file_google_cloud_automl_v1_image_proto_rawDescData = file_google_cloud_automl_v1_image_proto_rawDesc
)
func file_google_cloud_automl_v1_image_proto_rawDescGZIP() []byte {
file_google_cloud_automl_v1_image_proto_rawDescOnce.Do(func() {
file_google_cloud_automl_v1_image_proto_rawDescData = protoimpl.X.CompressGZIP(file_google_cloud_automl_v1_image_proto_rawDescData)
})
return file_google_cloud_automl_v1_image_proto_rawDescData
}
var file_google_cloud_automl_v1_image_proto_msgTypes = make([]protoimpl.MessageInfo, 6)
var file_google_cloud_automl_v1_image_proto_goTypes = []interface{}{
(*ImageClassificationDatasetMetadata)(nil), // 0: google.cloud.automl.v1.ImageClassificationDatasetMetadata
(*ImageObjectDetectionDatasetMetadata)(nil), // 1: google.cloud.automl.v1.ImageObjectDetectionDatasetMetadata
(*ImageClassificationModelMetadata)(nil), // 2: google.cloud.automl.v1.ImageClassificationModelMetadata
(*ImageObjectDetectionModelMetadata)(nil), // 3: google.cloud.automl.v1.ImageObjectDetectionModelMetadata
(*ImageClassificationModelDeploymentMetadata)(nil), // 4: google.cloud.automl.v1.ImageClassificationModelDeploymentMetadata
(*ImageObjectDetectionModelDeploymentMetadata)(nil), // 5: google.cloud.automl.v1.ImageObjectDetectionModelDeploymentMetadata
(ClassificationType)(0), // 6: google.cloud.automl.v1.ClassificationType
}
var file_google_cloud_automl_v1_image_proto_depIdxs = []int32{
6, // 0: google.cloud.automl.v1.ImageClassificationDatasetMetadata.classification_type:type_name -> google.cloud.automl.v1.ClassificationType
1, // [1:1] is the sub-list for method output_type
1, // [1:1] is the sub-list for method input_type
1, // [1:1] is the sub-list for extension type_name
1, // [1:1] is the sub-list for extension extendee
0, // [0:1] is the sub-list for field type_name
}
func init() { file_google_cloud_automl_v1_image_proto_init() }
func file_google_cloud_automl_v1_image_proto_init() {
if File_google_cloud_automl_v1_image_proto != nil {
return
}
file_google_cloud_automl_v1_annotation_spec_proto_init()
file_google_cloud_automl_v1_classification_proto_init()
if !protoimpl.UnsafeEnabled {
file_google_cloud_automl_v1_image_proto_msgTypes[0].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ImageClassificationDatasetMetadata); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_google_cloud_automl_v1_image_proto_msgTypes[1].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ImageObjectDetectionDatasetMetadata); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_google_cloud_automl_v1_image_proto_msgTypes[2].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ImageClassificationModelMetadata); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_google_cloud_automl_v1_image_proto_msgTypes[3].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ImageObjectDetectionModelMetadata); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_google_cloud_automl_v1_image_proto_msgTypes[4].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ImageClassificationModelDeploymentMetadata); i {
case 0:
return &v.state
case 1:
return &v.sizeCache
case 2:
return &v.unknownFields
default:
return nil
}
}
file_google_cloud_automl_v1_image_proto_msgTypes[5].Exporter = func(v interface{}, i int) interface{} {
switch v := v.(*ImageObjectDetectionModelDeploymentMetadata); 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_google_cloud_automl_v1_image_proto_rawDesc,
NumEnums: 0,
NumMessages: 6,
NumExtensions: 0,
NumServices: 0,
},
GoTypes: file_google_cloud_automl_v1_image_proto_goTypes,
DependencyIndexes: file_google_cloud_automl_v1_image_proto_depIdxs,
MessageInfos: file_google_cloud_automl_v1_image_proto_msgTypes,
}.Build()
File_google_cloud_automl_v1_image_proto = out.File
file_google_cloud_automl_v1_image_proto_rawDesc = nil
file_google_cloud_automl_v1_image_proto_goTypes = nil
file_google_cloud_automl_v1_image_proto_depIdxs = nil
}