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public final class SmoothGradConfig extends GeneratedMessageV3 implements SmoothGradConfigOrBuilder
Config for SmoothGrad approximation of gradients. When enabled, the gradients are approximated by averaging the gradients from noisy samples in the vicinity of the inputs. Adding noise can help improve the computed gradients. Refer to this paper for more details: https://arxiv.org/pdf/1706.03825.pdf
Protobuf type google.cloud.aiplatform.v1beta1.SmoothGradConfig
Inheritance
Object > AbstractMessageLite<MessageType,BuilderType> > AbstractMessage > GeneratedMessageV3 > SmoothGradConfigImplements
SmoothGradConfigOrBuilderFields
FEATURE_NOISE_SIGMA_FIELD_NUMBER
public static final int FEATURE_NOISE_SIGMA_FIELD_NUMBER
Type | Description |
int |
NOISE_SIGMA_FIELD_NUMBER
public static final int NOISE_SIGMA_FIELD_NUMBER
Type | Description |
int |
NOISY_SAMPLE_COUNT_FIELD_NUMBER
public static final int NOISY_SAMPLE_COUNT_FIELD_NUMBER
Type | Description |
int |
Methods
equals(Object obj)
public boolean equals(Object obj)
Name | Description |
obj | Object |
Type | Description |
boolean |
getDefaultInstance()
public static SmoothGradConfig getDefaultInstance()
Type | Description |
SmoothGradConfig |
getDefaultInstanceForType()
public SmoothGradConfig getDefaultInstanceForType()
Type | Description |
SmoothGradConfig |
getDescriptor()
public static final Descriptors.Descriptor getDescriptor()
Type | Description |
Descriptor |
getFeatureNoiseSigma()
public FeatureNoiseSigma getFeatureNoiseSigma()
This is similar to noise_sigma, but provides additional flexibility. A separate noise sigma can be provided for each feature, which is useful if their distributions are different. No noise is added to features that are not set. If this field is unset, noise_sigma will be used for all features.
.google.cloud.aiplatform.v1beta1.FeatureNoiseSigma feature_noise_sigma = 2;
Type | Description |
FeatureNoiseSigma | The featureNoiseSigma. |
getFeatureNoiseSigmaOrBuilder()
public FeatureNoiseSigmaOrBuilder getFeatureNoiseSigmaOrBuilder()
This is similar to noise_sigma, but provides additional flexibility. A separate noise sigma can be provided for each feature, which is useful if their distributions are different. No noise is added to features that are not set. If this field is unset, noise_sigma will be used for all features.
.google.cloud.aiplatform.v1beta1.FeatureNoiseSigma feature_noise_sigma = 2;
Type | Description |
FeatureNoiseSigmaOrBuilder |
getGradientNoiseSigmaCase()
public SmoothGradConfig.GradientNoiseSigmaCase getGradientNoiseSigmaCase()
Type | Description |
SmoothGradConfig.GradientNoiseSigmaCase |
getNoiseSigma()
public float getNoiseSigma()
This is a single float value and will be used to add noise to all the features. Use this field when all features are normalized to have the same distribution: scale to range [0, 1], [-1, 1] or z-scoring, where features are normalized to have 0-mean and 1-variance. Learn more about normalization. For best results the recommended value is about 10% - 20% of the standard deviation of the input feature. Refer to section 3.2 of the SmoothGrad paper: https://arxiv.org/pdf/1706.03825.pdf. Defaults to 0.1. If the distribution is different per feature, set feature_noise_sigma instead for each feature.
float noise_sigma = 1;
Type | Description |
float | The noiseSigma. |
getNoisySampleCount()
public int getNoisySampleCount()
The number of gradient samples to use for approximation. The higher this number, the more accurate the gradient is, but the runtime complexity increases by this factor as well. Valid range of its value is [1, 50]. Defaults to 3.
int32 noisy_sample_count = 3;
Type | Description |
int | The noisySampleCount. |
getParserForType()
public Parser<SmoothGradConfig> getParserForType()
Type | Description |
Parser<SmoothGradConfig> |
getSerializedSize()
public int getSerializedSize()
Type | Description |
int |
getUnknownFields()
public final UnknownFieldSet getUnknownFields()
Type | Description |
UnknownFieldSet |
hasFeatureNoiseSigma()
public boolean hasFeatureNoiseSigma()
This is similar to noise_sigma, but provides additional flexibility. A separate noise sigma can be provided for each feature, which is useful if their distributions are different. No noise is added to features that are not set. If this field is unset, noise_sigma will be used for all features.
.google.cloud.aiplatform.v1beta1.FeatureNoiseSigma feature_noise_sigma = 2;
Type | Description |
boolean | Whether the featureNoiseSigma field is set. |
hasNoiseSigma()
public boolean hasNoiseSigma()
This is a single float value and will be used to add noise to all the features. Use this field when all features are normalized to have the same distribution: scale to range [0, 1], [-1, 1] or z-scoring, where features are normalized to have 0-mean and 1-variance. Learn more about normalization. For best results the recommended value is about 10% - 20% of the standard deviation of the input feature. Refer to section 3.2 of the SmoothGrad paper: https://arxiv.org/pdf/1706.03825.pdf. Defaults to 0.1. If the distribution is different per feature, set feature_noise_sigma instead for each feature.
float noise_sigma = 1;
Type | Description |
boolean | Whether the noiseSigma field is set. |
hashCode()
public int hashCode()
Type | Description |
int |
internalGetFieldAccessorTable()
protected GeneratedMessageV3.FieldAccessorTable internalGetFieldAccessorTable()
Type | Description |
FieldAccessorTable |
isInitialized()
public final boolean isInitialized()
Type | Description |
boolean |
newBuilder()
public static SmoothGradConfig.Builder newBuilder()
Type | Description |
SmoothGradConfig.Builder |
newBuilder(SmoothGradConfig prototype)
public static SmoothGradConfig.Builder newBuilder(SmoothGradConfig prototype)
Name | Description |
prototype | SmoothGradConfig |
Type | Description |
SmoothGradConfig.Builder |
newBuilderForType()
public SmoothGradConfig.Builder newBuilderForType()
Type | Description |
SmoothGradConfig.Builder |
newBuilderForType(GeneratedMessageV3.BuilderParent parent)
protected SmoothGradConfig.Builder newBuilderForType(GeneratedMessageV3.BuilderParent parent)
Name | Description |
parent | BuilderParent |
Type | Description |
SmoothGradConfig.Builder |
newInstance(GeneratedMessageV3.UnusedPrivateParameter unused)
protected Object newInstance(GeneratedMessageV3.UnusedPrivateParameter unused)
Name | Description |
unused | UnusedPrivateParameter |
Type | Description |
Object |
parseDelimitedFrom(InputStream input)
public static SmoothGradConfig parseDelimitedFrom(InputStream input)
Name | Description |
input | InputStream |
Type | Description |
SmoothGradConfig |
Type | Description |
IOException |
parseDelimitedFrom(InputStream input, ExtensionRegistryLite extensionRegistry)
public static SmoothGradConfig parseDelimitedFrom(InputStream input, ExtensionRegistryLite extensionRegistry)
Name | Description |
input | InputStream |
extensionRegistry | ExtensionRegistryLite |
Type | Description |
SmoothGradConfig |
Type | Description |
IOException |
parseFrom(byte[] data)
public static SmoothGradConfig parseFrom(byte[] data)
Name | Description |
data | byte[] |
Type | Description |
SmoothGradConfig |
Type | Description |
InvalidProtocolBufferException |
parseFrom(byte[] data, ExtensionRegistryLite extensionRegistry)
public static SmoothGradConfig parseFrom(byte[] data, ExtensionRegistryLite extensionRegistry)
Name | Description |
data | byte[] |
extensionRegistry | ExtensionRegistryLite |
Type | Description |
SmoothGradConfig |
Type | Description |
InvalidProtocolBufferException |
parseFrom(ByteString data)
public static SmoothGradConfig parseFrom(ByteString data)
Name | Description |
data | ByteString |
Type | Description |
SmoothGradConfig |
Type | Description |
InvalidProtocolBufferException |
parseFrom(ByteString data, ExtensionRegistryLite extensionRegistry)
public static SmoothGradConfig parseFrom(ByteString data, ExtensionRegistryLite extensionRegistry)
Name | Description |
data | ByteString |
extensionRegistry | ExtensionRegistryLite |
Type | Description |
SmoothGradConfig |
Type | Description |
InvalidProtocolBufferException |
parseFrom(CodedInputStream input)
public static SmoothGradConfig parseFrom(CodedInputStream input)
Name | Description |
input | CodedInputStream |
Type | Description |
SmoothGradConfig |
Type | Description |
IOException |
parseFrom(CodedInputStream input, ExtensionRegistryLite extensionRegistry)
public static SmoothGradConfig parseFrom(CodedInputStream input, ExtensionRegistryLite extensionRegistry)
Name | Description |
input | CodedInputStream |
extensionRegistry | ExtensionRegistryLite |
Type | Description |
SmoothGradConfig |
Type | Description |
IOException |
parseFrom(InputStream input)
public static SmoothGradConfig parseFrom(InputStream input)
Name | Description |
input | InputStream |
Type | Description |
SmoothGradConfig |
Type | Description |
IOException |
parseFrom(InputStream input, ExtensionRegistryLite extensionRegistry)
public static SmoothGradConfig parseFrom(InputStream input, ExtensionRegistryLite extensionRegistry)
Name | Description |
input | InputStream |
extensionRegistry | ExtensionRegistryLite |
Type | Description |
SmoothGradConfig |
Type | Description |
IOException |
parseFrom(ByteBuffer data)
public static SmoothGradConfig parseFrom(ByteBuffer data)
Name | Description |
data | ByteBuffer |
Type | Description |
SmoothGradConfig |
Type | Description |
InvalidProtocolBufferException |
parseFrom(ByteBuffer data, ExtensionRegistryLite extensionRegistry)
public static SmoothGradConfig parseFrom(ByteBuffer data, ExtensionRegistryLite extensionRegistry)
Name | Description |
data | ByteBuffer |
extensionRegistry | ExtensionRegistryLite |
Type | Description |
SmoothGradConfig |
Type | Description |
InvalidProtocolBufferException |
parser()
public static Parser<SmoothGradConfig> parser()
Type | Description |
Parser<SmoothGradConfig> |
toBuilder()
public SmoothGradConfig.Builder toBuilder()
Type | Description |
SmoothGradConfig.Builder |
writeTo(CodedOutputStream output)
public void writeTo(CodedOutputStream output)
Name | Description |
output | CodedOutputStream |
Type | Description |
IOException |