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public enum ExplanationMetadata.InputMetadata.Encoding extends Enum<ExplanationMetadata.InputMetadata.Encoding> implements ProtocolMessageEnumDefines how a feature is encoded. Defaults to IDENTITY.
 Protobuf enum google.cloud.aiplatform.v1.ExplanationMetadata.InputMetadata.Encoding
Implements
ProtocolMessageEnumStatic Fields
| Name | Description | 
| BAG_OF_FEATURES |  The tensor represents a bag of features where each index maps to
 a feature.
 InputMetadata.index_feature_mapping
 must be provided for this encoding. For example:
     | 
      
| BAG_OF_FEATURES_SPARSE |  The tensor represents a bag of features where each index maps to a
 feature. Zero values in the tensor indicates feature being
 non-existent.
 InputMetadata.index_feature_mapping
 must be provided for this encoding. For example:
     | 
      
| BAG_OF_FEATURES_SPARSE_VALUE |  The tensor represents a bag of features where each index maps to a
 feature. Zero values in the tensor indicates feature being
 non-existent.
 InputMetadata.index_feature_mapping
 must be provided for this encoding. For example:
     | 
      
| BAG_OF_FEATURES_VALUE |  The tensor represents a bag of features where each index maps to
 a feature.
 InputMetadata.index_feature_mapping
 must be provided for this encoding. For example:
     | 
      
| COMBINED_EMBEDDING |  The tensor is encoded into a 1-dimensional array represented by an
 encoded tensor.
 InputMetadata.encoded_tensor_name
 must be provided for this encoding. For example:
     | 
      
| COMBINED_EMBEDDING_VALUE |  The tensor is encoded into a 1-dimensional array represented by an
 encoded tensor.
 InputMetadata.encoded_tensor_name
 must be provided for this encoding. For example:
     | 
      
| CONCAT_EMBEDDING |  Select this encoding when the input tensor is encoded into a
 2-dimensional array represented by an encoded tensor.
 InputMetadata.encoded_tensor_name
 must be provided for this encoding. The first dimension of the encoded
 tensor's shape is the same as the input tensor's shape. For example:
     | 
      
| CONCAT_EMBEDDING_VALUE |  Select this encoding when the input tensor is encoded into a
 2-dimensional array represented by an encoded tensor.
 InputMetadata.encoded_tensor_name
 must be provided for this encoding. The first dimension of the encoded
 tensor's shape is the same as the input tensor's shape. For example:
     | 
      
| ENCODING_UNSPECIFIED | Default value. This is the same as IDENTITY.    | 
      
| ENCODING_UNSPECIFIED_VALUE | Default value. This is the same as IDENTITY.    | 
      
| IDENTITY | The tensor represents one feature.    | 
      
| IDENTITY_VALUE | The tensor represents one feature.    | 
      
| INDICATOR |  The tensor is a list of binaries representing whether a feature exists
 or not (1 indicates existence).
 InputMetadata.index_feature_mapping
 must be provided for this encoding. For example:
     | 
      
| INDICATOR_VALUE |  The tensor is a list of binaries representing whether a feature exists
 or not (1 indicates existence).
 InputMetadata.index_feature_mapping
 must be provided for this encoding. For example:
     | 
      
| UNRECOGNIZED | 
Static Methods
| Name | Description | 
| forNumber(int value) | |
| getDescriptor() | |
| internalGetValueMap() | |
| valueOf(Descriptors.EnumValueDescriptor desc) | |
| valueOf(int value) | Deprecated. Use #forNumber(int) instead.  | 
      
| valueOf(String name) | |
| values() | 
Methods
| Name | Description | 
| getDescriptorForType() | |
| getNumber() | |
| getValueDescriptor() |