tf.feature_column.sequence_categorical_column_with_identity
    
    
      
      
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Returns a feature column that represents sequences of integers. (deprecated)
tf . feature_column . sequence_categorical_column_with_identity ( 
    key ,  num_buckets ,  default_value = None 
) 
Deprecated:  THIS FUNCTION IS DEPRECATED. It will be removed in a future version.
Instructions for updating:
Use Keras preprocessing layers instead, either directly or via the tf.keras.utils.FeatureSpacetf.feature_column.* has a functional equivalent in tf.keras.layers for feature preprocessing when training a Keras model. Pass this to embedding_column or indicator_column to convert sequence
categorical data into dense representation for input to sequence NN, such as
RNN.
Example: 
watches  =  sequence_categorical_column_with_identity ( 
    'watches' ,  num_buckets = 1000 ) 
watches_embedding  =  embedding_column ( watches ,  dimension = 10 ) 
columns  =  [ watches_embedding ] 
features  =  tf . io . parse_example ( ... ,  features = make_parse_example_spec ( columns )) 
sequence_feature_layer  =  SequenceFeatures ( columns ) 
sequence_input ,  sequence_length  =  sequence_feature_layer ( features ) 
sequence_length_mask  =  tf . sequence_mask ( sequence_length ) 
rnn_cell  =  tf . keras . layers . SimpleRNNCell ( hidden_size ) 
rnn_layer  =  tf . keras . layers . RNN ( rnn_cell ) 
outputs ,  state  =  rnn_layer ( sequence_input ,  mask = sequence_length_mask ) 
Args 
key 
A unique string identifying the input feature.
 
 
num_buckets 
Range of inputs. Namely, inputs are expected to be in the range
[0, num_buckets).
 
 
default_value 
If None, this column's graph operations will fail for
out-of-range inputs. Otherwise, this value must be in the range [0,
num_buckets), and will replace out-of-range inputs.
 
 
Returns 
A SequenceCategoricalColumn.
 
 
Raises 
ValueError 
if num_buckets is less than one.
 
 
ValueError 
if default_value is not in range [0, num_buckets).
 
 
  
  
 
  
    
    
      
       
    
    
  
  
 
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  Last updated 2024-04-26 UTC.
 
 
  
  
  
    
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