tf.keras.layers.ZeroPadding3D
    
    
      
    
    
      
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Zero-padding layer for 3D data (spatial or spatio-temporal).
Inherits From: Layer, Module
tf.keras.layers.ZeroPadding3D(
    padding=(1, 1, 1), data_format=None, **kwargs
)
Examples:
input_shape = (1, 1, 2, 2, 3)
x = np.arange(np.prod(input_shape)).reshape(input_shape)
y = tf.keras.layers.ZeroPadding3D(padding=2)(x)
print(y.shape)
(1, 5, 6, 6, 3)
| Args | 
|---|
| padding | Int, or tuple of 3 ints, or tuple of 3 tuples of 2 ints. 
If int: the same symmetric padding
is applied to height and width.If tuple of 3 ints:
interpreted as two different
symmetric padding values for height and width:
(symmetric_dim1_pad, symmetric_dim2_pad, symmetric_dim3_pad).If tuple of 3 tuples of 2 ints:
interpreted as
((left_dim1_pad, right_dim1_pad), (left_dim2_pad,
right_dim2_pad), (left_dim3_pad, right_dim3_pad)) | 
| data_format | A string,
one of channels_last(default) orchannels_first.
The ordering of the dimensions in the inputs.channels_lastcorresponds to inputs with shape(batch_size, spatial_dim1, spatial_dim2, spatial_dim3, channels)whilechannels_firstcorresponds to inputs with shape(batch_size, channels, spatial_dim1, spatial_dim2, spatial_dim3).
It defaults to theimage_data_formatvalue found in your
Keras config file at~/.keras/keras.json.
If you never set it, then it will be "channels_last". | 
|  | 
|---|
| 5D tensor with shape: 
If data_formatis"channels_last":(batch_size, first_axis_to_pad, second_axis_to_pad, third_axis_to_pad,
  depth)If data_formatis"channels_first":(batch_size, depth, first_axis_to_pad, second_axis_to_pad,
  third_axis_to_pad) | 
| Output shape | 
|---|
| 5D tensor with shape: 
If data_formatis"channels_last":(batch_size, first_padded_axis, second_padded_axis, third_axis_to_pad,
  depth)If data_formatis"channels_first":(batch_size, depth, first_padded_axis, second_padded_axis,
  third_axis_to_pad) | 
  
  
 
  
    
    
      
       
    
    
  
  
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  Last updated 2022-10-27 UTC.
  
  
  
    
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