tensorflow::
    
   ops::
    
   Conv2DBackpropInput
  
  
   #include <nn_ops.h>
  
  Computes the gradients of convolution with respect to the input.
Summary
Args:
- scope: A Scope object
 - 
     input_sizes: An integer vector representing the shape of
     
input, whereinputis a 4-D[batch, height, width, channels]tensor. - 
     filter: 4-D with shape
     
[filter_height, filter_width, in_channels, out_channels]. - 
     out_backprop: 4-D with shape
     
[batch, out_height, out_width, out_channels]. Gradients w.r.t. the output of the convolution. - strides: The stride of the sliding window for each dimension of the input of the convolution. Must be in the same order as the dimension specified with format.
 - padding: The type of padding algorithm to use.
 
   Optional attributes (see
   
    
     Attrs
    
   
   ):
   
- 
     explicit_paddings: If
     
paddingis"EXPLICIT", the list of explicit padding amounts. For the ith dimension, the amount of padding inserted before and after the dimension isexplicit_paddings[2 * i]andexplicit_paddings[2 * i + 1], respectively. Ifpaddingis not"EXPLICIT",explicit_paddingsmust be empty. - data_format: Specify the data format of the input and output data. With the default format "NHWC", the data is stored in the order of: [batch, in_height, in_width, in_channels]. Alternatively, the format could be "NCHW", the data storage order of: [batch, in_channels, in_height, in_width].
 - 
     dilations: 1-D tensor of length 4. The dilation factor for each dimension of
     
input. If set to k > 1, there will be k-1 skipped cells between each filter element on that dimension. The dimension order is determined by the value ofdata_format, see above for details. Dilations in the batch and depth dimensions must be 1. 
Returns:
- 
     
Output: 4-D with shape[batch, in_height, in_width, in_channels]. Gradient w.r.t. the input of the convolution. 
     Constructors and Destructors | 
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       Conv2DBackpropInput
      
      (const ::
      
       tensorflow::Scope
      
      & scope, ::
      
       tensorflow::Input
      
      input_sizes, ::
      
       tensorflow::Input
      
      filter, ::
      
       tensorflow::Input
      
      out_backprop, const gtl::ArraySlice< int > & strides, StringPiece padding)
     
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       Conv2DBackpropInput
      
      (const ::
      
       tensorflow::Scope
      
      & scope, ::
      
       tensorflow::Input
      
      input_sizes, ::
      
       tensorflow::Input
      
      filter, ::
      
       tensorflow::Input
      
      out_backprop, const gtl::ArraySlice< int > & strides, StringPiece padding, const
      
       Conv2DBackpropInput::Attrs
      
      & attrs)
     
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     Public attributes | 
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       operation
      
     
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       output
      
     
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     Public functions | 
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       node
      
      () const
     
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       ::tensorflow::Node *
      
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       operator::tensorflow::Input
      
      () const
     
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       operator::tensorflow::Output
      
      () const
     
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     Public static functions | 
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       DataFormat
      
      (StringPiece x)
     
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       Dilations
      
      (const gtl::ArraySlice< int > & x)
     
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       ExplicitPaddings
      
      (const gtl::ArraySlice< int > & x)
     
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       UseCudnnOnGpu
      
      (bool x)
     
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     Structs | 
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      tensorflow::
       | 
    
      Optional attribute setters for Conv2DBackpropInput .  | 
   
Public attributes
Public functions
Conv2DBackpropInput
Conv2DBackpropInput( const ::tensorflow::Scope & scope, ::tensorflow::Input input_sizes, ::tensorflow::Input filter, ::tensorflow::Input out_backprop, const gtl::ArraySlice< int > & strides, StringPiece padding )
Conv2DBackpropInput
Conv2DBackpropInput( const ::tensorflow::Scope & scope, ::tensorflow::Input input_sizes, ::tensorflow::Input filter, ::tensorflow::Input out_backprop, const gtl::ArraySlice< int > & strides, StringPiece padding, const Conv2DBackpropInput::Attrs & attrs )
node
::tensorflow::Node * node() const
operator::tensorflow::Input
operator::tensorflow::Input() const
operator::tensorflow::Output
operator::tensorflow::Output() const