tf.keras.applications.mobilenet.preprocess_input
    
    
      
    
    
      
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Preprocesses a tensor or Numpy array encoding a batch of images.
tf.keras.applications.mobilenet.preprocess_input(
    x, data_format=None
)
Usage example with applications.MobileNet:
i = tf.keras.layers.Input([None, None, 3], dtype = tf.uint8)
x = tf.cast(i, tf.float32)
x = tf.keras.applications.mobilenet.preprocess_input(x)
core = tf.keras.applications.MobileNet()
x = core(x)
model = tf.keras.Model(inputs=[i], outputs=[x])
image = tf.image.decode_png(tf.io.read_file('file.png'))
result = model(image)
| Arguments | 
|---|
| x | A floating point numpy.arrayor atf.Tensor, 3D or 4D with 3 color
channels, with values in the range [0, 255].
The preprocessed data are written over the input data
if the data types are compatible. To avoid this
behaviour,numpy.copy(x)can be used. | 
| data_format | Optional data format of the image tensor/array. Defaults to
None, in which case the global setting tf.keras.backend.image_data_format()is used (unless you changed it,
it defaults to "channels_last"). | 
| Returns | 
|---|
| Preprocessed numpy.arrayor atf.Tensorwith typefloat32.The inputs pixel values are scaled between -1 and 1, sample-wise.
 | 
| Raises | 
|---|
| ValueError | In case of unknown data_formatargument. | 
  
  
 
  
    
    
      
       
    
    
  
  
  Except as otherwise noted, the content of this page is licensed under the Creative Commons Attribution 4.0 License, and code samples are licensed under the Apache 2.0 License. For details, see the Google Developers Site Policies. Java is a registered trademark of Oracle and/or its affiliates.
  Last updated 2020-10-01 UTC.
  
  
  
    
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