Instantiates a NASNet model in ImageNet mode.
tf.keras.applications.nasnet.NASNetLarge(
    input_shape=None,
    include_top=True,
    weights='imagenet',
    input_tensor=None,
    pooling=None,
    classes=1000,
    classifier_activation='softmax'
)
  Optionally loads weights pre-trained on ImageNet. Note that the data format convention used by the model is the one specified in your Keras config at ~/.keras/keras.json.
Note: each Keras Application expects a specific kind of input preprocessing. For NASNet, call tf.keras.applications.nasnet.preprocess_input on your inputs before passing them to the model.
  
| Args | |
|---|---|
| input_shape | Optional shape tuple, only to be specified if include_topis False (otherwise the input shape has to be(331, 331, 3)for NASNetLarge. It should have exactly 3 inputs channels, and width and height should be no smaller than 32. E.g.(224, 224, 3)would be one valid value. | 
| include_top | Whether to include the fully-connected layer at the top of the network. | 
| weights | None(random initialization) orimagenet(ImageNet weights) For loadingimagenetweights,input_shapeshould be (331, 331, 3) | 
| input_tensor | Optional Keras tensor (i.e. output of layers.Input()) to use as image input for the model. | 
| pooling | Optional pooling mode for feature extraction when include_topisFalse.
 | 
| classes | Optional number of classes to classify images into, only to be specified if include_topis True, and if noweightsargument is specified. | 
| classifier_activation | A stror callable. The activation function to use on the "top" layer. Ignored unlessinclude_top=True. Setclassifier_activation=Noneto return the logits of the "top" layer. When loading pretrained weights,classifier_activationcan only beNoneor"softmax". | 
| Returns | |
|---|---|
| A Keras model instance. | 
| Raises | |
|---|---|
| ValueError | in case of invalid argument for weights, or invalid input shape. | 
| RuntimeError | If attempting to run this model with a backend that does not support separable convolutions. | 
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Licensed under the Creative Commons Attribution License 4.0.
Code samples licensed under the Apache 2.0 License.
    https://www.tensorflow.org/versions/r2.9/api_docs/python/tf/keras/applications/nasnet/NASNetLarge