tf.keras.ops.categorical_crossentropy
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Computes categorical cross-entropy loss between target and output tensor.
tf.keras.ops.categorical_crossentropy(
target, output, from_logits=False, axis=-1
)
The categorical cross-entropy loss is commonly used in multi-class
classification tasks where each input sample can belong to one of
multiple classes. It measures the dissimilarity
between the target and output probabilities or logits.
Args |
target
|
The target tensor representing the true categorical labels.
Its shape should match the shape of the output tensor
except for the last dimension.
|
output
|
The output tensor representing the predicted probabilities
or logits. Its shape should match the shape of the target
tensor except for the last dimension.
|
from_logits
|
(optional) Whether output is a tensor of logits or
probabilities.
Set it to True if output represents logits; otherwise,
set it to False if output represents probabilities.
Defaults toFalse .
|
axis
|
(optional) The axis along which the categorical cross-entropy
is computed.
Defaults to -1 , which corresponds to the last dimension of
the tensors.
|
Returns |
Integer tensor: The computed categorical cross-entropy loss between
target and output .
|
Example:
target = keras.ops.convert_to_tensor(
[[1, 0, 0],
[0, 1, 0],
[0, 0, 1]])
output = keras.ops.convert_to_tensor(
[[0.9, 0.05, 0.05],
[0.1, 0.8, 0.1],
[0.2, 0.3, 0.5]])
categorical_crossentropy(target, output)
array([0.10536054 0.22314355 0.6931472 ], shape=(3,), dtype=float32)
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Last updated 2024-06-07 UTC.
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