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Python - tensorflow.math.reduce_logsumexp()

Last Updated : 5 Aug, 2021

TensorFlow is open-source Python library designed by Google to develop Machine Learning models and deep learning  neural networks.

reduce_logsumexp() is used to compute log sum exp of elements across dimensions of a tensor.

Syntax: tensorflow.math.reduce_logsumexp( input_tensor, axis, keepdims, name)

Parameters:

  • input_tensor: It is numeric tensor to reduce.
  • axis(optional): It represent the dimensions to  reduce. It's value should be in range [-rank(input_tensor), rank(input_tensor)). If no value is given for this all dimensions are reduced.
  • keepdims(optional): It's default value is False. If it's set to True it will retain the reduced dimension with length 1.
  • name(optional): It defines the name for the operation.

Returns: It returns a tensor.

Example 1:

Output:

Input: tf.Tensor([1. 2. 3. 4.], shape=(4, ), dtype=float64)
Result: tf.Tensor(4.440189698561196, shape=(), dtype=float64)

Example 2:

Output:

Input: tf.Tensor(
[[1. 2.]
 [3. 4.]], shape=(2, 2), dtype=float64)
Result: tf.Tensor(
[[2.31326169]
 [4.31326169]], shape=(2, 1), dtype=float64)
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