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38 changes: 38 additions & 0 deletions neural_network/activation_functions/swish.py
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"""
Swish Activation Function

Use Case: Enhances the expression of input data and weight to be learnt.
For more detailed information, you can refer to the following link:
https://en.wikipedia.org/wiki/Swish_function
"""

import numpy as np


def swish(vector: np.ndarray) -> np.ndarray:
"""
Implements the Swish activation function.

Parameters:
vector (np.ndarray): The input array for Swish activation.

Returns:
np.ndarray: The output array after applying the Swish activation.

Formula: f(x) = x / (1 + np.exp(-x))

Examples:
>>> swish(vector=np.array([2.3,0.6,-2,-3.8]))
array([ 2.09041719, 0.38739378, -0.23840584, -0.08314883])

>>> swish(np.array([-9.2, -0.3, 0.45, -4.56]))
array([-0.00092947, -0.12766724, 0.27478766, -0.04721304])

"""
return vector / (1 + np.exp(-vector))


if __name__ == "__main__":
import doctest

doctest.testmod()