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Friday, October 7, 2022

[FIXED] How to normalize a NumPy array to a unit vector?

 October 07, 2022     normalization, numpy, python, scikit-learn, statistics     No comments   

Issue

I would like to convert a NumPy array to a unit vector. More specifically, I am looking for an equivalent version of this normalisation function:

def normalize(v):
    norm = np.linalg.norm(v)
    if norm == 0: 
       return v
    return v / norm

This function handles the situation where vector v has the norm value of 0.

Is there any similar functions provided in sklearn or numpy?


Solution

If you're using scikit-learn you can use sklearn.preprocessing.normalize:

import numpy as np
from sklearn.preprocessing import normalize

x = np.random.rand(1000)*10
norm1 = x / np.linalg.norm(x)
norm2 = normalize(x[:,np.newaxis], axis=0).ravel()
print np.all(norm1 == norm2)
# True


Answered By - ali_m
Answer Checked By - Timothy Miller (PHPFixing Admin)
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