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Numpy Beginner's Guide (Update)

Numpy Beginner's Guide (Update)

By : Ivan Idris
2 (1)
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Numpy Beginner's Guide (Update)

Numpy Beginner's Guide (Update)

2 (1)
By: Ivan Idris

Overview of this book

This book is for the scientists, engineers, programmers, or analysts looking for a high-quality, open source mathematical library. Knowledge of Python is assumed. Also, some affinity, or at least interest, in mathematics and statistics is required. However, I have provided brief explanations and pointers to learning resources.
Table of Contents (16 chapters)
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14
C. NumPy Functions' References
15
Index

Time for action – analyzing random values

We will generate random values that mimic a normal distribution and analyze the generated data with statistical functions from the scipy.stats package.

  1. Generate random values from a normal distribution using the scipy.stats package:
    generated = stats.norm.rvs(size=900)
  2. Fit the generated values to a normal distribution. This basically gives the mean and standard deviation of the dataset:
    print("Mean", "Std", stats.norm.fit(generated))

    The mean and standard deviation appear as follows:

    Mean Std (0.0071293257063200707, 0.95537708218972528)
    
  3. Skewness tells us how skewed (asymmetric) a probability distribution is (see http://en.wikipedia.org/wiki/Skewness). Perform a skewness test. This test returns two values. The second value is the p-value—the probability that the skewness of the dataset does not correspond to a normal distribution.

    Note

    Generally speaking, the p-value is the probability of an outcome different than what was...

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