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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 – calculating the Exponential Moving Average


Given an array, the exp() function calculates the exponential of each array element. For example, look at the following code:

x = np.arange(5)
print("Exp", np.exp(x))

It gives the following output:

Exp [  1.           2.71828183   7.3890561   20.08553692  54.59815003]

The linspace() function takes as parameters a start value, a stop value, and optionally an array size. It returns an array of evenly spaced numbers. This is an example:

print("Linspace", np.linspace(-1, 0, 5))

This will give us the following output:

Linspace [-1.   -0.75 -0.5  -0.25  0.  ]

Calculate the EMA for our data:

  1. Now, back to the weights, calculate them with exp() and linspace():

    N = 5
    weights = np.exp(np.linspace(-1., 0., N))
  2. Normalize the weights with the ndarray sum() method:

    weights /= weights.sum()
    print("Weights", weights)

    For N = 5, we get these weights:

    Weights [ 0.11405072  0.14644403  0.18803785  0.24144538  0.31002201]
    
  3. After this, use the convolve() function...

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