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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 – finding highest and lowest values

The min() and max() functions are the answer for our requirement. Perform the following steps to find the highest and lowest values:

  1. First, read our file again and store the values for the high and low prices into arrays:
    h,l=np.loadtxt('data.csv', delimiter=',', usecols=(4,5), unpack=True)

    The only thing that changed is the usecols parameter, since the high and low prices are situated in different columns.

  2. The following code gets the price range:
    print("highest =", np.max(h))
    print("lowest =", np.min(l))

    These are the values returned:

    highest = 364.9
    lowest = 333.53
    

    Now, it's easy to get a midpoint, so it is left as an exercise for you to attempt.

  3. NumPy allows us to compute the spread of an array with a function called ptp(). The ptp() function returns the difference between the maximum and minimum values of an array. In other words, it is equal to max(array)min(array). Call the ptp...
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