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Learning Jupyter 5

You're reading from   Learning Jupyter 5 Explore interactive computing using Python, Java, JavaScript, R, Julia, and JupyterLab

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Product type Paperback
Published in Aug 2018
Publisher
ISBN-13 9781789137408
Length 282 pages
Edition 2nd Edition
Languages
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Author (1):
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Dan Toomey Dan Toomey
Author Profile Icon Dan Toomey
Dan Toomey
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Table of Contents (14) Chapters Close

Preface 1. Introduction to Jupyter FREE CHAPTER 2. Jupyter Python Scripting 3. Jupyter R Scripting 4. Jupyter Julia Scripting 5. Jupyter Java Coding 6. Jupyter JavaScript Coding 7. Jupyter Scala 8. Jupyter and Big Data 9. Interactive Widgets 10. Sharing and Converting Jupyter Notebooks 11. Multiuser Jupyter Notebooks 12. What's Next? 13. Other Books You May Enjoy

Estimate pi


We can use map or reduce to estimate pi if we have code like this:

import pyspark 
import random 
if not 'sc' in globals(): 
    sc = pyspark.SparkContext() 
 
NUM_SAMPLES = 10000 
random.seed(113) 
 
def sample(p): 
    x, y = random.random(), random.random() 
    return 1 if x*x + y*y < 1 else 0 
 
count = sc.parallelize(range(0, NUM_SAMPLES)) \ 
    .map(sample) \ 
    .reduce(lambda a, b: a + b) 
     
print("Pi is roughly %f" % (4.0 * count / NUM_SAMPLES)) 

This code has the same preamble. We are using the Python random package. There is a constant for the number of samples to attempt.

We are building an RDD called count. We call the parallelize function to split this process between the nodes available. The code just maps the result of the sample function call. Finally, we reduce the generated map set by adding all the samples.

The sample function gets two random numbers and returns a one or a zero depending on where the two numbers end up in size. We are looking for random...

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