Python for Probability, Statistics, and Machine Learning - KING OF EXCEL

Tuesday, August 25, 2020

Python for Probability, Statistics, and Machine Learning

Python for Probability, Statistics, and Machine Learning
José Unpingco
This book covers the key ideas that link probability, statistics, and machine learning illustrated using Python modules in these areas. The entire text, including all the figures and numerical results, is reproducible using the Python codes and their associated Jupyter/IPython notebooks, which are provided as supplementary downloads. The author develops key intuitions in machine learning by working meaningful examples using multiple analytical methods and Python codes, thereby connecting theoretical concepts to concrete implementations. Modern Python modules like Pandas, Sympy, and Scikit-learn are applied to simulate and visualize important machine learning concepts like the bias/variance trade-off, cross-validation, and regularization. Many abstract mathematical ideas, such as convergence in probability theory, are developed and illustrated with numerical examples. This book is suitable for anyone with an undergraduate-level exposure to probability, statistics, or machine learning and with rudimentary knowledge of Python programming.
Categories:
Mathematics\\Mathematicsematical Statistics
Year:
2020
Edition:
1st
Publisher:
Springer International Publishing
Language:
english
Pages:
288
ISBN 13:
978-3-319-30717-6
File:
PDF, 7.14 MB
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