Statistics, Data Mining, and Machine Learning in Astronomy: A Practical Python Guide for the Analysis of Survey Data (Updated Edition)

Statistics, Data Mining, and Machine Learning in Astronomy: A Practical Python Guide for the Analysis of Survey Data (Updated Edition)

Željko Ivezić , Andrew J. Connolly , Jacob T. VanderPlas
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Jan 1, 2019 · English · Kindle (560 pages)
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Book Details

Format Kindle
Pages 560
Language English
Published Jan 1, 2019
Publisher Princeton University Press
Edition Revised
ISBN-10 0691197059
ISBN-13 9780691197050

Description

This updated edition serves as a valuable resource for both newcomers and experienced researchers in the field of astronomy. The authors, recognized experts in their respective disciplines, guide readers through the intricate world of data analysis, focusing on practical applications of statistics, data mining, and machine learning techniques using Python. With an emphasis on real survey data, the book equips astronomers with the tools necessary to harness the vast amounts of information generated by modern telescopes.

Throughout the chapters, readers will find a blend of theoretical insights and hands-on coding exercises that foster a deep understanding of data analysis methodologies. The book covers critical topics such as data cleaning, exploratory data analysis, and predictive modeling, ensuring that readers are well-prepared to tackle contemporary challenges in astrophysics. This comprehensive guide stands as a bridge between theoretical knowledge and practical application, making it an indispensable companion for anyone seeking to enhance their data science skills within the realm of astronomy.

Genres

Science & Technology

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