Prisbevakning
Få notis vid prissänkningAv: Željko Ivezić, Andrew J. Connolly, Jacob T. Vanderplas, Alexander G. Gray
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Statistics, Data Mining, and Machine Learning in Astronomy is the essential introduction to the statistical methods needed to analyze complex data sets from astronomical surveys such as the Panoramic Survey Telescope and Rapid Response System, the Dark Energy Survey, and the Large Synoptic Survey Telescope. Now fully updated, it presents a wealth of practical analysis problems, evaluates the techniques for solving them, and explains how to use various approaches for different types and sizes of data sets. Python code and sample data sets are provided for all applications described in the book. The supporting data sets have been carefully selected from contemporary astronomical surveys and are easy to download and use. The accompanying Python code is publicly available, well documented, and follows uniform coding standards. Together, the data sets and code enable readers to reproduce all the figures and examples, engage with the different methods, and adapt them to their own fields of interest.An accessible textbook for students and an indispensable reference for researchers, this updated edition features new sections on deep learning methods, hierarchical Bayes modeling, and approximate Bayesian computation. The chapters have been revised throughout and the astroML code has been brought completely up to date.Fully revised and expandedDescribes the most useful statistical and data-mining methods for extracting knowledge from huge and complex astronomical data setsFeatures real-world data sets from astronomical surveysUses a freely available Python codebase throughoutIdeal for graduate students, advanced undergraduates, and working astronomers
Priset har inte ändrats de senaste 90 dagarna.
Författare
Željko Ivezić, Andrew J. Connolly, Jacob T. Vanderplas, Alexander G. Gray
Författare
Željko Ivezić, Andrew J. Connolly, Jacob T. Vanderplas, Alexander G. Gray
Serie
Princeton series in modern observational astronomy
Förlag
Princeton University Press
Utgivningsår
2020
Format
Inbunden
Sidantal
537
Språk
Engelska
Fysiska detaljer
illustrationer
Dewey
522.85
ISBN
9780691198309
Av: Željko Ivezić, Andrew J. Connolly, Jacob T. Vanderplas, Alexander G. Gray
Lägsta pris
Just nu listar 1 butik den här boken. Vi uppdaterar priserna flera gånger per dag — bevaka priset så meddelar vi dig när fler butiker eller ett lägre pris dyker upp.
Vi har hittat boken hos 1 butik med verifierat pris — en partnerbutik som vi får provision från när du klickar på ”Visa hos butik”. Vissa butiker visas som extern länk utan pris — priset ser du först hos butiken. Priset för dig är detsamma. Frakt kan tillkomma och varierar mellan butiker och leveranssätt — kontrollera alltid aktuellt pris och leveransvillkor hos butiken innan du slutför köpet.
Skriver du om boken på en blogg eller sajt? .
Priset har nyligen gått ner jämfört med butikens eget tidigare pris.
Det lägsta priset vi sett för boken sedan Booki började mäta.
Billigaste butiken ligger under de övriga butikernas medianpris just nu — en jämförelse mellan butiker, inte ett prisfall över tid.
Butiken med lägst pris i prislistan på boksidan just nu.
Statistics, Data Mining, and Machine Learning in Astronomy is the essential introduction to the statistical methods needed to analyze complex data sets from astronomical surveys such as the Panoramic Survey Telescope and Rapid Response System, the Dark Energy Survey, and the Large Synoptic Survey Telescope. Now fully updated, it presents a wealth of practical analysis problems, evaluates the techniques for solving them, and explains how to use various approaches for different types and sizes of data sets. Python code and sample data sets are provided for all applications described in the book. The supporting data sets have been carefully selected from contemporary astronomical surveys and are easy to download and use. The accompanying Python code is publicly available, well documented, and follows uniform coding standards. Together, the data sets and code enable readers to reproduce all the figures and examples, engage with the different methods, and adapt them to their own fields of interest.An accessible textbook for students and an indispensable reference for researchers, this updated edition features new sections on deep learning methods, hierarchical Bayes modeling, and approximate Bayesian computation. The chapters have been revised throughout and the astroML code has been brought completely up to date.Fully revised and expandedDescribes the most useful statistical and data-mining methods for extracting knowledge from huge and complex astronomical data setsFeatures real-world data sets from astronomical surveysUses a freely available Python codebase throughoutIdeal for graduate students, advanced undergraduates, and working astronomers
Priset har inte ändrats de senaste 90 dagarna.
Författare
Željko Ivezić, Andrew J. Connolly, Jacob T. Vanderplas, Alexander G. Gray
Författare
Željko Ivezić, Andrew J. Connolly, Jacob T. Vanderplas, Alexander G. Gray
Serie
Princeton series in modern observational astronomy
Förlag
Princeton University Press
Utgivningsår
2020
Format
Inbunden
Sidantal
537
Språk
Engelska
Fysiska detaljer
illustrationer
Dewey
522.85
ISBN
9780691198309
Inbunden · 2020 · Engelska
a practical Python guide for the analysis of survey data
Željko Ivezić, Andrew J. Connolly, Jacob T. Vanderplas, Alexander G. Gray
Just nu listar 1 butik den här boken. Bevaka priset så meddelar vi dig när fler butiker eller ett lägre pris dyker upp.
ISBN 9780691198309 jämförs hos alla butiker
Statistics, Data Mining, and Machine Learning in Astronomy is the essential introduction to the statistical methods needed to analyze complex data sets from astronomical surveys such as the Panoramic Survey Telescope and Rapid Response System, the Dark Energy Survey, and the Large Synoptic Survey Telescope. Now fully updated, it presents a wealth of practical analysis problems, evaluates the techniques for solving them, and explains how to use various approaches for different types and sizes of data sets. Python code and sample data sets are provided for all applications described in the book. The supporting data sets have been carefully selected from contemporary astronomical surveys and are easy to download and use. The accompanying Python code is publicly available, well documented, and follows uniform coding standards. Together, the data sets and code enable readers to reproduce all the figures and examples, engage with the different methods, and adapt them to their own fields of interest.An accessible textbook for students and an indispensable reference for researchers, this updated edition features new sections on deep learning methods, hierarchical Bayes modeling, and approximate Bayesian computation. The chapters have been revised throughout and the astroML code has been brought completely up to date.Fully revised and expandedDescribes the most useful statistical and data-mining methods for extracting knowledge from huge and complex astronomical data setsFeatures real-world data sets from astronomical surveysUses a freely available Python codebase throughoutIdeal for graduate students, advanced undergraduates, and working astronomers
Priset har inte ändrats de senaste 90 dagarna.
Författare
Željko Ivezić, Andrew J. Connolly, Jacob T. Vanderplas, Alexander G. Gray
Serie
Princeton series in modern observational astronomy
Förlag
Princeton University Press
Utgivningsår
2020
Format
Inbunden
Sidantal
537
Språk
Engelska
ISBN
9780691198309
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