Computational Methods of Feature Selection

Computational Methods of Feature Selection

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2007 · Английский · Твердый переплет · Изданий: 2
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Описание

As the world of data science expands, the need for effective dimensionality reduction methods becomes paramount. This book delves into feature selection, a crucial aspect of machine learning that enhances model performance by identifying the most relevant attributes from vast datasets. Huan Liu and Hiroshi Motoda explore various computational strategies and methodologies to streamline this process, catering to both novices and seasoned researchers.

Their collaboration sheds light on innovative techniques and theoretical frameworks that guide users in selecting appropriate features while minimizing redundancy. The insights presented not only illuminate the significance of feature selection in practical applications but also provide a roadmap for future research avenues in this rapidly evolving field.

Детали книги

Формат Твердый переплет
Страницы 440 страниц
Язык Английский
Опубликовано Oct 29, 2007
Издатель Chapman and Hall/CRC
Издания Изданий: 2
ISBN-10 1584888784
ISBN-13 9781584888789
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