Machine Learning
Discriminative and Generative
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Word Count
50,000 words, Guess
Page Count
200 pages
Physical Format
Electronic resource
Identifiers
- Internet Archivemachinelearningd00jeba
- ISBN-101461347564
- ISBN-101441990119
- ISBN-139781461347569
- ISBN-139781441990112
and 4 more
- OCLC Control Number853259270
- Better World Books9781461347569
- Better World Books9781441990112
- Open LibraryOL27072032M
Classifications
- DDC006.3
- LCCQ334-342
- LCCTJ210.2-211.495
and 1 more
- LCCQ334-342QA276-280QA7
Description
Machine Learning: Discriminative and Generative covers the main contemporary themes and tools in machine learning ranging from Bayesian probabilistic models to discriminative support-vector machines. However, unlike previous books that only discuss these rather different approaches in isolation, it bridges the two schools of thought together within a common framework, elegantly connecting their various theories and making one common big-picture. Also, this bridge brings forth new hybrid discriminative-generative tools that combine the strengths of both camps. This book serves multiple purposes as well. The framework acts as a scientific breakthrough, fusing the areas of generative and discriminative learning and will be of interest to many researchers. However, as a conceptual breakthrough, this common framework unifies many previously unrelated tools and techniques and makes them understandable to a larger portion of the public. This gives the more practical-minded engineer, student and the industrial public an easy-access and more sensible road map into the world of machine learning. Machine Learning: Discriminative and Generative is designed for an audience composed of researchers & practitioners in industry and academia. The book is also suitable as a secondary text for graduate-level students in computer science and engineering.
Subjects
Series Statement
- The International Series in Engineering and Computer Science -- 755
- International series in engineering and computer science -- 755.
Other Editions
- Machine Learning: Discriminative and Generative
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