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Machine Learning: Discriminative and Generative (The Springer International Series in Engineering and Computer Science, 755),Used
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Machine Learning:Discriminative and Generative covers the main contemporary themes and tools in machine learning ranging from Bayesian probabilistic models to discriminative supportvector 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 bigpicture. Also, this bridge brings forth new hybrid discriminativegenerative 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 practicalminded engineer, student and the industrial public an easyaccess 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 graduatelevel students in computer science and engineering.
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