Mathematical Introduction to Data Science

Paperback EN 2024 9783662694251
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This textbook is intended for students of mathematics who have completed the foundational courses of their undergraduate studies and now want to specialize in Data Science and Machine Learning. It introduces the reader to the most important topics in the latter areas focusing on rigorous proofs and a systematic understanding of the underlying ideas. The textbook comes with 121 classroom-tested exercises. Topics covered include k-nearest neighbors, linear and logistic regression, clustering, best-fit subspaces, principal component analysis, dimensionality reduction, collaborative filtering, perceptron, support vector machines, the kernel method, gradient descent and neural networks.

Specificaties

ISBN13:9783662694251
Taal:EN
Bindwijze:Paperback
Aantal pagina's:299
Uitgever:Springer-Verlag Berlin and Heidelberg GmbH & Co. K

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          Mathematical Introduction to Data Science