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A Primer on Reproducing Kernel Hilbert Spaces

Foundations and Trends (R) in Signal Processing

Format: Paperback / softback
Publisher: now publishers Inc, Hanover, United States
Published: 18th Dec 2015
Dimensions: w 156mm h 234mm d 8mm
Weight: 213g
ISBN-10: 1680830929
ISBN-13: 9781680830927
Barcode No: 9781680830927
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Synopsis
Hilbert space theory is an invaluable mathematical tool in numerous signal processing and systems theory applications. Hilbert spaces satisfying certain additional properties are known as Reproducing Kernel Hilbert Spaces (RKHSs). This primer gives a gentle and novel introduction to RKHS theory. It also presents several classical applications. It concludes by focusing on recent developments in the machine learning literature concerning embeddings of random variables. Parenthetical remarks are used to provide greater technical detail, which some readers may welcome, but they may be ignored without compromising the cohesion of the primer. Proofs are there for those wishing to gain experience at working with RKHSs; simple proofs are preferred to short, clever, but otherwise uninformative proofs. Italicised comments appearing in proofs provide intuition or orientation or both. A Primer on Reproducing Kernel Hilbert Spaces empowers readers to recognize when and how RKHS theory can profit them in their own work.

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