Mathematical Pictures at a Data Science Exhibition - Couverture rigide

Foucart, Simon

 
9781316518885: Mathematical Pictures at a Data Science Exhibition

Synopsis

This text provides deep and comprehensive coverage of the mathematical background for data science, including machine learning, optimal recovery, compressed sensing, optimization, and neural networks. In the past few decades, heuristic methods adopted by big tech companies have complemented existing scientific disciplines to form the new field of Data Science. This text embarks the readers on an engaging itinerary through the theory supporting the field. Altogether, twenty-seven lecture-length chapters with exercises provide all the details necessary for a solid understanding of key topics in data science. While the book covers standard material on machine learning and optimization, it also includes distinctive presentations of topics such as reproducing kernel Hilbert spaces, spectral clustering, optimal recovery, compressed sensing, group testing, and applications of semidefinite programming. Students and data scientists with less mathematical background will appreciate the appendices that provide more background on some of the more abstract concepts.

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À propos de l?auteur

Simon Foucart is Professor of Mathematics at Texas A&M University, where he was named Presidential Impact Fellow in 2019. He has previously written, together with Holger Rauhut, the influential book A Mathematical Introduction to Compressive Sensing (2013).

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Autres éditions populaires du même titre

9781009001854: Mathematical Pictures at a Data Science Exhibition

Edition présentée

ISBN 10 :  100900185X ISBN 13 :  9781009001854
Editeur : Cambridge University Press, 2022
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