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"item_title" : "Numerical Linear Algebra and Optimization for Data Science",
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Numerical Linear Algebra and Optimization for Data Science
by Khalide Jbilou and Marcos Raydan
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Overview
This book offers a timely and rigorous contribution at the intersection of numerical linear algebra, optimization, and modern data-science applications. The manuscript stands out for its balanced integration of theoretical foundations and computational practice. It develops core concepts in numerical linear algebra such as matrix factorizations, eigenvalue problems, and iterative methods, while systematically connecting them to optimization techniques central to data science, including gradient-based methods, convex and non-convex optimization and large-scale algorithms. The book includes a strong emphasis on contemporary applications.
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Details
- ISBN-13: 9783032375339
- ISBN-10: 3032375339
- Publisher: Springer
- Publish Date: October 2026
- Page Count: 521
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