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Published by American Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Language: English
Published by American Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Language: English
Published by American Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Language: English
Published by American Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Published by American Mathematical Society, US, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Paperback. Condition: New. Understanding the behavior of basic sampling techniques and intrinsic geometric attributes of data is an invaluable skill that is in high demand for both graduate students and researchers in mathematics, machine learning, and theoretical computer science. The last ten years have seen significant progress in this area, with many open problems having been resolved during this time. These include optimal lower bounds for epsilon-nets for many geometric set systems, the use of shallow-cell complexity to unify proofs, simpler and more efficient algorithms, and the use of epsilon-approximations for construction of coresets, to name a few. This book presents a thorough treatment of these probabilistic, combinatorial, and geometric methods, as well as their combinatorial and algorithmic applications. It also revisits classical results, but with new and more elegant proofs. While mathematical maturity will certainly help in appreciating the ideas presented here, only a basic familiarity with discrete mathematics, probability, and combinatorics is required to understand the material.
Language: English
Published by Amer Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Add to basketPaperback. Condition: Brand New. 251 pages. 9.75x7.00x0.75 inches. In Stock.
Language: English
Published by American Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Published by MP-AMM American Mathematical, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Published by American Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Language: English
Published by American Mathematical Society, Providence, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Paperback. Condition: new. Paperback. Understanding the behavior of basic sampling techniques and intrinsic geometric attributes of data is an invaluable skill that is in high demand for both graduate students and researchers in mathematics, machine learning, and theoretical computer science. The last ten years have seen significant progress in this area, with many open problems having been resolved during this time. These include optimal lower bounds for epsilon-nets for many geometric set systems, the use of shallow-cell complexity to unify proofs, simpler and more efficient algorithms, and the use of epsilon-approximations for construction of coresets, to name a few. This book presents a thorough treatment of these probabilistic, combinatorial, and geometric methods, as well as their combinatorial and algorithmic applications. It also revisits classical results, but with new and more elegant proofs. While mathematical maturity will certainly help in appreciating the ideas presented here, only a basic familiarity with discrete mathematics, probability, and combinatorics is required to understand the material. Presents a thorough treatment of these probabilistic, combinatorial, and geometric methods, as well as their combinatorial and algorithmic applications. The book also revisits classical results, but with new and more elegant proofs. Shipping may be from multiple locations in the US or from the UK, depending on stock availability.
Language: English
Published by American Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Language: English
Published by American Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Language: English
Published by American Mathematical Society, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Published by American Mathematical Society, US, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
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Add to basketPaperback. Condition: New. Understanding the behavior of basic sampling techniques and intrinsic geometric attributes of data is an invaluable skill that is in high demand for both graduate students and researchers in mathematics, machine learning, and theoretical computer science. The last ten years have seen significant progress in this area, with many open problems having been resolved during this time. These include optimal lower bounds for epsilon-nets for many geometric set systems, the use of shallow-cell complexity to unify proofs, simpler and more efficient algorithms, and the use of epsilon-approximations for construction of coresets, to name a few. This book presents a thorough treatment of these probabilistic, combinatorial, and geometric methods, as well as their combinatorial and algorithmic applications. It also revisits classical results, but with new and more elegant proofs. While mathematical maturity will certainly help in appreciating the ideas presented here, only a basic familiarity with discrete mathematics, probability, and combinatorics is required to understand the material.
Language: English
Published by American Mathematical Society, Providence, 2022
ISBN 10: 1470461560 ISBN 13: 9781470461560
Seller: AussieBookSeller, Truganina, VIC, Australia
Paperback. Condition: new. Paperback. Understanding the behavior of basic sampling techniques and intrinsic geometric attributes of data is an invaluable skill that is in high demand for both graduate students and researchers in mathematics, machine learning, and theoretical computer science. The last ten years have seen significant progress in this area, with many open problems having been resolved during this time. These include optimal lower bounds for epsilon-nets for many geometric set systems, the use of shallow-cell complexity to unify proofs, simpler and more efficient algorithms, and the use of epsilon-approximations for construction of coresets, to name a few. This book presents a thorough treatment of these probabilistic, combinatorial, and geometric methods, as well as their combinatorial and algorithmic applications. It also revisits classical results, but with new and more elegant proofs. While mathematical maturity will certainly help in appreciating the ideas presented here, only a basic familiarity with discrete mathematics, probability, and combinatorics is required to understand the material. Presents a thorough treatment of these probabilistic, combinatorial, and geometric methods, as well as their combinatorial and algorithmic applications. The book also revisits classical results, but with new and more elegant proofs. Shipping may be from our Sydney, NSW warehouse or from our UK or US warehouse, depending on stock availability.