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Beyond the Worst-Case Analysis of Algorithms

Beyond the Worst-Case Analysis of Algorithms

No customer reviews yet ISBN 9781108494311 Cambridge University Press

There are no silver bullets in algorithm design, and no single algorithmic idea is powerful and flexible enough to solve every computational problem. Nor are there silver bullets in algorithm analysis, as the most enlightening method for analyzing an algorithm often depends on the problem and the application. However, typical algorithms courses rely almost entirely on a single analysis framework, that of worst-case analysis, wherein an algorithm is assessed by its worst performance on any input of a given size. The purpose of this book is to popularize several alternatives to worst-case analysis and their most notable algorithmic applications, from clustering to linear programming to neural network training. Forty leading researchers have contributed introductions to different facets of this field, emphasizing the most important models and results, many of which can be taught in lectures to beginning graduate students in theoretical computer science and machine learning.

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BrandCambridge University Press
Pub dateJan 14, 2021
ISBN-101108494315
ISBN-139781108494311
LanguageEnglish
Dimensions10.2 × 1.6 × 7.4 in
Weight3 lb
Last updated 2026-03-23 19:45
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