Data Science and Optimization
Produktnummer:
18dda23881b395456ba9bd1e43214de055
Themengebiete: | continuous optimization data science discrete optimization optimization practice optimization theory stochastic optimization |
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Veröffentlichungsdatum: | 10.11.2025 |
EAN: | 9783032038432 |
Sprache: | Englisch |
Produktart: | Gebunden |
Herausgeber: | Dang, Sanjeena Deza, Antoine Gupta, Swati McNicholas, Paul D. Pokutta, Sebastian Sugiyama, Masashi |
Verlag: | Springer International Publishing |
Produktinformationen "Data Science and Optimization"
Data science and optimization are increasingly intertwined as both focus on developing computational and methodological approaches to tackling large and otherwise complex datasets. Optimization is primarily concerned with accuracy, computational efficiency, and robustness while data science emphasizes achieving effective results on real datasets. Although some data science approaches involve the implicit optimization of objective functions, there remains a dearth of work that brings advanced optimization techniques to bear on data science problems. The goal of the Fields Focus Program on Data Science and Optimization held in November 2019 at the Fields Institute in Toronto, was to bring together researchers in data science and optimization, both theoretical and applied, in an effort to bridge the fields and stimulate cross-disciplinary interaction and collaboration.In the spirit of the program, this volume compiles recent development and connections in the fields of data science and optimization, and the ways in which they overlap. It features novel results and state-of-the-art surveys as well as open problems.

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