Proximal Algorithms in Optimization

Proximal Algorithms in Optimization

Neal Parikh , Stephen Boyd
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Nov 27, 2013 · 英語 · 平裝書 (130 頁數)
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書籍詳情

格式 平裝書
頁數 130
語言 英語
已出版 Nov 27, 2013
出版商 Now Publishers Inc
ISBN-10 1601987161
ISBN-13 9781601987167

描述

In a rapidly evolving field of optimization, the contributions of proximal algorithms have garnered significant attention, and this exploration delves into their intricacies and applications. The narrative intricately weaves together theoretical foundations with practical insights, offering readers a robust understanding of how these algorithms function and their applicability across various domains.

The authors, experts in optimization, break down complex concepts into digestible segments, making it accessible to both seasoned researchers and newcomers. Through illustrative examples and detailed explanations, they highlight the relevance of proximal algorithms in addressing real-world challenges, illustrating their effectiveness in non-smooth optimization problems.

In addition to theoretical analysis, the work also emphasizes the computational aspects, ensuring readers grasp not just the "how," but also the "why" behind the algorithms' performance. This comprehensive treatment encourages a deeper appreciation for the nuances of optimization methodologies and their evolution.

Ultimately, this examination serves as both a foundational reference for those interested in optimization theory and a practical guide for practitioners looking to leverage proximal algorithms in their work, fostering a richer understanding of modern optimization techniques.
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