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7yr MC
cover
Evolutionary Learning: Advances in Theories and Algorithms [Book] Douban
演化学习:理论与算法进展
author: Zhou, Zhi-Hua / Yu, Yang … publishing house: Springer 2019 - 7
Many machine learning tasks involve solving complex optimization problems, such as working on non-differentiable, non-continuous, and non-unique objective functions; in some cases it can prove difficult to even define an explicit objective function. Evolutionary learning applies evolutionary algorithms to address optimization problems in machine learning, and has yielded encouraging outcomes in many applications. However, due to the heuristic nature of evolutionary optimization, most outcomes to date have been empirical and lack theoretical support. This shortcoming has kept evolutionary learning from being well received in the machine learning community, which favors solid theoretical approaches.
Recently there have been considerable efforts to address this issue. This book presents a range of those efforts, divided into four parts. Part I briefly introduces readers to evolutionary learning and provides some preliminaries, while Part II presents general theoretical tools for the analysis of running time and approximation performance in evolutionary algorithms. Based on these general tools, Part III presents a number of theoretical findings on major factors in evolutionary optimization, such as recombination, representation, inaccurate fitness evaluation, and population. In closing, Part IV addresses the development of evolutionary learning algorithms with provable theoretical guarantees for several representative tasks, in which evolutionary learning offers excellent performance.

在读《Evolutionary Learning: Advances in Theories and Algorithms》集成学习大牛周志华新书。至少我能感受到 ensemble 跟 EA(evolutionary algorithm) 还挺有联系。看到 IEEE Transactions on Evolutionary Computation 这个期刊的影响因子之高,也一定程度反映,很多机器学习的优化是真没办法,非要用上演化、群智能等启发式方法来优化。

MC
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