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Chiến lược Tiến hóa (CMA-ES)×Thuật toán di truyền×
Lĩnh vựcTối ưu hóaTối ưu hóa
HọProcess / pipelineProcess / pipeline
Năm ra đời20011975
Người khởi xướngNikolaus Hansen & Andreas OstermeierJohn Henry Holland
LoạiDerivative-free continuous black-box optimizerPopulation-based metaheuristic
Công trình gốcHansen, N. & Ostermeier, A. (2001). Completely Derandomized Self-Adaptation in Evolutionary Strategies. Evolutionary Computation, 9(2), 159-195. DOI ↗Holland, J.H. (1975). Adaptation in Natural and Artificial Systems. University of Michigan Press. link ↗
Tên gọi khácCMA-ES, Evolution Strategy, Evrimsel Strateji (CMA-ES), self-adapting evolution strategyGA, evolutionary algorithm, Genetik Algoritma — Evrimsel Optimizasyon
Liên quan55
Tóm tắtCMA-ES, short for Covariance Matrix Adaptation Evolution Strategy, is a modern derivative-free optimizer for continuous black-box functions introduced by Hansen and Ostermeier in 2001. It maintains a population of candidate solutions drawn from a multivariate normal distribution and iteratively updates the distribution's mean, step size, and full covariance matrix to steer the search toward better regions of the parameter space. It has become the de-facto standard for continuous black-box optimization and is widely used in neural architecture search and reinforcement-learning policy optimization.A genetic algorithm (GA) is a population-based metaheuristic optimization method introduced by John Henry Holland (1975) that mimics the principles of natural selection. It maintains a population of candidate solutions and iteratively improves them through selection, crossover, and mutation operators, making it especially powerful on discontinuous, non-convex, and multi-modal search spaces where classical gradient-based methods fail.
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ScholarGateSo sánh phương pháp: Evolutionary Strategy · Genetic Algorithm. Truy cập ngày 2026-06-15 từ https://scholargate.app/vi/compare