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Grading learning for blind source separation [推广有奖]

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AIworld 在职认证  发表于 2018-2-10 01:40:00 |AI写论文

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摘要:By generalizing the learning rate parameter to a learning rate matrix, this paper proposes agrading learning algorithm for blind source separation. The whole learning process is divided into threestages: initial stage, capturing stage and tracking stage. In different stages, different learning rates areused for each output component, which is determined by its dependency on other output components. Itis shown that the grading learning algorithm is equivariant and can keep the separating matrix from be-coming singular. Simulations show that the proposed algorithm can achieve faster convergence, bettersteady-state performance and higher numerical robustness, as compared with the existing algorithmsusing fixed, time-descending and adaptive learning rates.

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关键词:separation Learning earning Grading ration 等级知识算法 盲资料分离 BSS 独立组分分析 神经计算

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