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Neocognitron Trained by Winner-Kill-Loser with Triple Threshold

机译:Neocockitron由冠军 - 杀人失败者接受了三重阈值

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The neocognitron is a hierarchical, multi-layered neural network capable of robust visual pattern recognition. The neocognitron acquires the ability to recognize visual patterns through learning. The winner-kill-loser is a recently introduced competitive learning rule that has been shown to improve the neocognitron's performance in character recognition. This paper proposes an improved winner-kill-loser rule, in which we use a triple threshold, instead of the dual threshold used as part of the conventional winner-kill-loser. It is shown theoretically, and also by computer simulation, that the use of a triple threshold makes the learning process more stable. In particular, a high recognition rate can be obtained with a smaller network.
机译:Neocognitron是一种能够强大的视觉模式识别的分层,多层神经网络。 Neocognitron获取通过学习识别视觉模式的能力。获奖者-kill-loser是最近引入的竞争学习规则,已被证明可以提高新ocognitron在字符识别方面的表现。本文提出了一种改进的获奖者 - 杀手 - 失败者规则,其中我们使用三阈值,而不是作为传统获胜者 - 杀手的一部分使用的双阈值。理论上示出了,并且通过计算机模拟,使用三重阈值使得学习过程更稳定。特别地,可以用较小的网络获得高识别率。

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