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Automatic design of cellular neural networks by means of genetic algorithms: finding a feature detector

机译:利用遗传算法自动设计细胞神经网络:寻找特征检测器

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The paper aims to examine the use of genetic algorithms to optimize subsystems of cellular neural network architectures. The application at hand is character recognition: the aim is to evolve an optimal feature detector in order to aid a conventional classifier network to generalize across different fonts. To this end, a performance function and a genetic encoding for a feature detector are presented. An experiment is described where an optimal feature detector is indeed found by the genetic algorithm.
机译:本文旨在研究使用遗传算法来优化细胞神经网络体系结构的子系统。当前的应用是字符识别:其目的是发展一种最佳的特征检测器,以帮助传统的分类器网络对不同字体进行泛化。为此,提出了用于特征检测器的性能函数和遗传编码。描述了一个实验,其中通过遗传算法确实找到了最佳特征检测器。

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