基于社会蜘蛛优化的人工神经网络训练及其在帕金森病识别中的应用

Luís A. M. Pereira, D. Rodrigues, Patricia B. Ribeiro, J. Papa, S. Weber
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引用次数: 41

摘要

进化算法被广泛应用于人工神经网络(ANN)的训练中,它是利用生物体的社会动态来更新神经元的权值以降低分类误差的思想。在本文中,我们引入了Social-Spider Optimization来改进带有多层感知器的ANN的训练阶段,并在帕金森病识别的背景下验证了所提出的方法。实验部分与其他五种知名的元启发式方法进行了对比,结果表明单点登录是一种适合于ANN-MLP训练步骤的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Social-Spider Optimization-Based Artificial Neural Networks Training and Its Applications for Parkinson's Disease Identification
Evolutionary algorithms have been widely used for Artificial Neural Networks (ANN) training, being the idea to update the neurons' weights using social dynamics of living organisms in order to decrease the classification error. In this paper, we have introduced Social-Spider Optimization to improve the training phase of ANN with Multilayer perceptrons, and we validated the proposed approach in the context of Parkinson's Disease recognition. The experimental section has been carried out against with five other well-known meta-heuristics techniques, and it has shown SSO can be a suitable approach for ANN-MLP training step.
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