差分评估算法在MLP训练中的FPGA实现

Ali Riza Yilmaz, B. Erkmen, O. Yavuz
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引用次数: 3

摘要

本文在基于FPGA的嵌入式系统上实现了差分进化算法(DEA),用于多层感知器(MLP)的训练。利用非线性数据库分析了基于DEA训练的MLP在FPGA上的分类性能。从计算性能和测试精度两方面对FPGA上的MLP性能与MATLAB上的MLP性能进行了比较。考虑到算法的简单性,证明了DEA适合在FPGA上实现。文中给出了基于FPGA的DEA系统各组成部分的仿真结果。
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FPGA implementation of Differential Evaluation Algorithm for MLP training
In this work, Differential Evolution Algorithm (DEA) is implemented on an embedded systems based on FPGA for the training of multi-layer perceptron (MLP). The classification performance of the MLP trained by DEA on FPGA has been analyzed by using a non-linear database. The MLP performance on FPGA has been compared with that on MATLAB in terms of computational performance and test accuracy. It is proved that DEA is suitable for realizing on FPGA considering simplicity of the algorithm. Simulation results of each component for DEA on FPGA are demonstrated in this paper.
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