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Application of Global Dynamic Reconfiguration in Artificial Neural Network System based on Field Programmable Gate Array

机译:全局动态重构在基于现场可编程门阵列的人工神经网络系统中的应用

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摘要

Presented is a global dynamic reconfiguration design of an artificial neural network based on field programmable gate array(FPGA). Discussed are the dynamic reconfiguration principles and methods. Proposed is a global dynamic reconfiguration scheme using Xilinx FPGA and platform flash. Using the revision capabilities of Xilinx XCF32P platform flash, an artificial neural network based on Xilinx XC2V30P Virtex-Ⅱ can be reconfigured dynamically from back propagation(BP) learning algorithms to BP network testing algorithms. The experimental results indicate that the scheme is feasible, and that, using dynamic reconfiguration technology, FPGA resource utilization can be reduced remarkably.
机译:提出了一种基于现场可编程门阵列(FPGA)的人工神经网络的全局动态重配置设计。讨论了动态重配置原理和方法。提出了一种使用Xilinx FPGA和平台闪存的全局动态重配置方案。利用Xilinx XCF32P平台Flash的修订功能,可以将基于Xilinx XC2V30PVirtex-Ⅱ的人工神经网络从反向传播(BP)学习算法动态地重新配置为BP网络测试算法。实验结果表明该方案是可行的,并且利用动态重配置技术可以显着降低FPGA资源的利用率。

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