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Research and Design of Distributed Neural Networks with Chip Training Algorithm

机译:芯片训练算法的分布式神经网络研究与设计

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摘要

To solve the bottleneck of memory in current prediction of protein secondary structure program, a chip training algorithm for a Distributed Neural Networks based on multi-agents is proposed in this paper. This algorithm evolves the global optimum by competition from a group of neural network agents by processing different groups of sample chips. The experimental results demonstrate that this method can effectively improve the convergent speed, has good expansibility, and can be applied to the prediction of protein secondary structure of middle and large size of amino-acid sequence.
机译:为了解决当前蛋白质二级结构程序预测中的存储瓶颈,提出了一种基于多智能体的分布式神经网络芯片训练算法。该算法通过处理不同组的样本芯片,通过与一组神经网络代理进行竞争来发展全局最优。实验结果表明,该方法能有效提高收敛速度,具有良好的扩展性,可用于预测中,大型氨基酸序列的蛋白质二级结构。

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