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Hardware implementation of GMDH-type artificial neural networks and its use to predict approximate three-dimensional structures of proteins

机译:GMDH型人工神经网络的硬件实现及其在预测蛋白质近似三维结构中的应用

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Implementation of artificial neural networks in software on general purpose computer platforms are brought to an advanced level both in terms of performance and accuracy. Nonetheless, neural networks are not so easily applied in embedded systems, specially when the fully retraining of the network is required. This paper shows the results of the implementation of artificial neural networks based on the Group Method of Data Handling (GMDH) in reconfigurable hardware, both in the steps of training and running. A hardware architecture has been developed to be applied as a co-processing unit and an example application has been used to test its functionality. The application has been developed for the prediction of approximate 3-D structures of proteins. A set of experiments have been performed on a PC using the FPGA as a co-processor accessed through sockets over the TCP/IP protocol. The design flow employed demonstrated that it is possible to implement the network in hardware to be easily applied as an accelerator in embedded systems. The experiments show that the proposed implementation is effective in finding good quality solutions for the example problem. This work represents the early results of the novel technique of applying the GMDH algorithms in hardware for solving the problem of protein structures prediction.
机译:在通用计算机平台上的软件中,人工神经网络的实现在性能和准确性方面都达到了更高的水平。但是,神经网络在嵌入式系统中并不是那么容易应用,特别是在需要对网络进行全面重新训练时。本文在训练和运行步骤中,展示了在可重配置硬件中基于数据处理组方法(GMDH)的人工神经网络的实现结果。已经开发了一种硬件体系结构以用作协同处理单元,并且使用示例应用程序来测试其功能。已开发出该应用程序,用于预测蛋白质的近似3-D结构。在PC上使用FPGA作为协处理器,通过TCP / IP协议通过套接字访问了一组实验。所采用的设计流程证明,可以在硬件中实现网络以轻松用作嵌入式系统中的加速器。实验表明,所提出的实现方案可以有效地为示例问题找到优质的解决方案。这项工作代表了在硬件中应用GMDH算法解决蛋白质结构预测问题的新技术的早期结果。

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