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High precision FPGA implementation of neural network activation functions

机译:高精度FPGA实现神经网络激活功能

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摘要

The efficient implementation of artificial neural networks in FPGA boards requires tackling several issues that strongly affect the final result. One of these issues is the computation of the neuron's activation function. In this work, a detailed analysis of the FPGA implementations of the Sigmoid and Exponential functions is carried out, in a approach combining a lookup table with a linear interpolation procedure. Further, to optimize board resources utilization, a time division multiplexing of the multiplier attached to the neurons was used. The results are evaluated in terms of the absolute and relative errors obtained and also through measuring a quality factor and the resource utilization, showing a clear improvement in relationship to previously published works.
机译:在FPGA板上的人工神经网络的有效实施需要解决强烈影响最终结果的几个问题。其中一个问题是Neuron激活功能的计算。在这项工作中,执行对SIGMOID和指数函数的FPGA实现的详细分析,以与线性插值过程组合的研究。此外,为了优化电路板资源利用率,使用连接到神经元的乘数的时分复用。结果是在获得的绝对和相对误差方面进行评估,同时通过测量质量因数和资源利用率,表明与先前公布的作品的关系有明显的改善。

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