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Fully-Parallel Area-Efficient Deep Neural Network Design Using Stochastic Computing

机译:使用随机计算的全并行区域高效深度神经网络设计

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Deep neural network (DNN) has emerged as a powerful machine learning technique for various artificial intelligence applications. Due to the unique advantages on speed, area, and power, specific hardware design has become a very attractive solution for the efficient deployment of DNN. However, the huge resource cost of multipliers makes the fully-parallel implementations of multiplication-intensive DNN still very prohibitive in many real-time resource-constrained embedded applications. This brief proposes a fully-parallel area-efficient stochastic DNN design. By leveraging stochastic computing (SC) technique, the computations of DNN are implemented using very simple stochastic logic, thereby enabling low-complexity fully-parallel DNN design. In addition, to avoid the accuracy loss incurred by the approximation of SC, we propose an accuracy-aware DNN datapath architecture to retain the test accuracy of stochastic DNN. Moreover, we propose a novel low-complexity architecture for the binary-to-stochastic (B-to-S) interface to drastically reduce the footprint of the peripheral B-to-S circuit. Experimental results show that the proposed stochastic DNN design achieves much better hardware performance than non-stochastic design with negligible test accuracy loss.
机译:深度神经网络(DNN)已经成为一种强大的机器学习技术,适用于各种人工智能应用。由于在速度,面积和功率方面的独特优势,特定的硬件设计已成为有效部署DNN的极具吸引力的解决方案。但是,乘法器的巨大资源成本使得乘法密集型DNN的完全并行实现在许多实时资源受限的嵌入式应用程序中仍然令人望而却步。本简介提出了一种完全并行的面积有效的随机DNN设计。通过利用随机计算(SC)技术,可以使用非常简单的随机逻辑来实现DNN的计算,从而实现低复杂度的完全并行DNN设计。另外,为了避免因SC逼近而导致的精度损失,我们提出了一种精度感知的DNN数据路径架构,以保留随机DNN的测试精度。此外,我们提出了一种新颖的低复杂度架构,用于二进制到随机(B to S)接口,以大大减少外围B to S电路的占位面积。实验结果表明,所提出的随机DNN设计比非随机设计具有更好的硬件性能,且测试精度损失可忽略不计。

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