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An FPGA implementation of a long short-term memory neural network

机译:长短期记忆神经网络的FPGA实现

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Our work proposes a hardware architecture for a Long Short-Term Memory (LSTM) Neural Network, aiming to outperform software implementations, by exploiting its inherent parallelism. The main design decisions are presented, along with the proposed network architecture. A description of the main building blocks of the network is also presented. The network is synthesized for various sizes and platforms, and the performance results are presented and analyzed. Our synthesized network achieves a 251 times speed-up over a custom-built software network, running on an i7-3770k Desktop computer, proving the benefits of parallel computation for this kind of network.
机译:我们的工作提出了长短期记忆(LSTM)神经网络的硬件体系结构,旨在通过利用其固有的并行性来胜过软件实现。介绍了主要的设计决策,以及建议的网络体系结构。还介绍了网络的主要组成部分。该网络针对各种规模和平台进行了综合,并给出了性能结果并进行了分析。通过在i7-3770k台式计算机上运行的定制软件网络,我们的综合网络实现了251倍的提速,证明了这种网络的并行计算的优势。

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