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IP core for efficient zero-run length compression of CNN feature maps

机译:IP核可实现CNN特征图的高效零游程压缩

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Convolutional Neural Networks (CNNs) are becoming a fundamental tool for machine learning. High performance and energy efficiency are of great importance for deployments of CNNs in many embedded applications. Energy consumption during CNN processing is dominated by memory access and since large networks do not fit on on-chip storage, they require expensive DRAM access. This paper introduces an universal Output Stream Manager (OSM) which can be used to compress and format data coming from a CNN accelerator and reduce external memory access. The OSM exploits the sparsity of data and implements two Zero-Run Length encoding algorithms and can be easily reconfigured to optimize usage for different CNN layers.
机译:卷积神经网络(CNN)正在成为机器学习的基本工具。高性能和高能效对于在许多嵌入式应用中部署CNN至关重要。 CNN处理期间的能耗主要由内存访问控制,并且由于大型网络不适合片上存储,因此它们需要昂贵的DRAM访问。本文介绍了一种通用输出流管理器(OSM),可用于压缩和格式化来自CNN加速器的数据并减少对外部存储器的访问。 OSM利用了数据的稀疏性,并实现了两种零游程长度编码算法,可以轻松地对其进行重新配置,以优化不同CNN层的使用率。

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