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首页> 外文期刊>IEEE transactions on circuits and systems . I , Regular papers >NS-CIM: A Current-Mode Computation-in-Memory Architecture Enabling Near-Sensor Processing for Intelligent IoT Vision Nodes
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NS-CIM: A Current-Mode Computation-in-Memory Architecture Enabling Near-Sensor Processing for Intelligent IoT Vision Nodes

机译:NS-CIM:一种当前模式计算内存架构,可实现智能IOT视觉节点的近传感器处理

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摘要

In recent years, Neural networks (NNs) present vast potential for innovative applications. However, energy efficiency continues to remain a challenge in deploying NNs on the edge. In this context, computation-in-memory (CIM) architecture becomes an emerging trend in the area of energy-efficient hardware design, because it reduces data movement of multiply-accumulate (MAC) computation significantly. However, many recent works employ massive data converters to feed input data and transform output results, which may counteract the benefits of in-memory processing. To tackle this limitation, we propose a combined architecture cooperating sensor with CIM macro to achieve local processing of sensory signals. Current-mode computing techniques are exploited to achieve high energy efficiency while eliminating data conversion overhead. Moreover, we thoroughly analyze the non-idealities of the proposed mixed-signal circuits and present a co-design scheme to mitigate these imperfections. We have fabricated a 2-Kbit CIM macro in the proposed architecture with TSMC 65-nm technology. The fabricated chip achieved 60.6 TOPS/W energy efficiency while consuming 845.5 mu W power and 0.3 mm(2) core area, presenting a promising solution for energy-constrained edge devices.
机译:近年来,神经网络(NNS)对创新应用的巨大潜力呈现出巨大的潜力。然而,能效继续在将NNS上部署在边缘上的挑战。在这种情况下,计算内存(CIM)架构成为节能硬件设计领域的新兴趋势,因为它显着降低了乘法累积(MAC)计算的数据移动。然而,许多最近的作品采用大量数据转换器来馈送输入数据并转换输出结果,这可能抵消内存处理的好处。为了解决这个限制,我们提出了一种具有CIM宏的组合体系结构,实现了感觉信号的局部处理。利用电流模式计算技术来实现高能量效率,同时消除数据转换开销。此外,我们彻底分析了所提出的混合信号电路的非理想,并提出了一种用于减轻这些缺陷的共同设计方案。我们在具有TSMC 65-NM技术的拟议架构中制造了一个2 Kbit CIM宏。制造的芯片实现了60.6个顶/宽能效,同时消耗了845.5μW功率和0.3毫米(2)核心区域,为能量受限边缘装置提出了有希望的解决方案。

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