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RIME: A Scalable and Energy-Efficient Processing-In-Memory Architecture for Floating-Point Operations

机译:RIME:用于浮点操作的可扩展和节能的内存内存架构

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Processing in-memory (PIM) is an emerging technology poised to break the memory-wall in the conventional von Neumann architecture. PIM reduces data movement from the memory systems to the CPU by utilizing memory cells for logic computation. However, existing PIM designs do not support high precision computation (e.g., floating-point operations) essential for critical data-intensive applications. Furthermore, PIM architectures require complex control module and costly peripheral circuits to harness the full potential of in-memory computation. These peripherals and control modules usually suffer from scalability and efficiency issues.Hence, in this paper, we explore the analog properties of the resistive random access memory (RRAM) crossbar and propose a scalable RRAM-based in-memory floating-point computation architeture (RIME). RIME uses single-cycle NOR, NAND, and Minority logic to achieve floating-point operations. RIME features a centralized control module and a simplified peripheral circuit to eliminate data movement during parallel computation. An experimental 32-bit RIME multiplier demonstrates 4.8X speedup, 1.9X area-improvement, and 5.4X energy-efficiency than state-of-the-art RRAM-based PIM multipliers.
机译:内存处理(PIM)是一种新兴技术,准备破坏传统的冯Neumann架构中的记忆墙。 PIM通过利用用于逻辑计算的存储器单元来减少从存储系统到CPU的数据移动。然而,现有的PIM设计不支持关键数据密集型应用的高精度计算(例如,浮点操作)。此外,PIM架构需要复杂的控制模块和昂贵的外围电路来利用内存计算的全部潜力。这些外围设备和控制模块通常遭受可扩展性和效率问题。在本文中,我们探讨了电阻随机存取存储器(RRAM)交叉杆的模拟特性,并提出了一种基于可扩展的RRAM的内存浮点计算acciture(霜)。 rime使用单周期,NAND和少数逻辑来实现浮点操作。 rime具有集中控制模块和简化的外围电路,以消除并行计算期间的数据移动。实验32位铃升倍增器演示了4.8倍的加速,1.9倍面积改进,比最先进的RRAM的PIM乘法器高,电位效率为5.4倍的能量效率。

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