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RIMPA: A New Reconfigurable Dual-Mode In-Memory Processing Architecture with Spin Hall Effect-Driven Domain Wall Motion Device

机译:RIMPA:具有旋转霍尔效应驱动的域壁运动装置的新型可重新配置的双模内存处理架构

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This paper presents a new Reconfigurable dualmode In-Memory Processing Architecture based on spin Hall effect-driven domain wall motion device called RIMPA. In this architecture, a portion of spintronic memory array can be reconfigured to either non-volatile memory or in-memory logic. Accordingly, computation can be performed within memory without long distance data transfer or large in-memory logic area overhead concerning conventional Von-Neumann or in-memory computing architecture, respectively. The device to architecture simulation results show that, with 17% area increase, RIMPA improves the operating energy by 72.2% as compared with the conventional non-volatile in-memory logic schemes. We show that the Advanced Encryption Standard (AES) algorithm which is widely used in secure big data storage, can be efficiently mapped to RIMPA with 68.8% and 20.8% energy saving in comparison to CMOS-ASIC and recent DW-AES implementations, respectively.
机译:本文介绍了一种基于旋转霍尔效应驱动的域壁运动装置的新型可重构的DualMode内存处理架构,称为RIMPA。在该架构中,可以将一部分闪光存储器阵列重新配置为非易失性存储器或内存中的逻辑。因此,可以在没有长距离数据传输或关于传统的von-neumann或内存计算体系结构的情况下在存储器内执行计算而没有长距离数据传输或大的内存逻辑区域开销。该设备到架构仿真结果表明,随着17 %面积增加,与传统的非易失性内存逻辑方案相比,RIMPA通过72.2 %提高了操作能量。我们表明,广泛用于安全大数据存储的高级加密标准(AES)算法,可以有效地映射到RIMPA,与CMOS-ASIC和最近的DW-AES实现相比,节能的68.8 %和20.8 %节能,分别。

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