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Domain Wall Memory-Layout, Circuit and Synergistic Systems

机译:领域墙内存布局,电路和协同系统

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Domain wall memory (DWM) is gaining significant attention for embedded cache application due to low standby power, excellent retention, and ability to store multiple bits per cell. Additionally, it provides fast access time, good endurance, and good retention. However, it suffers from poor write latency, shift latency, shift power, and write power. DWM is sequential in nature and latency of read/write operations depends on the offset of the bit from the read/write head. This paper investigates the circuit design challenges such as bitcell layout, head positioning, utilization factor of the nanowire, shift power, shift latency, and provides solutions to deal with these issues. A synergistic system is proposed by combining circuit techniques such as merged read/write heads (for compact layout), flipped-bitcell and shift gating (for shift power optimization), wordline strapping (for access latency), shift circuit design with two micro-architectural techniques: 1) segmented cache and 2) workload-aware dynamic shift and write current boosting to realize energy-efficient and robust DWM cache. Simulations show 3–33% performance and 1.2–14.4X power consumption improvement for cache segregation and 2.5–31% performance and 1.3–14.9X power enhancement for dynamic current boosting over a wide range of PARSEC benchmarks.
机译:由于待机功耗低,出色的保留能力以及每个单元可以存储多个位的能力,域壁内存(DWM)在嵌入式缓存应用中引起了广泛关注。此外,它提供了快速的访问时间,良好的耐用性和良好的保留性。但是,它遭受较差的写入延迟,移位延迟,移位功率和写入功率。 DWM本质上是顺序的,读/写操作的延迟取决于读/写头中位的偏移量。本文研究了诸如比特单元布局,磁头定位,纳米线的利用率,移位功率,移位等待时间等电路设计挑战,并提供了解决这些问题的解决方案。通过结合电路技术(例如合并的读/写头(用于紧凑型布局),翻转位单元和移位门控(用于移位功率优化),字线绑扎(用于访问等待时间),具有两个微电路的移位电路设计),提出了一种协同系统。架构技术:1)分段缓存和2)感知工作负载的动态移位和写入电流提升,以实现节能高效的DWM缓存。仿真显示,在各种PARSEC基准测试中,高速缓存隔离的性能提高了3–33%,功耗提高了1.2–14.4X,动态电流提高了2.5–31%,性能提高了1.3–14.9X。

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