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Quantifying the Benefits of Monolithic 3D Computing Systems Enabled by TFT and RRAM

机译:量化TFT和RRAM支持的单片3D计算系统的收益

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Current data-centric workloads, such as deep learning, expose the memory-access inefficiencies of current computing systems. Monolithic 3D integration can overcome this limitation by leveraging fine-grained and dense vertical connectivity to enable massively-concurrent accesses between compute and memory units. Thin-Film Transistors (TFTs) and Resistive RAM (RRAM) naturally enable monolithic 3D integration as they are fabricated in low temperature (a crucial requirement). In this paper, we explore ZnO-based TFTs and HfO2-based RRAM to build a 1TFT-1R memory subsystem in the upper tiers. The TFT-based memory subsystem is stacked on top of a Si-FET bottom tier that can include compute units and SRAM. System-level simulations for various deep learning workloads show that our TFT-based monolithic 3D system achieves up to 11.4× system-level energy-delay product benefits compared to 2D baseline with off-chip DRAM—5.8× benefits over interposer-based 2.5D integration and 1.25× over 3D stacking of RRAM on silicon using through-silicon vias. These gains are achieved despite the low density of TFT-based RRAM and the higher energy consumption versus 3D stacking with RRAM, due to inherent TFT limitations.
机译:当前的以数据为中心的工作负载(例如深度学习)暴露了当前计算系统的内存访问效率低下的情况。单片3D集成可通过利用细粒度且密集的垂直连接来实现计算和存储单元之间的大规模并发访问,从而克服此限制。薄膜晶体管(TFT)和电阻RAM(RRAM)自然地实现了单片3D集成,因为它们是在低温下制造的(一项至关重要的要求)。在本文中,我们探索了基于ZnO的TFT和HfO 2 的RRAM在上层构建1TFT-1R存储子系统。基于TFT的内存子系统堆叠在Si-FET底层的顶部,该底层可以包括计算单元和SRAM。针对各种深度学习工作负载的系统级仿真显示,与使用片外DRAM的2D基准相比,我们的基于TFT的单片3D系统可实现高达11.4倍的系统级能耗产品优势—与基于中介层的2.5D相比,具有5.8倍的优势使用直通硅通孔在硅上集成RRAM并进行1.25倍3D堆叠。尽管基于TFT的固有局限性,与基于RRAM的3D堆叠相比,基于TFT的RRAM的密度低且能耗更高,但仍获得了这些收益。

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