基于非易失性铁电电容器的内存计算加速器的跨层设计空间和变异分析框架

Yuan-chun Luo, James Read, A. Lu, Shimeng Yu
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引用次数: 1

摘要

与 "电阻式 "横条阵列相比,使用非易失性 "电容式 "横条阵列进行内存计算(CIM)具有更高的能效和面积效率。然而,设备到设备(D2D)变化和时间噪声对系统级性能的影响尚未得到探讨。在这项工作中,我们提供了一种端到端的方法,将实验测得的 D2D 变化纳入设计空间探索,从电容式权重单元设计、带有外围电路的 CIM 阵列,到 SwinV2-T 视觉转换器和 ResNet-50 在 ImageNet 数据集上的推理准确性。我们的框架通过考虑单元设计、电路结构和模型选择,进一步评估了系统的功耗、性能和面积(PPA)。我们使用早期停止算法探索设计空间,以产生最佳设计,同时满足严格的推理精度要求。总体研究结果表明,电容式 CIM 系统对 D2D 变化和噪声具有很强的鲁棒性,在 ResNet-50 和 SwinV2-T 的优越性图(TOPS/W $\times {\mathrm {TOPS}}/\mathrm{mm}^{2}$ )中,电容式 CIM 系统分别比电阻式 CIM 系统高出 6.95 美元和 14.1 美元。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Cross-layer Framework for Design Space and Variation Analysis of Non-Volatile Ferroelectric Capacitor-Based Compute-in-Memory Accelerators
Using non-volatile “capacitive” crossbar arrays for compute-in-memory (CIM) offers higher energy and area efficiency compared to “resistive” crossbar arrays. However, the impact of device-to-device (D2D) variation and temporal noise on the system-level performance has not been explored yet. In this work, we provide an end-to-end methodology that incorporates experimentally measured D2D variation into the design space exploration from capacitive weight cell design, CIM array with peripheral circuits, to the inference accuracy of SwinV2-T vision transformer and ResNet-50 on the ImageNet dataset. Our framework further assesses the system’s power, performance, and area (PPA) by considering cell design, circuit structure, and model selection. We explore the design space using an early stopping algorithm to produce optimal designs while meeting strict inference accuracy requirements. Overall findings suggest that the capacitive CIM system is robust against D2D variation and noise, outperforming its resistive counterpart by $6.95 \times$ and $14.1 \times$ for the optimal design in the figure of merit (TOPS/W $\times {\mathrm {TOPS}}/\mathrm{mm}^{2}$) for ResNet-50 and SwinV2-T respectively.
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