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Thermal-Aware On-Chip Memory Architecture Exploration

机译:热感知片上内存架构探索

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摘要

The memory architecture has the huge impact on the performance of embedded systems. Most of the current on-chip memory techniques focused on the optimization of timing performance, power consumption, and area. Thermal issue of memory subsystem has not been fully considered in these techniques. For on-chip memory architectures, the high temperature may cause the exponential increase of leakage, which becomes one of the major factors of power consumption. With the shrinkage of feature size and the great demand of silicon area, on-chip memory is the dominate contributor of the total leakage. Therefore, it is a challenging issue to manage the thermal cost of the on-chip memory architectures. In this paper, we focus on the optimization of the on-chip memory architecture that consists of cache and scratchpad memory (SPM). Our objective is to optimize the thermal behavior of the memory components for a target application with loops, while keeping the timing performance. We propose a thermal-aware memory architecture exploration algorithm TAME, and a thermal-aware data allocation algorithm TADA. These two algorithms collaborate to perform the memory architecture exploration, considering memory components' type, size, power, area and timing performance. Experimental results show that our method reduces the peak temperature of on-chip memory subsystem significantly, and at the same time the timing performance is even improved by making fully use of SPM.
机译:内存架构对嵌入式系统的性能产生了巨大影响。大多数当前的片上内存技术集中在优化时序性能,功耗和区域的优化。在这些技术中尚未完全考虑存储器子系统的热源问题。对于片上内存架构,高温可能导致泄漏的指数增加,这成为功耗的主要因素之一。随着特征尺寸的收缩和硅面积的大量需求,片上存储器是总泄漏的主导贡献者。因此,管理片上内存架构的热成本是一个具有挑战性的问题。在本文中,我们专注于优化由缓存和临时存储器(SPM)组成的片上内存架构。我们的目的是优化具有环路的目标应用程序的存储器组件的热行为,同时保持定时性能。我们提出了一种热感知内存架构探索算法驯化,以及热感知数据分配算法TADA。这两种算法协作以执行内存架构探索,考虑内存组件的类型,大小,电源,区域和时序性能。实验结果表明,我们的方法显着降低了片上存储器子系统的峰值温度,同时通过充分利用SPM来改善定时性能。

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