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Designing Vertical Processors in Monolithic 3D

机译:在单片3D中设计垂直处理器

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A processor laid out vertically in stacked layers can benefit from reduced wire delays, low energy consumption, and a small footprint. Such a design can be enabled by Monolithic 3D (M3D), a technology that provides short wire lengths, good thermal properties, and high integration. In current M3D technology, due to manufacturing constraints, the layers in the stack are asymmetric: the bottom-most one has a relatively higher performance. In this paper, we examine how to partition a processor for M3D. We partition logic and storage structures into two layers, taking into account that the top layer has lower-performance transistors. In logic structures, we place the critical paths in the bottom layer. In storage structures, we partition the hardware unequally, assigning to the top layer fewer ports with larger access transistors, or a shorter bitcell subarray with larger bitcells. We find that, with conservative assumptions on M3D technology, an M3D core executes applications on average 25% faster than a 2D core, while consuming 39% less energy. With aggressive technology assumptions, the M3D core performs even better: it is on average 38% faster than a 2D core and consumes 41% less energy. Further, under a similar power budget, an M3D multicore can use twice as many cores as a 2D multicore, executing applications on average 92% faster with 39% less energy. Finally, an M3D core is thermally efficient.
机译:在堆叠层中垂直布置的处理器可以受益于减少的导线延迟,低能量消耗和小占地面积。这种设计可以通过单片3D(M3D),这是一种提供短线长度,良好热性能和高集成度的技术。在目前的M3D技术中,由于制造限制,堆叠中的层是不对称的:底部最高的性能相对较高。在本文中,我们检查如何为M3D分区处理器。我们将逻辑和存储结构分区为两层,考虑到顶层具有较低性能的晶体管。在逻辑结构中,我们将临界路径放在底层中。在存储结构中,我们不均匀地分区硬件,分配给具有较大访问晶体管的顶层较少的端口,或具有较大比特电池的更短的位线子阵列。我们发现,通过对M3D技术的保守假设,M3D核心平均执行应用于2D核心的速度,同时消耗39%的能量。通过激进的技术假设,M3D核心表现更好:平均比2D核心快38%,消耗41%的能量。此外,在类似的电力预算下,M3D多核可以使用两倍的核心作为2D多核的核心,平均执行速度为92%,能量减少39%。最后,M3D核心是热效率。

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