论文标题

MMWave的高带宽空间均衡,并具有记忆中的处理

High-Bandwidth Spatial Equalization for mmWave Massive MU-MIMO with Processing-In-Memory

论文作者

Castañeda, Oscar, Jacobsson, Sven, Durisi, Giuseppe, Goldstein, Tom, Studer, Christoph

论文摘要

与大型多用户MIMO系统中的混合解决方案相比,全数字基础(BS)体系结构可以提高光谱效率。但是,在MMWave频率下使用全数字架构的大型带宽具有挑战性,因为传统的基带处理将导致过高的功耗和较大的硅区域。最近提出的有限alphabet均等概念能够通过使用包含低分辨率入口的均衡矩阵来解决这两个问题,以降低硬件中高通量矩阵向量产品的功率和复杂性。在本文中,我们探讨了两个不同的有限词组均衡硬件实现,它们紧密整合了内存和处理元素:(i)多重蓄能(MAC)单位的并行数组,以及(ii) - 内存(pim)架构。我们的全数字VLSI实现导致28nm CMOS表明,与在同一吞吐量相同的平行MAC数组相比,比特系列PIM体系结构分别将面积和功耗分别降低到2倍和3倍。

All-digital basestation (BS) architectures enable superior spectral efficiency compared to hybrid solutions in massive multi-user MIMO systems. However, supporting large bandwidths with all-digital architectures at mmWave frequencies is challenging as traditional baseband processing would result in excessively high power consumption and large silicon area. The recently-proposed concept of finite-alphabet equalization is able to address both of these issues by using equalization matrices that contain low-resolution entries to lower the power and complexity of high-throughput matrix-vector products in hardware. In this paper, we explore two different finite-alphabet equalization hardware implementations that tightly integrate the memory and processing elements: (i) a parallel array of multiply-accumulate (MAC) units and (ii) a bit-serial processing-in-memory (PIM) architecture. Our all-digital VLSI implementation results in 28nm CMOS show that the bit-serial PIM architecture reduces the area and power consumption up to a factor of 2x and 3x, respectively, when compared to a parallel MAC array that operates at the same throughput.

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