Memory system design space exploration for low-power, real-time speech recognition

R. Krishna, S. Mahlke, T. Austin
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引用次数: 7

Abstract

The recent proliferation of computing technology has generated new interest natural I/O interface technologies such as speech recognition. Unfortunately, the computational and memory demands of such applications currently prohibit their use on low-power portable devices in anything more than their simplest forms. Previous work has demonstrated that the thread level concurrency inherent in this application domain can be used to dramatically improve performance with minimal impact on overall system energy consumption, but that such benefits are severely constrained by memory system bandwidth. This work presents a design space exploration of potential memory system architectures. A range of low-power memory organizations are considered, from conventional caching to more advanced system-on-chip implementations. We find that, given architectures able to exploit concurrency in this domain, large L2 based cache hierarchies and high bandwidth memory systems employing data stream partitioning and on-chip embedded DRAM and ROM technologies can provide much of the performance of idealized memory systems without violating the power constraints of the low-power domain.
低功耗、实时语音识别的存储系统设计空间探索
最近计算技术的普及引起了人们对自然I/O接口技术(如语音识别)的新兴趣。不幸的是,这些应用程序的计算和内存需求目前禁止它们以最简单的形式在低功耗便携式设备上使用。以前的工作已经证明,这个应用程序域中固有的线程级并发性可以在对整个系统能耗影响最小的情况下显著提高性能,但是这种好处受到内存系统带宽的严重限制。这项工作提出了潜在的存储系统架构的设计空间探索。考虑了一系列低功耗内存组织,从传统的缓存到更高级的片上系统实现。我们发现,给定的架构能够利用该领域的并发性,大型基于L2的缓存层次结构和采用数据流分区和片上嵌入式DRAM和ROM技术的高带宽内存系统可以在不违反低功耗领域的功率限制的情况下提供理想内存系统的大部分性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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