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SC~2: A Statistical Compression Cache Scheme

机译:SC〜2:统计压缩缓存方案

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摘要

Low utilization of on-chip cache capacity limits performance and wastes energy because of the long latency, limited bandwidth, and energy consumption associated with off-chip memory accesses. Value replication is an important source of low capacity utilization. While prior cache compression techniques manage to code frequent values densely, they trade off a high compression ratio for low decompression latency, thus missing opportunities to utilize capacity more effectively. This paper presents, for the first time, a detailed design-space exploration of caches that utilize statistical compression. We show that more aggressive approaches like Huffman coding, which have been neglected in the past due to the high processing overhead for (de)compression, are suitable techniques for caches and memory. Based on our key observation that value locality varies little over time and across applications, we first demonstrate that the overhead of statistics acquisition for code generation is low because new encodings are needed rarely, making it possible to off-load it to software routines. We then show that the high compression ratio obtained by Huffman-coding makes it possible to utilize the performance benefits of 4X larger last-level caches with about 50% lower power consumption than such larger caches.
机译:片上高速缓存容量的低利用率限制了性能,并浪费了能量,原因是延迟时间长,带宽有限以及与片外存储器访问相关的能耗。价值复制是低容量利用率的重要来源。尽管现有的高速缓存压缩技术设法对频繁的值进行密集编码,但它们却在高压缩比与低解压缩延迟之间进行权衡,从而失去了更有效利用容量的机会。本文首次展示了利用统计压缩的缓存的详细设计空间探索。我们显示,由于(解)压缩的高处理开销而在过去被忽略的更具攻击性的方法(如霍夫曼编码)是适用于缓存和内存的技术。基于我们对值局部性随时间和应用程序变化不大的主要观察,我们首先证明,由于很少需要新的编码,因此获取代码生成统计信息的开销很低,从而有可能将其卸载到软件例程中。然后,我们表明,通过霍夫曼编码获得的高压缩率使得可以利用4倍较大的最后一级缓存的性能优势,而功耗比此类较大的缓存低约50%。

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  • 来源
    《Computer architecture news》 |2014年第3期|145-156|共12页
  • 作者单位

    Chalmers University of Technology, Gothenburg, Sweden;

    Chalmers University of Technology, Gothenburg, Sweden;

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  • 正文语种 eng
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