DocumentCode
2947107
Title
MorphCache: A Reconfigurable Adaptive Multi-level Cache hierarchy
Author
Srikantaiah, Shekhar ; Kultursay, Emre ; Zhang, Tao ; Kandemir, Mahmut ; Irwin, Mary Jane ; Xie, Yuan
Author_Institution
Pennsylvania State Univ., University Park, PA, USA
fYear
2011
fDate
12-16 Feb. 2011
Firstpage
231
Lastpage
242
Abstract
Given the diverse range of application characteristics that chip multiprocessors (CMPs) need to cater to, a “one-cache-topology-fits-all” design philosophy will clearly be inadequate. In this paper, we propose MorphCache, a Reconfigurable Adaptive Multi-level Cache hierarchy. Mor-phCache dynamically tunes a multi-level cache topology in a CMP to allow significantly different cache topologies to exist on the same architecture. Starting from per-core L2 and L3 cache slices as the basic design point, MorphCache alters the cache topology dynamically by merging or splitting cache slices and modifying the accessibility of different cache slice groups to different cores in a CMP. We evaluated MorphCache on a 16 core CMP on a full system simulator and found that it significantly improves both average throughput and harmonic mean of speedups of diverse multithreaded and multiprogrammed workloads. Specifically, our results show that MorphCache improves throughput of the multiprogrammed mixes by 29.9% over a topology with all-shared L2 and L3 caches and 27.9% over a topology with per core private L2 cache and shared L3 cache. In addition, we also compared MorphCache to partitioning a single shared cache at each level using promotion/insertion pseudo-partitioning (PIPP) [28] and managing per-core private cache at each level using dynamic spill receive caches (DSR) [18]. We found that MorphCache improves average throughput by 6.6% over PIPP and by 5.7% over DSR when applied to both L2 and L3 caches.
Keywords
cache storage; microprocessor chips; multiprocessing systems; CMP; chip multiprocessors; diverse multithreaded; morphcache; multiprogrammed workloads; promotion/insertion pseudo-partitioning; reconfigurable adaptive multi-level cache hierarchy; Benchmark testing; Estimation; Instruction sets; Merging; System-on-a-chip; Throughput; Topology;
fLanguage
English
Publisher
ieee
Conference_Titel
High Performance Computer Architecture (HPCA), 2011 IEEE 17th International Symposium on
Conference_Location
San Antonio, TX
ISSN
1530-0897
Print_ISBN
978-1-4244-9432-3
Type
conf
DOI
10.1109/HPCA.2011.5749732
Filename
5749732
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