DocumentCode :
2164832
Title :
The impact of resource partitioning on SMT processors
Author :
Raasch, Steven E. ; Reinhardt, Steven K.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Michigan Univ., Ann Arbor, MI, USA
fYear :
2003
fDate :
27 Sept.-1 Oct. 2003
Firstpage :
15
Lastpage :
25
Abstract :
Simultaneous multithreading (SMT) increases processor throughput by multiplexing resources among several threads. Despite the commercial availability of SMT processors, several aspects of this resource sharing are not well understood. For example, academic SMT studies typically assume that resources are shared dynamically, while industrial designs tend to divide resources statically among threads. This study seeks to quantify the performance impact of resource partitioning policies in SMT machines, focusing on the execution portion of the pipeline. We find that for storage resources, such as the instruction queue and reorder buffer, statically allocating an equal portion to each thread provides good performance, in part by avoiding starvation. The enforced fairness provided by this partitioning obviates sophisticated fetch policies to a large extent. SMT´s potential ability to allocate storage resources dynamically across threads does not appear to be of significant benefit. In contrast, static division of issue bandwidth has a negative impact on throughput. SMT´s ability to multiplex bursty execution streams dynamically onto shared function units contributes to its overall throughput. Finally, we apply these insights to SMT support in clustered architectures. Assigning threads to separate clusters eliminates intercluster communication; however, in some circumstances, the resulting partitioning of issue bandwidth cancels out the performance benefit of eliminating communication.
Keywords :
buffer storage; instruction sets; multi-threading; multiprocessing systems; parallel architectures; pipeline processing; resource allocation; bursty execution streams; clustered architectures; instruction queue; intercluster communication; issue bandwidth; processor throughput; reorder buffer; resource partitioning policies; resource sharing; shared function units; simultaneous multithreading; storage resource allocation; Bandwidth; Buffer storage; Computer architecture; Interleaved codes; Laboratories; Pipelines; Process design; Resource management; Surface-mount technology; Yarn;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel Architectures and Compilation Techniques, 2003. PACT 2003. Proceedings. 12th International Conference on
ISSN :
1089-795X
Print_ISBN :
0-7695-2021-9
Type :
conf
DOI :
10.1109/PACT.2003.1237998
Filename :
1237998
Link To Document :
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