DocumentCode
2331520
Title
Variation-aware task allocation and scheduling for MPSoC
Author
Wang, Feng ; Nicopoulos, C. ; Wu, Xiaoxia ; Xie, Yuan ; Vijaykrishnan, N.
Author_Institution
Pennsylvania State Univ., University Park
fYear
2007
fDate
4-8 Nov. 2007
Firstpage
598
Lastpage
603
Abstract
As technology scales, the delay uncertainty caused by process variations has become increasingly pronounced in deep sub-micron designs. As a result, a paradigm shift from deterministic to statistical design methodology at all levels of the design hierarchy is inevitable [1]. In this paper, we propose a variation-aware task allocation and scheduling algorithm for Multiprocessor System-on-Chip (MPSoC) architectures to mitigate the impact of parameter variations. A new design metric, called performance yield and defined as the probability of the assigned schedule meeting the predefined performance constraints, is used to guide the task allocation and scheduling procedure. An efficient yield computation method for task scheduling complements and significantly improves the effectiveness of the proposed variation-aware scheduling algorithm. Experimental results show that our variation-aware scheduler achieves significant yield improvements. On average, 45% and 34% yield improvements over worst-case and nominal-case deterministic schedulers, respectively, can be obtained across the benchmarks by using the proposed variation-aware scheduler.
Keywords
microprocessor chips; scheduling; system-on-chip; MPSoC; Multiprocessor System-on-Chip; deterministic schedulers; parameter variations; performance yield; process variations; statistical design methodology; task scheduling; variation-aware task allocation; yield computation method; Costs; Design methodology; Embedded system; Hardware; Job shop scheduling; Multiprocessing systems; Performance analysis; Process design; Processor scheduling; Scheduling algorithm;
fLanguage
English
Publisher
ieee
Conference_Titel
Computer-Aided Design, 2007. ICCAD 2007. IEEE/ACM International Conference on
Conference_Location
San Jose, CA
ISSN
1092-3152
Print_ISBN
978-1-4244-1381-2
Electronic_ISBN
1092-3152
Type
conf
DOI
10.1109/ICCAD.2007.4397330
Filename
4397330
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