DocumentCode :
1925313
Title :
Hierarchical Clustering Strategies for Fault Tolerance in Large Scale HPC Systems
Author :
Bautista-Gomez, Leonardo ; Ropars, Thomas ; Maruyama, Naoya ; Cappello, Franck ; Matsuoka, Satoshi
Author_Institution :
Tokyo Inst. of Technol., Tokyo, Japan
fYear :
2012
fDate :
24-28 Sept. 2012
Firstpage :
355
Lastpage :
363
Abstract :
Future high performance computing systems will need to use novel techniques to allow scientific applications to progress despite frequent failures. Checkpoint-Restart is currently the most popular way to mitigate the impact of failures during long-running executions. Different techniques try to reduce the cost of Checkpoint-Restart, some of them such as local check pointing and erasure codes aim to reduce the time to checkpoint while others such as uncoordinated checkpoint and message-logging aim to decrease the cost of recovery. In this paper, we study how to combine all these techniques together in order to optimize both: check pointing and recovery. We present several clustering and topology challenges that lead us to an optimization problem in a four-dimensional space: reliability level, recovery cost, encoding time and message logging overhead. We propose a novel clustering method inspired from brain topology studies in neuroscience and evaluate it with a Tsunami simulation application in TSUBAME2. Our evaluation with 1024 processes shows that our novel clustering method can guarantee good performance for all of the four mentioned dimensions of our optimization problem.
Keywords :
checkpointing; digital simulation; fault tolerant computing; natural sciences computing; optimisation; software reliability; TSUBAME2; brain topology studies; checkpoint-restart; clustering challenges; encoding time; erasure codes; fault tolerance; future high performance computing systems; hierarchical clustering strategies; large scale HPC systems; local checkpointing; long-running executions; message logging overhead; message-logging; neuroscience; optimization problem; recovery cost; reliability level; scientific applications; topology challenges; tsunami simulation application; uncoordinated checkpoint; Checkpointing; Encoding; Fault tolerance; Fault tolerant systems; Optimization; Protocols;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Cluster Computing (CLUSTER), 2012 IEEE International Conference on
Conference_Location :
Beijing
Print_ISBN :
978-1-4673-2422-9
Type :
conf
DOI :
10.1109/CLUSTER.2012.71
Filename :
6337798
Link To Document :
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