DocumentCode :
2960917
Title :
Predicting parallel applications performance using signatures: The workload effect
Author :
Canillas, J. Martinez ; Wong, A. ; Rexachs, D. ; Luque, E.
Author_Institution :
Dept. of Comput. Archit. & Oper. Syst., Univ. Autonoma de Barcelona, Barcelona, Spain
fYear :
2011
fDate :
27-30 Dec. 2011
Firstpage :
299
Lastpage :
300
Abstract :
Being able to accurately estimate how an application will perform in a specific computational system provides many useful benefits and can result in smarter decisions. In this work we present a novel approach to model the behavior of message passing parallel applications. Based in the concept of signatures, which are the most relevant parts of an application (phases), we are able to build a model that allows us to predict the application execution time in different systems with variable input data size. Executing these signatures with different input data sizes defines a program´s behavior partial function. Using regression we can generalize this behavior function to predict an application performance in a target system with other input data size within a predefined range. We explain our methodology and in order to validate the proposal present results using a synthetic program and well known applications.
Keywords :
message passing; parallel processing; regression analysis; computational system; message passing parallel application; parallel application performance prediction; program behavior partial function; synthetic program; workload effect; Analytical models; Computational modeling; Data models; Predictive models; Proposals; Size measurement; Time measurement; Parallel application behavior; Performance prediction;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Computer Systems and Applications (AICCSA), 2011 9th IEEE/ACS International Conference on
Conference_Location :
Sharm El-Sheikh
ISSN :
2161-5322
Print_ISBN :
978-1-4577-0475-8
Electronic_ISBN :
2161-5322
Type :
conf
DOI :
10.1109/AICCSA.2011.6126624
Filename :
6126624
Link To Document :
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