DocumentCode :
1783232
Title :
Parallel Mutual Information Based Construction of Whole-Genome Networks on the Intel (R) Xeon Phi (TM) Coprocessor
Author :
Misra, Sudip ; Pamnany, Kiran ; Aluru, Srinivas
Author_Institution :
Parallel Comput. Lab., Intel Corp., Bangalore, India
fYear :
2014
fDate :
19-23 May 2014
Firstpage :
241
Lastpage :
250
Abstract :
Construction of whole-genome networks from large-scale gene expression data is an important problem in systems biology. While several techniques have been developed, most cannot handle network reconstruction at the whole-genome scale, and the few that can, require large clusters. In this paper, we present a solution on the Intel (R) Xeon Phi (TM) coprocessor, taking advantage of its multi-level parallelism including many x86-based cores, multiple threads per core, and vector processing units. We also present a solution on the Intel (R) Xeon (R) processor. Our solution is based on TINGe, a fast parallel network reconstruction technique that uses mutual information and permutation testing for assessing statistical significance. We demonstrate the first ever inference of a plant whole genome regulatory network on a single chip by constructing a 15,575 gene network of the plant Arabidopsis thaliana from 3,137 microarray experiments in only 22 minutes. In addition, our optimization for parallelizing mutual information computation on the Intel Xeon Phi coprocessor holds out lessons that are applicable to other domains.
Keywords :
biocomputing; botany; coprocessors; genomics; multiprocessing systems; parallel processing; statistical analysis; Arabidopsis thaliana plant; Intel Xeon Phi coprocessor; TINGe; fast parallel network reconstruction technique; gene network; large-scale gene expression data; many x86-based cores; multilevel parallelism; multiple threads per core; parallel mutual information based construction; permutation testing; plant whole genome regulatory network; statistical significance assessment; systems biology; vector processing units; Arrays; Coprocessors; Joints; Mutual information; Optimization; Splines (mathematics); Vectors; Intel Xeon Phi; gene networks; mutual information; systems biology;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel and Distributed Processing Symposium, 2014 IEEE 28th International
Conference_Location :
Phoenix, AZ
ISSN :
1530-2075
Print_ISBN :
978-1-4799-3799-8
Type :
conf
DOI :
10.1109/IPDPS.2014.35
Filename :
6877259
Link To Document :
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