DocumentCode :
2000853
Title :
A Compression Framework for Multidimensional Scientific Datasets
Author :
Bicer, Tekin ; Agrawal, Gagan
fYear :
2013
fDate :
20-24 May 2013
Firstpage :
2250
Lastpage :
2253
Abstract :
Scientific simulations and instruments can generate tremendous amount of data in short time periods. Since the generated data is used for inferring new knowledge, it is important to efficiently store and provide it to the scientific endeavors. Although parallel and distributed systems can help to ease the management of such data, the transmission and storage are still challenging problems. Compression is a popular approach for reducing data transfer overheads and storage requirements. However, effectively supporting compression for scientific simulation data and integrating compression algorithms with simulation applications remain a challenge. In this work, we focus on management of multidimensional scientific datasets using domain specific compression algorithms. We propose a compression framework and methodology in order to maximize the bandwidth and storage utilization. We port our framework into PnetCDF and present our preliminary experimental results.
Keywords :
data compression; parallel processing; scientific information systems; storage management; PnetCDF; bandwidth utilization; data management; data storage requirements; data transfer overheads; data transmission; distributed systems; domain specific compression algorithms; multidimensional scientific dataset compression framework; parallel systems; scientific endeavors; scientific instruments; scientific simulation data compression algorithm; storage utilization; Compression algorithms; Data compression; Data models; Distributed databases; Meteorology; Optimization; Throughput; Compression; Data management; Distributed data processing; PNetCDF;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Parallel and Distributed Processing Symposium Workshops & PhD Forum (IPDPSW), 2013 IEEE 27th International
Conference_Location :
Cambridge, MA
Print_ISBN :
978-0-7695-4979-8
Type :
conf
DOI :
10.1109/IPDPSW.2013.186
Filename :
6651142
Link To Document :
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