DocumentCode :
1618824
Title :
Materialized view maintenance in columnar storage for massive data analysis
Author :
Xu, Chen ; Zhou, Minqi ; Qian, Weining
Author_Institution :
Inst. of Massive Comput., East China Normal Univ., Shanghai, China
fYear :
2010
Firstpage :
69
Lastpage :
76
Abstract :
Data-intensive computing becomes a buzz word nowadays, where constant data for current operational processing and historical data for massive analysis are often separated into two systems. How to keep the historical data for analysis (often in a materialized view manner) consistent with their data sources (often in the operational databases) is the main problem to be solved imperatively. In this paper, we proposed a novel method for data consistency maintenance between the data located in the two systems. Two basic operators (i.e., insertion and deletion) for consistency maintenance are provided as well as their implementations in the new environment of column-oriented storage on large-scale data analysis platform for efficient processing. Two data consistency models (i.e., eventual consistency model and timeline-based consistency model) are proposed to tradeoff data consistency for processing efficiency. Our extensive experimental evaluation also proves the efficiency and effectiveness of our proposed methods.
Keywords :
data analysis; database management systems; buzz word; column oriented storage; columnar storage; data consistency maintenance; data intensive computing; data sources; historical data; large-scale data analysis; massive data analysis; materialized view maintenance; materialized view manner; operational databases; operational processing; timeline based consistency model; Algorithm design and analysis; Data analysis; Data models; Data structures; Indexes; Maintenance engineering;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Universal Communication Symposium (IUCS), 2010 4th International
Conference_Location :
Beijing
Print_ISBN :
978-1-4244-7821-7
Type :
conf
DOI :
10.1109/IUCS.2010.5666768
Filename :
5666768
Link To Document :
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