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A Solution of Data Inconsistencies in Data Integration——Designed for Pervasive Computing Environment 被引量:1

A Solution of Data Inconsistencies in Data Integration——Designed for Pervasive Computing Environment
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摘要 New challenges including how to share information on heterogeneous devices appear in data-intensive pervasive computing environments. Data integration is a practical approach to these applications. Dealing with inconsistencies is one of the important problems in data integration. In this paper we motivate the problem of data inconsistency solution for data integration in pervasive environments. We define data qualit~ criteria and expense quality criteria for data sources to solve data inconsistency. In our solution, firstly, data sources needing high expense to obtain data from them are discarded by using expense quality criteria and utility function. Since it is difficult to obtain the actual quality of data sources in pervasive computing environment, we introduce fuzzy multi-attribute group decision making approach to selecting the appropriate data sources. The experimental results show that our solution has ideal effectiveness. New challenges including how to share information on heterogeneous devices appear in data-intensive pervasive computing environments. Data integration is a practical approach to these applications. Dealing with inconsistencies is one of the important problems in data integration. In this paper we motivate the problem of data inconsistency solution for data integration in pervasive environments. We define data qualit~ criteria and expense quality criteria for data sources to solve data inconsistency. In our solution, firstly, data sources needing high expense to obtain data from them are discarded by using expense quality criteria and utility function. Since it is difficult to obtain the actual quality of data sources in pervasive computing environment, we introduce fuzzy multi-attribute group decision making approach to selecting the appropriate data sources. The experimental results show that our solution has ideal effectiveness.
出处 《Journal of Computer Science & Technology》 SCIE EI CSCD 2010年第3期499-508,共10页 计算机科学技术学报(英文版)
基金 supported by the National Natural Science Foundation of China under Grant No. 60970010 the National Basic Research 973 Program of China under Grant No. 2009CB320705 the Specialized Research Fund for the Doctoral Program of Higher Education of China under Grant No. 20090073110026
关键词 pervasive computing data integration data inconsistency group decision making history credibility pervasive computing, data integration, data inconsistency, group decision making, history credibility
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