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A genetic algorithm based entity resolution approach with active learning 被引量:1
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作者 Chenchen SUN Derong SHEN +2 位作者 Yue KOU Tiezheng NIE Ge YU 《Frontiers of Computer Science》 SCIE EI CSCD 2017年第1期147-159,共13页
Entity resolution is a key aspect in data quality and data integration, identifying which records correspond to the same real world entity in data sources. Many existing ap- proaches require manually designed match ru... Entity resolution is a key aspect in data quality and data integration, identifying which records correspond to the same real world entity in data sources. Many existing ap- proaches require manually designed match rules to solve the problem, which always needs domain knowledge and is time consuming. We propose a novel genetic algorithm based en- tity resolution approach via active learning. It is able to learn effective match rules by logically combining several different attributes' comparisons with proper thresholds. We use ac- tive learning to reduce manually labeled data and speed up the learning process. The extensive evaluation shows that the proposed approach outperforms the sate-of-the-art entity res- olution approaches in accuracy. 展开更多
关键词 entity resolution genetic algorithm active learning data quality data integration
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