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Answer Clustering and Fusion in a User-Interactive QA System
Guilin, Guangxi, China November 01-November 03
DOI Bookmark: http://doi.ieeecomputersociety.org/10.1109/SKG.2006.28Second International Conference on Se ...
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Feng Min, City University of Hong Kong, Hong Kong
Liu Wenyin, City University of Hong Kong, Hong Kong
Wei Chen, City University of Hong Kong, Hong Kong
The need of answer clustering and fusion in a userinteractive question answering (QA) system is identified and its user interface and enabling technology are presented in this paper. This function aims to help a user to efficiently browse all the answers and find the correct answer to a specific question by clustering answers into groups and providing a representative (fused) answer for each group. The clustering approach proposed in this paper includes a measurement of semantic similarity between answers and an incremental soft-moVMF algorithm. An answer fusion method is proposed, which uses concept vector and authority of data sources to extract the summary for the answers in each cluster. Experiments and user studies show that the UI and the methods are effective.
Citation:
Feng Min, Liu Wenyin, Wei Chen, "Answer Clustering and Fusion in a User-Interactive QA System," skg, pp.41, Second International Conference on Semantics, Knowledge, and Grid (SKG'06), 2006
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