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Identifying Composite Crosscutting Concerns with Scatter-Based Graph Clustering
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作者 HUANG Jin BETEV Latchezar +2 位作者 CARMINATI Federico ZHU Jianlin LU Yansheng 《Wuhan University Journal of Natural Sciences》 CAS 2012年第2期114-120,共7页
Identifying composite crosscutting concerns(CCs) is a research task and challenge of aspect mining.In this paper,we propose a scatter-based graph clustering approach to identify composite CCs.Inspired by the state-o... Identifying composite crosscutting concerns(CCs) is a research task and challenge of aspect mining.In this paper,we propose a scatter-based graph clustering approach to identify composite CCs.Inspired by the state-of-the-art link analysis tech-niques,we propose a two-state model to approximate how CCs tangle with core modules.According to this model,we obtain scatter and centralization scores for each program element.Espe-cially,the scatter scores are adopted to select CC seeds.Further-more,to identify composite CCs,we adopt a novel similarity measurement and develop an undirected graph clustering to group these seeds.Finally,we compare it with the previous work and illustrate its effectiveness in identifying composite CCs. 展开更多
关键词 software engineering aspect mining link analysis undirected graph clustering
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