search on Association Rule Refinement for Affective Design
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Abstract
It is necessary to solve the two problems before applying association rule mining to affective design: firstly, how to identify proper parameters (the support and confidence thresholds) for association rule mining; secondly, how to find out useful information from a mass of association rules generated by association rule mining. In order to solve the two problems described above, a method which could refine association rules effectively is presented: at first, a set of raw rules are generated by specif ying low values for the support and confidence thresholds; then, these raw rules are evaluated to refine the most meaningful rules, in this step, a series of concrete sub-steps is presented. A case study was conducted to illustrate the proposed method.
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