发明名称 TAXONOMY-DRIVEN LUMPING FOR SEQUENCE MINING
摘要 Methods and apparatus are described for modeling sequences of events with Markov models whose states correspond to nodes in a provided taxonomy. Each state represents the events in the subtree under the corresponding node. By lumping observed events into states that correspond to internal nodes in the taxonomy, more compact models are achieved that are easier to understand and visualize, at the expense of a decrease in the data likelihood. The decision for selecting the best model is taken on the basis of two competing goals: maximizing the data likelihood, while minimizing the model complexity (i.e., the number of states).
申请公布号 US2011029475(A1) 申请公布日期 2011.02.03
申请号 US20090534706 申请日期 2009.08.03
申请人 YAHOO! INC. 发明人 GIONIS ARISTIDES;BONCHI FRANCESCO;DONATO DEBORA
分类号 G06N7/02 主分类号 G06N7/02
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