发明名称 Methods for feature selection in a learning machine
摘要 In a pre-processing step prior to training a learning machine, pre-processing includes reducing the quantity of features to be processed using feature selection methods selected from the group consisting of recursive feature elimination (RFE), minimizing the number of non-zero parameters of the system (l0-norm minimization), evaluation of cost function to identify a subset of features that are compatible with constraints imposed by the learning set, unbalanced correlation score and transductive feature selection. The features remaining after feature selection are then used to train a learning machine for purposes of pattern classification, regression, clustering and/or novelty detection.
申请公布号 US7624074(B2) 申请公布日期 2009.11.24
申请号 US20070929213 申请日期 2007.10.30
申请人 HEALTH DISCOVERY CORPORATION 发明人 WESTON JASON AARON EDWARD;ELISSEEFF ANDRE';SCHOELKOPF BERNARD;PEREZ-CRUZ FERNANDO
分类号 G06F15/18 主分类号 G06F15/18
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