发明名称 Supervision based grouping of patterns in hierarchical temporal memory (HTM)
摘要 A HTM network that uses supervision signals such as indexes for correct categories of the input patterns to group the co-occurrences detected in the node. In the training mode, the supervised learning node receives the supervision signals in addition to the indexes or distributions from children nodes. The supervision signal is then used to assign the co-occurrences into groups. The groups include unique groups and nonunique groups. The co-occurrences in the unique group appear only when the input data represent certain category but not others. The nonunique groups include patterns that are shared by one or more categories. In an inference mode, the supervised learning node generates distributions over the groups created in the training mode. A top node of the HTM network generates an output based on the distributions generated by the supervised learning node.
申请公布号 US8195582(B2) 申请公布日期 2012.06.05
申请号 US20090355679 申请日期 2009.01.16
申请人 NIEMASIK JAMES;GEORGE DILEEP;NUMENTA, INC. 发明人 NIEMASIK JAMES;GEORGE DILEEP
分类号 G06F15/18 主分类号 G06F15/18
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