发明名称 Neutral network apparatus and method for pattern recognition.
摘要 <p>A self-organizing neural network having input and output neurons mutually coupled via bottom-up and top-down adaptive weight matrices performs pattern recognition while using substantially fewer neurons and being substantially immune from pattern distortion or rotation. The network is first trained in accordance with the adaptive resonance theory by inputting reference pattern data into the input neurons for clustering within the output neurons. The input neurons then receive subject pattern data which are transferred via a bottom-up adaptive weight matrix to a set of output neurons. Vigilance testing is performed and multiple computed vigilance parameters are generated. A predetermined, but selectively variable, reference vigilance parameter is compared individually against each computed vigilance parameter and adjusted with each comparison until each computed vigilance parameter equals or exceeds the adjusted reference vigilance parameter, thereby producing an adjusted reference vigilance parameter for each output neuron. The input pattern is classified according to the output neuron corresponding to the maximum adjusted reference vigilance parameter. Alternatively, the original computed vigilance parameters can be used by classifying the input pattern according to the output neuron corresponding to the maximum computed vigilance parameter. &lt;IMAGE&gt;</p>
申请公布号 EP0464327(A2) 申请公布日期 1992.01.08
申请号 EP19910106018 申请日期 1991.04.16
申请人 NATIONAL SEMICONDUCTOR CORPORATION 发明人 KHAN, EMDADUR RAHMAN
分类号 G06F15/18;G06K9/62;G06K9/66;G06N3/00;G06N3/04;G06N99/00;G06T7/00 主分类号 G06F15/18
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