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SOM of Syntactic and semantic features based on Chinese sentences with multi-category words

机译:基于汉语句子的句法和语义特征的SOM

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In this paper, SOM (self-organizing map) neural networks is introduced to Chinese multi-category words. Chinese multi-category words are those words which are of the same Chinese characters and different syntactic functions and meanings. If we only select characters of target sentences as the features of SOM, these multi-category words with the same characters will be mapped in same output nodes, however, brains neuroimaging of multi-category words with same characters and different functions will be mapped in different cortex area. Here we are used of the syntactic and semantic features to describe word sense of Chinese multi-category words. According to our experimental results, the syntactic and semantic features can distinguish effectively these multi-category words with same characters and different functions, and clustering result of SOM is distributed in different output nodes. It is coincident with human brains neuroimaging.
机译:本文介绍了SOM(自组织地图)神经网络被引入中国多种类别。中国多类别单词是那些具有相同汉字和不同句法功能和含义的词。如果我们只选择目标句子的字符作为SOM的特征,那些具有相同字符的这些多种类别单词将在相同的输出节点中映射,但是,具有相同字符和不同功能的多种类别单词的大脑将被映射不同的皮质区域。在这里,我们使用的句法和语义特征来描述中国多类别词的词语。根据我们的实验结果,句法和语义特征可以有效地区分这些多种类别与相同的字符和不同的功能,以及SOM的聚类结果分布在不同的输出节点中。它与人体脑子致染色。

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