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A general decision layer text classification fusion model

机译:通用决策层文本分类融合模型

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An general decision layer text classification fusion model for higher precision, is proposed, which based on model theory of information fusion, and different classification algorithm of the feature layer fusion centre having different pre-processing, their classification results input into the decision layer fusion centre separately. And the final classification result output from decision layer fusion centre. KNN, SVM and BP Net are used in feature layer, and D-S Theory is used in decision layer. The model is realized in the experiment. From the experiment and contrast, the text classification fusion model can improve the classification precision effectively.
机译:提出了一种基于信息融合模型理论的通用决策层文本分类融合模型,该模型基于高精度的决策层文本分类融合模型,对特征层融合中心进行了不同的预处理,对分类算法进行了分类,将分类结果输入决策层融合中心分别地。最终分类结果从决策层融合中心输出。在特征层中使用KNN,SVM和BP Net,在决策层中使用D-S理论。该模型是在实验中实现的。从实验和对比来看,文本分类融合模型可以有效提高分类精度。

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