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Negative Information Filtering Algorithm based on Text Content in Multimedia Networks

机译:基于多媒体网络中文本内容的否定信息过滤算法

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摘要

In the multimedia network environment, it is necessary to effectively filter negative information in the multimedia network and enhance the ability to mine and identify valid data. This paper presents a new algorithm of negative information filtering based on text content in multimedia networks. The principal component features of negative information in multimedia networks are extracted, and matched filters are designed to filter the negative information reasonably. All text contents and negative information are normalized and sorted. They are transformed into the same text format for classification and processing, and the filtering and detection of negative information are realized. Finally, based on the semantic features of text content, the support vector machine algorithm is used to extract negative information features from data. Experimental results show that the algorithm improves the filtering accuracy and performance for negative information in multimedia networks, and it has good application value.
机译:在多媒体网络环境中,有必要有效地过滤多媒体网络中的负信息,并增强挖掘和识别有效数据的能力。本文介绍了一种基于多媒体网络中的文本内容的否定信息过滤算法。提取多媒体网络中负数信息的主要组件特征,匹配的滤波器旨在合理地过滤负极信息。所有文本内容和否定信息都是归一化和排序的。它们以相同的文本格式转换为分类和处理,并且实现了否定信息的过滤和检测。最后,基于文本内容的语义特征,支持向量机算法用于从数据中提取负面信息特征。实验结果表明,该算法提高了多媒体网络中的否定信息的滤波精度和性能,具有良好的应用价值。

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