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Knowledge Based Document Management System for Free-Text Documents Discovery

机译:基于知识的文档管理系统,用于发现自由文本文档

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A Knowledge Based Document Management System (KBDMS) is proposed in this paper to organize, cluster, classify and discover free-text documents. Context sensitive information is discovered by means of word map, sentence map and paragraph map in an intelligent manner in this proposed system. A text learning procedure for the semantic retrieval of text documents is implemented using hierarchy of self-organizing maps (SOM) and support vector machines (SVM). The hierarchical SOM generates histograms of paragraph maps based on the semantic similarity and these paragraph maps are trained using SVM for classification. The SVM also generates index for each document given to it. The proposed system is scalable and capable of discovery of documents from a huge amount of free-text documents. It is tested over a maximum of 100000 text documents with 75 - 80% accuracy in the context-sensitive discovery of free-text documents.
机译:本文提出了一种基于知识的文档管理系统(KBDMS),用于组织,聚类,分类和发现自由文本文档。在该系统中,通过词图,句子图和段落图以智能的方式发现上下文相关信息。使用自组织映射(SOM)和支持向量机(SVM)的层次结构实现了用于文本文档语义检索的文本学习过程。分层SOM基于语义相似性生成段落图的直方图,并使用SVM对这些段落图进行训练以进行分类。 SVM还为提供给它的每个文档生成索引。所提出的系统是可扩展的,并且能够从大量的自由文本文档中发现文档。在上下文相关的自由文本文档发现中,最多对100000个文本文档进行了测试,准确性达到75-80%。

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