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A new approach for information retrieval in semantic web mining involving weighted relationship

机译:涉及加权关系的语义Web挖掘中信息检索的新方法

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摘要

To extract the relevant information from the web is the primary focus of semantic web mining. With the increasing volume of data in web the real challenge is to extract the required information. The basic input for semantic web mining is the user input but the accuracy of the data extraction is based on the domain classification. To achieve the same we have proposed a new approach where a “T” based Semantic structure is maintained for each training sentence where the relationship of each word in the training sentence is established in the form of cosine similarity weight and also link towards the possible terms of the same words are established with weights. Cosine similarity involved here not only calculates the similarity weight between the words of training sentence but also to establish the semantic relationship between sentences of the same group. This paper explains in detail regarding how the training sentences are grouped and the relationship are established between them using a new weight relationship algorithm.
机译:从Web提取相关信息是语义Web挖掘的主要重点。随着网络中数据量的增加,真正的挑战是提取所需的信息。语义Web挖掘的基本输入是用户输入,但数据提取的准确性基于域分类。为了达到相同的目的,我们提出了一种新的方法,其中为每个训练句子保留一个基于“ T”的语义结构,其中该训练句子中每个单词的关系以余弦相似度加权的形式建立并且还链接到可能的术语用权重确定相同的单词。这里所涉及的余弦相似度不仅可以计算出训练句子中各个词之间的相似度,而且可以建立同一组句子之间的语义关系。本文详细介绍了如何使用新的权重关系算法对训练句子进行分组以及如何在训练句子之间建立关系。

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