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A Fuzzy Logic Based Synonym Resolution Approach for Automated Information Retrieval

机译:基于模糊逻辑的自动信息检索的同义词解析方法

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摘要

Precise semantic similarity measurement between words is vital from the viewpoint of many automated applications in the areas of word sense disambiguation, machine translation, information retrieval and data clustering, etc. Rapid growth of the automated resources and their diversified novel applications has further reinforced this requirement. However, accurate measurement of semantic similarity is a daunting task due to inherent ambiguities of the natural language, spread of web documents across various domains, localities and dialects. All these issues render to the inadequacy of the manually maintained semantic similarity resources (i.e. dictionaries). This article uses context sets of the words under consideration in multiple corpora to compute semantic similarity and provides credible and verifiable semantic similarity results directly usable for automated applications in the intelligent manner using fuzzy inference mechanism. It can also be used to strengthen the existing lexical resources by augmenting the context set and properly defined extent of semantic similarity.
机译:从单词感测消歧,机器翻译,信息检索和数据聚类的许多自动应用程序中,单词之间的精确语义相似性测量是至关重要的。自动化资源的快速增长以及其多元化的新应用进一步加强了这一要求。然而,由于自然语言的固有含量,在各个领域,地方和方言中的网络文档传播,准确测量语义相似性是一种艰巨的任务。所有这些问题都呈现给手动维护语义相似度资源的不足(即词典)。本文使用多个语料库中考虑的文字的上下文集来计算语义相似性,并提供可信和可验证的语义相似性,并使用模糊推断机制直接可用于以智能方式可用的自动应用程序。它也可用于通过增强上下文集和正确定义的语义相似度来加强现有词汇资源。

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