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Evaluation of unsupervised semantic mapping of natural language with Leximancer concept mapping

机译:用Leximancer概念图评估自然语言的无监督语义图

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摘要

The Leximancer system is a relatively new method for transforming lexical co-occurrence information from natural language into semantic patterns in an unsupervised manner. It employs two stages of co-occurrence information extraction—semantic and relational—using a different algorithm for each stage. The algorithms used are statistical, but they employ nonlinear dynamics and machine learning. This article is an attempt to validate the output of Leximancer, using a set of evaluation criteria taken from content analysis that are appropriate for knowledge discovery tasks.
机译:Leximancer系统是一种相对较新的方法,用于以无监督的方式将词汇共现信息从自然语言转换为语义模式。它采用了共现信息提取的两个阶段(语义的和关系的),每个阶段使用不同的算法。使用的算法是统计算法,但它们采用非线性动力学和机器学习。本文试图通过使用一组适用于知识发现任务的,来自内容分析的评估标准来验证Leximancer的输出。

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