So'z ma'nosini aniqlashda naive bayes algoritmidan foydalanish

B. B. Elov, H. I. Akhmedova
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引用次数: 0

摘要

词义消歧是自然语言处理的一个相关问题。同音异义词被认为是决定一个词的意义的一个重要因素。基于机器学习的方法在解决这一问题上发挥了特殊的作用。朴素贝叶斯分类器是重要的机器学习方法之一。在消除乌兹别克语中不同和语法相似的词组之间的同音时,朴素贝叶斯分类器的简单性和速度与其他方法不同。该分类器是最流行的多类分类算法之一,根据所讨论的数据,可以使用三种朴素贝叶斯算法(高斯,多项式,伯努利)中的任何一种。本文详细介绍了使用分类器来识别乌兹别克语中语法相似的词组之间的同音现象的过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
SO‘Z MA’NOSINI ANIQLASHDA NAIVE BAYES ALGORITMIDAN FOYDALANISH
One of the relevant issues of a natural language processing is word sense disambiguation. Homonyms are considered as an important element of determining the meaning of a word. Methods based on machine learning play a special role in solving this problem. Naive Bayes classifier is one of the important machine learning methods. When eliminating homonymy between different and grammatically similar groups of words in the Uzbek language, the Naive Bayes classifier differs from other methods in its simplicity and speed. This classifier is one of the most popular multi-class classification algorithms, and depending on the data in question, any of the 3 types of Naive Bayes algorithms (Gaussian, Polynomial, Bernoulli) can be used. This article scrutinizes the processes of using the classifier to identify homonymy between grammatically similar groups of words in the Uzbek language.
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