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What is Stop Words

Natural Language Processing for Global and Local Business
Stop words do not contribute to understanding because they are used very often.
Published in Chapter:
An Extensive Text Mining Study for the Turkish Language: Author Recognition, Sentiment Analysis, and Text Classification
Durmuş Özkan Şahin (Ondokuz Mayıs University, Turkey) and Erdal Kılıç (Ondokuz Mayıs University, Turkey)
Copyright: © 2021 |Pages: 35
DOI: 10.4018/978-1-7998-4240-8.ch012
Abstract
In this study, the authors give both theoretical and experimental information about text mining, which is one of the natural language processing topics. Three different text mining problems such as news classification, sentiment analysis, and author recognition are discussed for Turkish. They aim to reduce the running time and increase the performance of machine learning algorithms. Four different machine learning algorithms and two different feature selection metrics are used to solve these text classification problems. Classification algorithms are random forest (RF), logistic regression (LR), naive bayes (NB), and sequential minimal optimization (SMO). Chi-square and information gain metrics are used as the feature selection method. The highest classification performance achieved in this study is 0.895 according to the F-measure metric. This result is obtained by using the SMO classifier and information gain metric for news classification. This study is important in terms of comparing the performances of classification algorithms and feature selection methods.
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More Results
Review of the Studies Related to COVID-19 and Tourism Using Text Mining Techniques
It is the name given to the list of words that differ according to the written language and do not contribute to the meaning of the words in the text.
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Weibo Analysis on Chinese Cultural Knowledge for Gaming
Are those filtered out before or after processing of natural language data or text as they are not carrying significant meaning, usually customized for different applications.
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Deriving Business Value From Online Data Sources Using Natural Language Processing Techniques
Common words found in a particular language and these are removed to avoid processing data unnecessarily.
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