Text Classification for English News Articles
编号:32 访问权限:仅限参会人 更新:2024-08-05 14:47:34 浏览:326次 拓展类型1

报告开始:暂无开始时间(Asia/Bangkok)

报告时间:暂无持续时间

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摘要
In today's world Natural Language Processing (NLP) has become a productive method which is highly used in the artificial intelligence and machine learning sector. A chatbot like chatGPT to Blockchain, every method of taking the advantages of NLP. Text classification is an important process of Natural Language processing (NLP) which includes categorizing or labeling text data according to predefined categories. However, there is a lot of text information available about text classification that is becoming a tool for a lot of applications, including sentiment analysis, recommendation systems, and information retrieval. In our research, we aim on text classification for English news articles using NLP. To reach the objective of our research which is to use variations of feature extraction and machine learning (ML) algorithms to enhance the correction rate as well as the effectiveness of text classification for English news articles. We have analyzed the results we get from the algorithm and tried to find the best performance as we compared the results we get from  ML such as the Term Frequency-Inverse Document Frequency (TF-IDF) and the Vectorize method. We used different algorithms such as Random Forest (RF), Logistic Regression (LE), and Naive Bayes (NB) algorithms. For the research, we used the dataset from BBC News containing different data and articles. We worked on that dataset which contains news of various genres and as a result, we could judge the efficiency. Text data are pre-processed, features are extracted using various methods and classification models are trained using different ML algorithms. After attaining the result and accuracy, we have analyzed the results of the models. The results of this study will be applied to enhance the accuracy of the word categorization for news articles in other text-based applications. The results can be applied to develop reliable text classification algorithms that will improve data efficiency and accuracy.
关键词
NLP,Text classification,Machine learning model
报告人
Jobeda Khanam Ria
STUDENT BRAC University

稿件作者
Jobeda Khanam Ria BRAC University
MD. Reaz Uddin BRAC University
Sadman Majumder BRAC University
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重要日期
  • 会议日期

    10月24日

    2024

    10月27日

    2024

  • 10月14日 2024

    初稿截稿日期

  • 10月29日 2024

    注册截止日期

  • 10月31日 2024

    报告提交截止日期

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国际科学联合会
IEEE泰国分会
IEEE计算机学会泰国分会
历届会议
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