基于新闻标题的孟加拉语犯罪新闻分类

N. Khan, Md Shamiul Islam, Fuad Chowdhury, Abdur Samad Siham, Nazmus Sakib
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引用次数: 0

摘要

在我们的日常生活中,报纸和在线新闻门户已经无处不在。这些为我们提供了有关全球事件的信息。在报纸上的所有新闻中,犯罪新闻是最重要的。人们怀着真诚和极大的好奇心读到这类新闻。我们阅读了很多孟加拉报纸和新闻来源,但我们没有发现任何关于犯罪的新闻被分类。或许将孟加拉的犯罪新闻分类会对读者有所帮助。因此,我们决定致力于孟加拉犯罪新闻分类,这将在孟加拉社区产生很大的影响。然而,对人类来说,从每日报纸标题中对犯罪新闻进行分类并不是一件容易的事。在本文中,我们介绍了一个实用的模型来自动标注6个预定犯罪的孟加拉语报纸头条新闻。为了实现这一目标,我们使用TF-IDF使用8种不同的机器学习和语言分类器模型(SVM, Decision Tree,Random Forest, LSTM, Bi-LSTM, BERT等)提取特征,并通过Sagor Sarkar的banga - BERT - base获得了最好的结果。6293个训练样本和1574个测试样本的实验结果表明,准确率为90.15%。这个研究成果和数据集可以被爱好者用于进一步的研究目的,如细分犯罪、犯罪状态或判断分析等。我们的数据集将在请求@https://tinyurl.com/5n7wwaek时提供。
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Bengali Crime News Classification Based on Newspaper Headlines using NLP
In our daily lives, newspapers and online news portals have become ubiquitous. These provide us with information on global events. Of all the news available in newspapers, crime news is the most significant. People read this kind of news with sincerity and considerable curiosity. We read a lot of Bangla newspapers and news sources, but we didn’t find any news on crime that was categorized. Perhaps categorizing the Bangla crime news would be helpful for the readers. Therefore, we decided to work on Bengali crime news classification, which will have a big influence in the Bengali community. However, categorizing crime news from daily newspaper headlines is not an easy task for a human. In this paper, we introduced a practical model to automatically annotate crime news from Bengali newspaper headlines in 6 predetermined crimes. In order to accomplish this goal, we have used TF-IDF for extracting features with 8 different machine learning and language classifier models (SVM, Decision Tree,Random Forest, LSTM, Bi-LSTM, BERT etc) and got best result by Sagor Sarkar’s Bangla-Bert-Base. The experimental result with 6293 training and 1574 testing samples shows 90.15% accuracy. This research output and dataset can be utilized by enthusiasts for further research purposes like subsetting crimes, crime status or judgment analysis etc. Our dataset will be available upon request @https://tinyurl.com/5n7wwaek.
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