Bengali Fake Reviews: A Benchmark Dataset and Detection System
G. M. Shahariar, Md. Tanvir Rouf Shawon, Faisal Muhammad Shah,, Mohammad Shafiul Alam, Md. Shahriar Mahbub

TL;DR
This paper introduces the first Bengali fake review dataset and develops a high-accuracy detection system using an ensemble of transformer models, addressing the underexplored area of fake review detection in Bengali.
Contribution
The creation of the Bengali Fake Review Detection (BFRD) dataset and the development of a novel ensemble detection system using multiple pre-trained transformers.
Findings
Weighted F1-score of 0.9843 on test data.
Ensemble model outperforms individual transformers.
Effective handling of non-Bengali words via translation pipeline.
Abstract
The proliferation of fake reviews on various online platforms has created a major concern for both consumers and businesses. Such reviews can deceive customers and cause damage to the reputation of products or services, making it crucial to identify them. Although the detection of fake reviews has been extensively studied in English language, detecting fake reviews in non-English languages such as Bengali is still a relatively unexplored research area. This paper introduces the Bengali Fake Review Detection (BFRD) dataset, the first publicly available dataset for identifying fake reviews in Bengali. The dataset consists of 7710 non-fake and 1339 fake food-related reviews collected from social media posts. To convert non-Bengali words in a review, a unique pipeline has been proposed that translates English words to their corresponding Bengali meaning and also back transliterates…
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Taxonomy
TopicsSpam and Phishing Detection · Advanced Malware Detection Techniques · Misinformation and Its Impacts
