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This study enhances Aspect-Based Sentiment Analysis for Bengali using advanced models like tRF-BERT. Our novel approach significantly improves accuracy and F1 scores on benchmark datasets.

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Area of Science:

  • Natural Language Processing
  • Computational Linguistics

Background:

  • Sentiment analysis is increasingly important, especially for Bengali text.
  • Aspect-Based Sentiment Analysis (ABSA) in Bengali is challenging due to data scarcity and linguistic complexity.

Purpose of the Study:

  • To improve Aspect-Based Sentiment Analysis (ABSA) performance for the Bengali language.
  • To evaluate the effectiveness of transformer-based models and a novel hybrid model for Bengali ABSA.

Main Methods:

  • Utilized two Bengali benchmark datasets: Cricket and Restaurant.
  • Implemented and compared Bidirectional Encoder Representations from Transformers (BERT), Robustly Optimized BERT Approach (RoBERTa), and a proposed transformative Random Forest and BERT (tRF-BERT) hybrid model.
  • Benchmarked against existing Random Forest, Support Vector Machine, K-Nearest Neighbors, and Convolutional Neural Network models.

Main Results:

  • All implemented models outperformed previous works on the benchmark datasets.
  • The proposed tRF-BERT model achieved the highest accuracy and F1 scores.
  • Achieved 0.89 accuracy and 0.85 F1 score for aspect detection on the Cricket dataset.
  • Achieved 0.92 accuracy and 0.89 F1 score for aspect detection on the Restaurant dataset.

Conclusions:

  • The tRF-BERT hybrid model offers a superior approach for Bengali Aspect-Based Sentiment Analysis.
  • Transformer-based models, particularly the proposed hybrid, demonstrate significant advancements in handling Bengali NLP tasks.