Kazi Sajeed Mehrab
2024
M3D: MultiModal MultiDocument Fine-Grained Inconsistency Detection
Chia-Wei Tang
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Ting-Chih Chen
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Kiet A. Nguyen
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Kazi Sajeed Mehrab
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Alvi Md Ishmam
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Chris Thomas
Proceedings of the 2024 Conference on Empirical Methods in Natural Language Processing
Fact-checking claims is a highly laborious task that involves understanding how each factual assertion within the claim relates to a set of trusted source materials. Existing approaches make sample-level predictions but fail to identify the specific aspects of the claim that are troublesome and the specific evidence relied upon. In this paper, we introduce a method and new benchmark for this challenging task. Our method predicts the fine-grained logical relationship of each aspect of the claim from a set of multimodal documents, which include text, image(s), video(s), and audio(s). We also introduce a new benchmark (M3DC) of claims requiring multimodal multidocument reasoning, which we construct using a novel claim synthesis technique. Experiments show that our approach outperforms other models on this challenging task on two benchmarks while providing finer-grained predictions, explanations, and evidence.
2021
CoDesc: A Large Code–Description Parallel Dataset
Masum Hasan
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Tanveer Muttaqueen
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Abdullah Al Ishtiaq
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Kazi Sajeed Mehrab
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Md. Mahim Anjum Haque
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Tahmid Hasan
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Wasi Ahmad
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Anindya Iqbal
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Rifat Shahriyar
Findings of the Association for Computational Linguistics: ACL-IJCNLP 2021
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Co-authors
- Chia-Wei Tang 1
- Ting-Chih Chen 1
- Kiet A. Nguyen 1
- Alvi Md Ishmam 1
- Chris Thomas 1
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