Tuan-Anh Nguyen
2023
Towards Safer Operations: An Expert-involved Dataset of High-Pressure Gas Incidents for Preventing Future Failures
Shumpei Inoue
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Minh-Tien Nguyen
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Hiroki Mizokuchi
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Tuan-Anh Nguyen
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Huu-Hiep Nguyen
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Dung Le
Proceedings of the 2023 Conference on Empirical Methods in Natural Language Processing: Industry Track
This paper introduces a new IncidentAI dataset for safety prevention. Different from prior corpora that usually contain a single task, our dataset comprises three tasks: named entity recognition, cause-effect extraction, and information retrieval. The dataset is annotated by domain experts who have at least six years of practical experience as high-pressure gas conservation managers. We validate the contribution of the dataset in the scenario of safety prevention. Preliminary results on the three tasks show that NLP techniques are beneficial for analyzing incident reports to prevent future failures. The dataset facilitates future research in NLP and incident management communities. The access to the dataset is also provided (The IncidentAI dataset is available at: https://github.com/Cinnamon/incident-ai-dataset).
2017
NNVLP: A Neural Network-Based Vietnamese Language Processing Toolkit
Thai-Hoang Pham
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Xuan-Khoai Pham
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Tuan-Anh Nguyen
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Phuong Le-Hong
Proceedings of the IJCNLP 2017, System Demonstrations
This paper demonstrates neural network-based toolkit namely NNVLP for essential Vietnamese language processing tasks including part-of-speech (POS) tagging, chunking, Named Entity Recognition (NER). Our toolkit is a combination of bidirectional Long Short-Term Memory (Bi-LSTM), Convolutional Neural Network (CNN), Conditional Random Field (CRF), using pre-trained word embeddings as input, which outperforms previously published toolkits on these three tasks. We provide both of API and web demo for this toolkit.
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Co-authors
- Shumpei Inoue 1
- Minh-Tien Nguyen 1
- Hiroki Mizokuchi 1
- Huu-Hiep Nguyen 1
- Dung Le 1
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