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Extracting Events from Industrial Incident Reports

2021-08-01 · ACL (CASE) 2021 8 · Nitin Ramrakhiyani, Swapnil Hingmire, Sangameshwar Patil, Alok Kumar, Girish Palshikar

Incidents in industries have huge social and political impact and minimizing the consequent damage has been a high priority. However, automated analysis of repositories of incident reports has remained a challenge. In this paper, we focus on automatically extracting events from incident reports. Due to absence of event annotated datasets for industrial incidents we employ a transfer learning based approach which is shown to outperform several baselines. We further provide detailed analysis regarding effect of increase in pre-training data and provide explainability of why pre-training improves the performance.

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Transfer Learning

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