Optimized deployment and scalability of emerging industrial IoT technologies: A case study approach using AWS IoT core integration

Md Naseera, Chada Shreya, Dobbala Tejaswini, Arupula Vaishnavi · International Journal of Circuit Computing and Networking · 2024

Digital judicial judgement papers allow for data extraction and application. Due to their peculiar structure and complexity, automatic summarizing of these legal writings is vital and difficult. Previous techniques have used large labeled datasets, hand-engineered features, domain expertise, and a small sub-domain for greater efficacy. We offer simple generalized neural network summarizing methods for Indian court judgment papers in this study. Two neural network designs using sentence and word embeddings for semantics are examined. The suggested methodologies may be used to different domains since they do not need hand-crafted features or domain-specific expertise. We award classes/scores to phrases in the training set based on their match with human-produced reference summaries to address the lack of labeled data. Our suggested methods outperform other baselines in experimental assessments.

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