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ISSN Approved Journal || eISSN: 2582-8185 || CODEN: IJSRO2 || Impact Factor 8.2 || Google Scholar and CrossRef Indexed

Peer Reviewed and Referred Journal || Free Certificate of Publication

Research and review articles are invited for publication in March 2026 (Volume 18, Issue 3) Submit manuscript

Real-time NLP warning system for monitoring patient frustration and admission delays

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  • Real-time NLP warning system for monitoring patient frustration and admission delays

Fnu Mohammed Sirajuddin *

University of New Haven, Connecticut.

Review Article

International Journal of Science and Research Archive, 2026, 18(03), 1087-1099

Article DOI: 10.30574/ijsra.2026.18.3.0486

DOI url: https://doi.org/10.30574/ijsra.2026.18.3.0486

Received on 03 February 2026; revised on 18 March 2026; accepted on 20 March 2026

Early detection of patient frustration and delays in admission is imperative for maintaining quality of care, operational efficiency, and patient safety in high-throughput hospital settings. This paper presents the design, implementation, and validation of a real-time natural language processing (NLP)-based warning system that continuously monitors unstructured textual signals and operational admission events. The system ingests live triage notes, patient communications, and admission workflow logs, and performs low-latency inference using a fine-tuned transformer-based clinical language model to identify frustration sentiment, complaint intent, urgency, and delay-related language. Linguistic indicators are fused with real-time operational metrics to generate dynamic risk scores and role-routed actionable alerts for clinical and administrative staff. Validation through historical event replay and live shadow deployment demonstrates a mean end-to-end latency of 18-25 seconds (worst case < 45 seconds), precision of 0.90-0.93 for high-severity frustration detection, and median early-warning lead times of approximately 10-15 minutes prior to formal complaints or critical delay thresholds, while maintaining a controlled alert volume below 6 alerts per 100 admissions. These findings indicate that real-time execution enables earlier intervention and improved operational responsiveness compared with conventional retrospective monitoring approaches.

Real-time NLP; Patient frustration; Admission delays; Streaming analytics; Early warning systems; Healthcare operations

https://ijsra.net/sites/default/files/fulltext_pdf/IJSRA-2026-0486.pdf

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Fnu Mohammed Sirajuddin. Real-time NLP warning system for monitoring patient frustration and admission delays. International Journal of Science and Research Archive, 2026, 18(03), 1087-1099. Article DOI: https://doi.org/10.30574/ijsra.2026.18.3.0486.

Copyright © Author(s). All rights reserved. This article is published under the terms of the Creative Commons Attribution 4.0 International License (CC BY 4.0), which permits use, sharing, adaptation, distribution, and reproduction in any medium or format, as long as appropriate credit is given to the original author(s) and source, a link to the license is provided, and any changes made are indicated.


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