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Deployment of Artificial Intelligence in Clinical Oral Pathology: Evidence Summary and Implementation Gaps.

Created on 27 Aug 2026

Authors

J H Shazia Fathima, Mugundan Raghavelu Narendran, Mohammed Sharique Ahmed Quadri, Thilla Sekar Vinothkumar, K A Kamala, Mohmed Isaqali Karobari

Published in

Analytical cellular pathology (Amsterdam). Volume 2026. Issue 1. Pages e9281281.

Abstract

Whole-slide imaging (WSI) has shifted pathology toward digital workflows, creating the foundation for applying artificial intelligence (AI) to diagnostic tasks. This review summarises validated AI applications in diagnostic pathology, with an emphasis on clinical performance, regulatory developments and the practical barriers that affect implementation.
A structured search of PubMed, Scopus and Google Scholar identified English-language, peer-reviewed studies from January 2020 to May 2025. Eligible studies applied AI to diagnostic, grading or prognostic tasks in human tissue, used a pathologist-confirmed reference standard and included external or multi-centre validation.
More than 150,000 digital slides were represented across the included studies. Reported performance metrics demonstrated strong diagnostic accuracy across several validated applications. Large meta-analyses and externally validated studies reported sensitivity values exceeding 96% and specificity above 93% for selected cancer-detection tasks, while other studies demonstrated high agreement for Gleason grading (QWK up to 0.862) and biomarker quantification (Ki-67 ICC 0.98).
AI has the capacity to strengthen diagnostic pathology by improving consistency, measurement and efficiency. Moving from experimental use to routine reporting will require broad validation across centres, enhanced model transparency, strong quality-assurance systems and close cooperation between developers and pathologists.

PMID:
42656185
Bibliographic data and abstract were imported from PubMed on 27 Aug 2026.

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