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ISSN: 2582-8266 (Online) || ISSN Approved Journal || Google Scholar Indexed || Impact Factor: 9.48 || Crossref DOI

Fast Publication within 2 days || Low Article Processing charges || Peer reviewed and Referred Journal

Research and review articles are invited for publication in Volume 16, Issue 1 (July 2025).... Submit articles

Otogalucosense: AI-Powered system for glaucoma and otitis media detection

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Vol. 16, Issue 1, July 2025

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Pabitha C *, Sanjay H, Vigneshwar S and Vishwa M

Department of Computer Science and Engineering, SRM Valliammai Engineering College, Chennai, India.

Review Article

World Journal of Advanced Engineering Technology and Sciences, 2025, 14(03), 125-133

Article DOI: 10.30574/wjaets.2025.14.3.0101

DOI url: https://doi.org/10.30574/wjaets.2025.14.3.0101

Received on 13 January 2025; revised on 26 February 2025; accepted on 01 March 2025

This study introduces a non-invasive pressure monitoring device driven by artificial intelligence for the real-time identification of otitis media and glaucoma. For effective data collection and processing, the system combines tonometric intraocular pressure sensors and MEMS-based middle ear pressure sensors with an Arduino microcontroller. Support Vector Machines (SVM) and Neural Networks are two examples of machine learning algorithms that evaluate the gathered data to reliably and accurately categorize anomalies. The system's small, portable form makes it appropriate for both clinical and home usage. It allows for wireless transmission for remote monitoring and shows real-time findings on an LCD screen. This system helps patients and healthcare providers by promoting early diagnosis, decreasing the need for invasive treatments, and improving access to reasonably priced healthcare. This AI-driven system, which has applications in ophthalmology, otolaryngology, and specialized settings like diving and aviation, is a major breakthrough in medical diagnostics that will improve patient outcomes and encourage preventative treatment globally. By bridging the gap between clinical expertise and home-based monitoring, this AI-driven technology offers a substantial improvement in medical diagnosis. Modern sensor technologies and machine learning are used to provide an accessible, scalable, and efficient early illness detection system that will eventually improve patient outcomes and transform preventive healthcare. 

AI-Powered Diagnostics; Glaucoma Detection; Otitis Media Detection; Intraocular Pressure Monitoring; Middle Ear Pressure; Machine Learning; MEMS Sensors; Support Vector Machines (SVM); Neural Networks; Arduino-Based Healthcare

https://journalwjaets.com/sites/default/files/fulltext_pdf/WJAETS-2025-0101.pdf

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Pabitha C, Sanjay H, Vigneshwar S and Vishwa M. Otogalucosense: AI-Powered system for glaucoma and otitis media detection. World Journal of Advanced Engineering Technology and Sciences, 2025, 14(03), 125-133. Article DOI: https://doi.org/10.30574/wjaets.2025.14.3.0101.

Copyright © 2025 Author(s) retain the copyright of this article. This article is published under the terms of the Creative Commons Attribution Liscense 4.0

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