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MRI India Journals Vol. 15 No. 1S (2026): Special Issue on Cognition, Human and Artificial Intelligence

Smart Medical Health Prediction Application Using Data Mining Integrated With Deep Learning for Cataract Detection

Authors

  • Akanksha Dudhkaware Department of Computer Science and Engineering , Gurunanak Institute of Engineering and Technology Nagpur, India.
  • Sushma V. Telrandhe Department of Computer Science and Engineering, Gurunanak Institute of Engineering and Technology Nagpur, India.
  • Ram Deshmukh Department of Computer Science and Engineering, Gurunanak Institute of Engineering and Technology Nagpur, India.
  • Sonali Mohod Department of Computer Science and Engineering Jhulelal Institute of Technology Nagpur, India
  • Ketkee khadse JD Collage of Engineering & Management Nagpur, India

DOI:

https://doi.org/10.65521/ijacte.v15i1S.1337

Keywords:

Cataract Detection Smart Healthcare Data Mining Deep Learning Medical Image Analysis Health Prediction Convolutional Neural Networks

Abstract

Cataract is a major cause of avoidable vision loss, and early screening is essential to prevent blindness. This work proposes a smart medical health prediction system that combines data mining with deep learning to automatically detect cataract from ocular images. Preprocessing techniques are used to clean and enhance images, while a convolutional neural network classifies eyes as normal or cataract-affected. The system is designed as an assistive tool to provide fast, low-cost, and reliable screening support, especially in resource-limited settings. Experimental results show good accuracy and sensitivity, demonstrating that the integrated approach improves early detection and supports clinical decision- making in ophthalmology.

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Published

2026-01-18

How to Cite

Dudhkaware , A., Telrandhe , S. V., Deshmukh , R., Mohod , S., & khadse , K. (2026). Smart Medical Health Prediction Application Using Data Mining Integrated With Deep Learning for Cataract Detection. International Journal on Advanced Computer Theory and Engineering, 15(1S), 350–360. https://doi.org/10.65521/ijacte.v15i1S.1337

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