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May 6, 20260 citationsOpen Access

Ai-Powered Digital Twin Approach For Personalized Organ Transplantation

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MPMrs.W. Asha PrincyPKPooja K.P.PSPooja Shree S

Key Points

  • To develop an AI-driven Digital Twin system for enhancing donor-recipient matching in organ transplantation.
  • Designed a system called DonorSync using machine learning and medical image analysis.
  • Analyzed clinical parameters using Logistic Regression and evaluated ultrasound images with ResNet-50.
  • Integrated FastAPI and MongoDB for backend functionality and data storage.
  • The system provides real-time donor compatibility scores and transplant success probabilities.
  • Experimental evaluation showed reduced donor selection time compared to conventional methods.
  • The dual-modality approach significantly enhances prediction reliability.

Abstract

The rapid advancement of artificial intelligence (AI) in healthcare has created unprecedented opportunities for improving diagnosis, treatment planning, and clinical decision-making. This paper presents DonorSync — an AI-powered Digital Twin system designed to assist physicians in liver and kidney donor-recipient matching using machine learning and medical image analysis. The proposed system combines Logistic Regression-based clinical parameter analysis (age, bilirubin, albumin, creatinine, urea) with a ResNet-50-driven ultrasound image evaluation module to generate ranked donor compatibility scores and transplant success probabilities in real time. Built on a FastAPI backend with MongoDB data storage and an HTML/CSS/JavaScript frontend, the platform provides secure, scalable, and efficient access to donor matching services. Experimental evaluation confirms that the integrated dual-modality approach substantially reduces donor selection time and enhances prediction reliability compared to conventional manual processes. The system aligns with UN Sustainable Development Goal 3 (Good Health and Well-Being) and Goal 9 (Industry, Innovation and Infrastructure).

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Cite This Study

Princy et al. (2026) studied this question.

synapsesocial.com/papers/69fa989404f884e66b532449https://doi.org/10.5281/zenodo.20023581
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