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Early Tuberculosis Detection via Privacy-Preserving, Adaptive-Weighted Deep Models.

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This study developed a privacy-preserving deep learning system for early tuberculosis detection using chest X-rays. The federated, GA-optimized ensemble achieved 98% accuracy, enabling reliable AI-assisted screening in resource-limited settings.

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Area of Science:

  • Artificial Intelligence
  • Medical Imaging
  • Public Health

Background:

  • Tuberculosis (TB) poses a global health challenge, especially in areas with limited radiological expertise.
  • Accurate and early detection of TB from chest X-rays is crucial for effective treatment and control.
  • Centralized training of deep learning models raises privacy concerns and may not generalize well across diverse datasets.

Purpose of the Study:

  • To develop a scalable, privacy-preserving deep learning system for early tuberculosis identification using chest X-ray images.
  • To implement federated learning with a Genetic Algorithm (GA)-optimized adaptive-weighted ensemble to overcome limitations of centralized training and single-model approaches.
  • To enhance model robustness and reduce bias through controlled augmentation and ensemble learning.

Main Methods:

  • An ensemble learning approach combining multiple locally trained models was developed.
  • A Genetic Algorithm (GA) optimized an adaptive-weighted ensemble for optimal model contribution.
  • Federated learning enabled collaborative training across institutions while preserving patient data privacy by transmitting only model parameters.

Main Results:

  • The federated, GA-optimized ensemble significantly outperformed individual models and fixed-weight ensembles.
  • The system achieved 98% accuracy, 97% F1 score, and 0.999 AUC, demonstrating high diagnostic performance.
  • Federated learning ensured model robustness across heterogeneous data sources while maintaining complete patient privacy.

Conclusions:

  • The proposed federated, GA-optimized ensemble provides highly accurate and robust early tuberculosis detection.
  • The system effectively preserves patient privacy across distributed clinical sites.
  • This scalable framework shows significant potential for AI-assisted TB screening in resource-limited healthcare settings.