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Application of Deep Learning-Based Medical Image Segmentation via Orbital Computed Tomography
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PRIMIS: Privacy-preserving medical image sharing via deep sparsifying transform learning with obfuscation.

Isaac Shiri1, Behrooz Razeghi2, Sohrab Ferdowsi3

  • 1Division of Nuclear Medicine and Molecular Imaging, Geneva University Hospital, Geneva, Switzerland; Department of Cardiology, Inselspital, Bern University Hospital, University of Bern, Bern, Switzerland.

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We developed a secure method for sharing medical images, protecting patient privacy. Authorized users can reconstruct images using private keys, enabling safe data exchange for research and clinical use.

Keywords:
Medical image sharingObfuscationPrivacyRepresentation learningSparse coding

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Area of Science:

  • Medical imaging
  • Data privacy
  • Machine learning

Background:

  • Sharing medical images is crucial for clinical and research purposes.
  • Privacy concerns and data security restrictions hinder effective medical image sharing.
  • Existing methods often fail to balance data utility with robust privacy preservation.

Purpose of the Study:

  • To design a privacy-preserving mechanism for sharing medical images securely.
  • To enable storage of obfuscated medical images in the public domain.
  • To allow authorized users to reconstruct original images using private keys.

Main Methods:

  • Utilized a neural auto-encoder architecture.
  • Employed sparsifying transformations to generate multiple compact image codes.
  • Implemented obfuscation via pseudo-random noise for privacy preservation.

Main Results:

  • Demonstrated effectiveness using chest X-ray images for classification, segmentation, and texture analysis.
  • Evaluated the framework's robustness against supervised and unsupervised attacks.
  • Confirmed the computational infeasibility for attackers to reconstruct private image data.

Conclusions:

  • Introduced a novel, optimized, and privacy-assured medical image data-sharing mechanism.
  • Enabled secure multi-party sharing of sensitive medical imaging data.
  • The proposed method is adaptable to various medical imaging modalities beyond X-rays.