Back to all papers

Sinogram-based regularization parameter learning for 2D penalized maximum-likelihood PET image reconstruction.

September 2, 2026pubmed logopapers

Authors

Moussaoui Y,Moussaoui S,Mateus D,Carlier T,Stute S

Affiliations (5)

  • LS2N, Nantes Université, 1 rue de la noe, Nantes, 44035, France.
  • Centrale Nantes, 1 rue de la noe, Nantes, Pays de la Loire, 44321, France.
  • LS2N, 1 rue de la Noe, Nantes, 44321, France.
  • Nuclear Medicine, University Hospital Centre Nantes Division 6 Medical Imaging, Place Alexis Ricordeau, Nantes, 44093, France.
  • Nuclear Medicine Department, University Hospital, Nantes, France, CRCINA, INSERM, CNRS, Université d'Angers, Université de Nantes, Nantes, France, 5 ile de la gloriette, Nantes, 44000, France.

Abstract

Positron Emission Tomography (PET) is a molecular imaging technique that creates an image of radiopharmaceutical distribution using acquired sinogram data. Accurate PET reconstruction requires a balance between data fidelity and regularization. The choice of penalty type and the adjustment of the regularization parameters have a critical effect on image quality, including noise suppression, edge preservation, and contrast recovery. However, manually determining optimal regularization strength is challenging due to their dependence on data properties and clinical needs. It often requires multiple reconstructions and considerable time to achieve satisfying results. To address this issue, we propose SINORES, a supervised deep learning approach to predict the optimal regularization parameters for the modified Block Sequential Regularized Expectation Maximization (BSREM) algorithm. The prediction is based on the raw sinogram data and the scaling coefficients that encode acquisition-related properties. By learning from a synthetic dataset of 2D sinograms and scaling coefficients paired with their corresponding optimal parameters, SINORES rapidly identifies suitable parameter values and avoids the need for manual setting. This work presents a proof of concept that demonstrates the feasibility of the proposed framework in the context of 2D PET imaging. The proposed method achieves consistent parameter estimation across different phantom types and effectively determines suitable parameters for reconstructing real PET data, leading to improved reconstruction quality and reliability in practical settings.

Topics

Journal Article

Ready to Sharpen Your Edge?

Subscribe to join 11k+ peers who rely on RadAI Slice. Get the essential weekly briefing that empowers you to navigate the future of radiology.

We respect your privacy. Unsubscribe at any time.