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Marica Muffoletto

Publications and source records attributed to Marica Muffoletto.

3 recordsLinked to original sources

Neural Implicit Heart Coordinates: 3D cardiac shape reconstruction from sparse segmentations

Accurate reconstruction of cardiac anatomy from sparse clinical images remains a major challenge in patient-specific modeling. While neural implicit functions have previously been applied to this task, their application to mapping anatomical consistency across subjects has been limited. In this work, we introduce Neural Implicit Heart Coordinates (NIHCs), a standardized implicit coordinate system, based on universal ventricular coordinates, that provides a common anatomical reference frame for the human heart. Our method predicts NIHCs directly from a limited number of 2D segmentations (sparse acquisition) and subsequently decodes them into dense 3D segmentations and high-resolution meshes at arbitrary output resolution. Trained on a large dataset of 5,000 cardiac meshes, the model achieves high reconstruction accuracy on clinical contours, with mean Euclidean surface errors of 2.51$\pm$0.33 mm in a diseased cohort (n=4549) and 2.3$\pm$0.36 mm in a healthy cohort (n=5576). The NIHC representation enables anatomically coherent reconstruction even under severe slice sparsity and segmentation noise, faithfully recovering complex structures such as the valve planes. Compared with traditional pipelines, inference time is reduced from over 60 s to 5-15 s. These results demonstrate that NIHCs constitute a robust and efficient anatomical representation for patient-specific 3D cardiac reconstruction from minimal input data.

cs.CV

Brain PET-MR attenuation correction with deep learning: method validation in adult and clinical paediatric data

Current methods for magnetic resonance-based positron emission tomography attenuation correction (PET-MR AC) are time consuming, and less able than computed tomography (CT)-based AC methods to capture inter-individual variability and skull abnormalities. Deep learning methods have been proposed to produce pseudo-CT from MR images, but these methods have not yet been evaluated in large clinical cohorts. Methods trained on healthy adult data may not work in clinical cohorts where skull morphometry may be abnormal, or in paediatric data where skulls tend to be thinner and smaller. Here, we train a convolutional neural network based on the U-Net to produce pseudo-CT for PET-MR AC. We trained our network on a mixed cohort of healthy adults and patients undergoing clinical PET scans for neurology investigations. We show that our method was able to produce pseudo-CT with mean absolute errors (MAE) of 100.4 $\pm$ 21.3 HU compared to reference CT, with a Jaccard overlap coefficient of 0.73 $\pm$ 0.07 in the skull masks. Linear attenuation maps based on our pseudo-CT (relative MAE = 8.4 $\pm$ 2.1\%) were more accurate than those based on a well-performing multi-atlas-based AC method (relative MAE = 13.1 $\pm$ 1.5\%) when compared with CT-based linear attenuation maps. We refined the trained network in a clinical paediatric cohort. MAE improved from 174.7 $\pm$ 33.6 HU when using the existing network to 127.3 $\pm$ 39.9 HU after transfer learning in the paediatric dataset, thus showing that transfer learning can improve pseudo-CT accuracy in paediatric data.

physics.med-ph

Efficient Pix2Vox++ for 3D Cardiac Reconstruction from 2D echo views

Accurate geometric quantification of the human heart is a key step in the diagnosis of numerous cardiac diseases, and in the management of cardiac patients. Ultrasound imaging is the primary modality for cardiac imaging, however acquisition requires high operator skill, and its interpretation and analysis is difficult due to artifacts. Reconstructing cardiac anatomy in 3D can enable discovery of new biomarkers and make imaging less dependent on operator expertise, however most ultrasound systems only have 2D imaging capabilities. We propose both a simple alteration to the Pix2Vox++ networks for a sizeable reduction in memory usage and computational complexity, and a pipeline to perform reconstruction of 3D anatomy from 2D standard cardiac views, effectively enabling 3D anatomical reconstruction from limited 2D data. We evaluate our pipeline using synthetically generated data achieving accurate 3D whole-heart reconstructions (peak intersection over union score > 0.88) from just two standard anatomical 2D views of the heart. We also show preliminary results using real echo images.

eess.IV