Statistical Atlases and Computational Models of the Heart. Multi-Disease, Multi-View, and Multi-Center Right Ventricular Segmentation in Cardiac MRI Challenge : 12th International Workshop, STACOM 2021, Held in Conjunction with MICCAI 2021, Strasbourg, France, September 27, 2021, Revised Selected Papers [E-Book] / edited by Esther Puyol Anton, Mihaela Pop, Carlos Martín-Isla, Maxime Sermesant, Avan Suinesiaputra, Oscar Camara, Karim Lekadir, Alistair Young
This book constitutes the proceedings of the 12th International Workshop on Statistical Atlases and Computational Models of the Heart, STACOM 2021, as well as the M&Ms-2 Challenge: Multi-Disease, Multi-View and Multi-Center Right Ventricular Segmentation in Cardiac MRI Challenge. The 25 regular...
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Personal Name(s): | Camara, Oscar, editor |
Lekadir, Karim, editor / Martín-Isla, Carlos, editor / Pop, Mihaela, editor / Puyol Anton, Esther, editor / Sermesant, Maxime, editor / Suinesiaputra, Avan, editor / Young, Alistair, editor | |
Edition: |
1st edition 2022 |
Imprint: |
Cham :
Springer,
2022
|
Physical Description: |
XIII, 385 pages 149 illustrations, 139 illustrations in color (online resource) |
Note: |
englisch |
ISBN: |
9783030937225 |
DOI: |
10.1007/978-3-030-93722-5 |
Series Title: |
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Image processing, computer vision, pattern recognition, and graphics ;
13131 /* Depending on the record driver, $field may either be an array with "name" and "number" keys or a flat string containing only the series name. We should account for both cases to maximize compatibility. */?> Lecture notes in computer science |
Subject (LOC): |
- Multi-atlas segmentation of the aorta from 4D flow MRI: comparison of several fusion strategie
- Quality-aware Cine Cardiac MRI Reconstruction and Analysis from Undersampled k-space Data
- Coronary Artery Centerline Refinement using GCN Trained with Synthetic Data
- Novel imaging biomarkers to evaluate heart dysfunction post-chemotherapy: a preclinical MRI feasibility study
- A bi-atrial statistical shape model as a basis to classify left atrial enlargement from simulated and clinical 12-lead ECGs
- Vessel Extraction and Analysis of Aortic Dissection
- The Impact of Domain Shift on Left and Right Ventricle Segmentation in Short Axis Cardiac MR Images
- Characterizing myocardial ischemia and reperfusion patterns with hierarchical manifold learning
- Generating Subpopulation-Specific Biventricular Anatomy Models Using Conditional Point Cloud Variational Autoencoders
- Improved AI-based Segmentation of Apical and Basal Slices from Clinical Cine CMR
- Mesh Convolutional Neural Networks for Wall Shear Stress Estimation in 3D Artery Models
- Hierarchical multi-modality prediction model to assess obesity-related remodelling
- Neural Angular Plaque Characterization:Automated Quantification of Polar Distributionfor Plaque Composition
- Simultaneous Segmentation and Motion Estimation of Left Ventricular Myocardium in 3D Echocardiography using Multi-task Learning
- Statistical shape analysis of the tricuspid valve in hypoplastic left heart syndrome
- An Unsupervised 3D Recurrent Neural Networkfor Slice Misalignment Correction in CardiacMR Imaging
- Unsupervised Multi-Modality RegistrationNetwork based on Spatially Encoded Gradient Information
- In-silico analysis of device-related thrombosis for different left atrial appendage occluder settings
- Valve flattening with functional biomarkers for the assessment of mitral valve repair
- Multi-modality cardiac segmentation via mixing domains for unsupervised adaptation
- Uncertainty-Aware Training for Cardiac Resynchronisation Therapy Response Prediction
- Cross-domain Artefact Correction of Cardiac MRI
- Detection and Classification of Coronary Artery Plaques in Coronary Computed Tomography Angiography Using 3D CNN
- Predicting 3D Cardiac Deformations With Point Cloud Autoencoders
- Influence of morphometric and mechanical factors in thoracic aorta finite element modeling
- Right Ventricle Segmentation via Registration and Multi-input Modalities in Cardiac Magnetic Resonance Imaging from Multi-Disease, Multi-View and Multi-Center
- Using MRI-specific Data Augmentation to Enhance the Segmentation of Right Ventricle in Multi-disease, Multi-center and Multi-view Cardiac MRI
- Right Ventricular Segmentation from Short- and Long-Axis MRIs via Information Transition
- Tempera: Spatial Transformer Feature Pyramid Network for Cardiac MRI Segmentation
- Multi-view SA-LA Net: A framework for simultaneous segmentation of RV on multi-view cardiac MR Images
- Right ventricular segmentation in multi-view cardiac MRI using a unified U-net model
- Deformable Bayesian Convolutional Networks for Disease-Robust Cardiac MRI Segmentation
- Consistency based Co-Segmentation for Multi-View Cardiac MRI using Vision Transformer
- Refined Deep Layer Aggregation for Multi-Disease, Multi-View & Multi-Center Cardiac MR Segmentation
- A Multi-View Cross-Over Attention U-Net Cascade With Fourier Domain Adaptation For Multi-Domain Cardiac MRI Segmentation
- Multi-Disease, Multi-View & Multi-Center Right Ventricular Segmentation in Cardiac MRI using Efficient Late-Ensemble Deep Learning Approach
- Automated Segmentation of the Right Ventricle from Magnetic Resonance Imaging Using Deep Convolutional Neural Networks
- 3D right ventricle reconstruction from 2D U-Net segmentation of sparse short-axis and 4-chamber cardiac cine MRI views
- Late Fusion U-Net with GAN-based Augmentation for Generalizable Cardiac MRI Segmentation
- Using Out-of-Distribution Detection for Model Refinement in Cardiac Image Segmentation.