Picture for Pablo Lamata

Pablo Lamata

Echo from noise: synthetic ultrasound image generation using diffusion models for real image segmentation

Add code
May 09, 2023
Figure 1 for Echo from noise: synthetic ultrasound image generation using diffusion models for real image segmentation
Figure 2 for Echo from noise: synthetic ultrasound image generation using diffusion models for real image segmentation
Figure 3 for Echo from noise: synthetic ultrasound image generation using diffusion models for real image segmentation
Figure 4 for Echo from noise: synthetic ultrasound image generation using diffusion models for real image segmentation
Viaarxiv icon

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

Add code
Jul 27, 2022
Figure 1 for Efficient Pix2Vox++ for 3D Cardiac Reconstruction from 2D echo views
Figure 2 for Efficient Pix2Vox++ for 3D Cardiac Reconstruction from 2D echo views
Figure 3 for Efficient Pix2Vox++ for 3D Cardiac Reconstruction from 2D echo views
Figure 4 for Efficient Pix2Vox++ for 3D Cardiac Reconstruction from 2D echo views
Viaarxiv icon

A Global Benchmark of Algorithms for Segmenting Late Gadolinium-Enhanced Cardiac Magnetic Resonance Imaging

May 07, 2020
Figure 1 for A Global Benchmark of Algorithms for Segmenting Late Gadolinium-Enhanced Cardiac Magnetic Resonance Imaging
Figure 2 for A Global Benchmark of Algorithms for Segmenting Late Gadolinium-Enhanced Cardiac Magnetic Resonance Imaging
Figure 3 for A Global Benchmark of Algorithms for Segmenting Late Gadolinium-Enhanced Cardiac Magnetic Resonance Imaging
Figure 4 for A Global Benchmark of Algorithms for Segmenting Late Gadolinium-Enhanced Cardiac Magnetic Resonance Imaging
Viaarxiv icon

A Generative Adversarial Model for Right Ventricle Segmentation

Sep 27, 2018
Figure 1 for A Generative Adversarial Model for Right Ventricle Segmentation
Figure 2 for A Generative Adversarial Model for Right Ventricle Segmentation
Figure 3 for A Generative Adversarial Model for Right Ventricle Segmentation
Figure 4 for A Generative Adversarial Model for Right Ventricle Segmentation
Viaarxiv icon

V-FCNN: Volumetric Fully Convolution Neural Network For Automatic Atrial Segmentation

Sep 27, 2018
Figure 1 for V-FCNN: Volumetric Fully Convolution Neural Network For Automatic Atrial Segmentation
Figure 2 for V-FCNN: Volumetric Fully Convolution Neural Network For Automatic Atrial Segmentation
Figure 3 for V-FCNN: Volumetric Fully Convolution Neural Network For Automatic Atrial Segmentation
Figure 4 for V-FCNN: Volumetric Fully Convolution Neural Network For Automatic Atrial Segmentation
Viaarxiv icon

Automated segmentation on the entire cardiac cycle using a deep learning work-flow

Aug 31, 2018
Figure 1 for Automated segmentation on the entire cardiac cycle using a deep learning work-flow
Figure 2 for Automated segmentation on the entire cardiac cycle using a deep learning work-flow
Figure 3 for Automated segmentation on the entire cardiac cycle using a deep learning work-flow
Viaarxiv icon

Temporal Convolution Networks for Real-Time Abdominal Fetal Aorta Analysis with Ultrasound

Jul 11, 2018
Figure 1 for Temporal Convolution Networks for Real-Time Abdominal Fetal Aorta Analysis with Ultrasound
Figure 2 for Temporal Convolution Networks for Real-Time Abdominal Fetal Aorta Analysis with Ultrasound
Figure 3 for Temporal Convolution Networks for Real-Time Abdominal Fetal Aorta Analysis with Ultrasound
Viaarxiv icon

Recurrent Fully Convolutional Neural Networks for Multi-slice MRI Cardiac Segmentation

Aug 13, 2016
Figure 1 for Recurrent Fully Convolutional Neural Networks for Multi-slice MRI Cardiac Segmentation
Figure 2 for Recurrent Fully Convolutional Neural Networks for Multi-slice MRI Cardiac Segmentation
Figure 3 for Recurrent Fully Convolutional Neural Networks for Multi-slice MRI Cardiac Segmentation
Figure 4 for Recurrent Fully Convolutional Neural Networks for Multi-slice MRI Cardiac Segmentation
Viaarxiv icon