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Applications of artificial intelligence in cardiovascular imaging
Research into artificial intelligence (AI) has made tremendous progress over the past
decade. In particular, the AI-powered analysis of images and signals has reached human …
decade. In particular, the AI-powered analysis of images and signals has reached human …
Multiparametric cardiovascular magnetic resonance approach in diagnosing, monitoring, and prognostication of myocarditis
Myocarditis represents the entity of an inflamed myocardium and is a diagnostic challenge
caused by its heterogeneous presentation. Contemporary noninvasive evaluation of patients …
caused by its heterogeneous presentation. Contemporary noninvasive evaluation of patients …
Multi-centre, multi-vendor and multi-disease cardiac segmentation: the M&Ms challenge
The emergence of deep learning has considerably advanced the state-of-the-art in cardiac
magnetic resonance (CMR) segmentation. Many techniques have been proposed over the …
magnetic resonance (CMR) segmentation. Many techniques have been proposed over the …
Fully convolutional multi-scale residual DenseNets for cardiac segmentation and automated cardiac diagnosis using ensemble of classifiers
Deep fully convolutional neural network (FCN) based architectures have shown great
potential in medical image segmentation. However, such architectures usually have millions …
potential in medical image segmentation. However, such architectures usually have millions …
Improving the generalizability of convolutional neural network-based segmentation on CMR images
Background: Convolutional neural network (CNN) based segmentation methods provide an
efficient and automated way for clinicians to assess the structure and function of the heart in …
efficient and automated way for clinicians to assess the structure and function of the heart in …
Automated segmentation of tissues using CT and MRI: a systematic review
Rationale and Objectives The automated segmentation of organs and tissues throughout the
body using computed tomography and magnetic resonance imaging has been rapidly …
body using computed tomography and magnetic resonance imaging has been rapidly …
Deep learning-based detection and correction of cardiac MR motion artefacts during reconstruction for high-quality segmentation
Segmenting anatomical structures in medical images has been successfully addressed with
deep learning methods for a range of applications. However, this success is heavily …
deep learning methods for a range of applications. However, this success is heavily …
Automatic segmentation with detection of local segmentation failures in cardiac MRI
Segmentation of cardiac anatomical structures in cardiac magnetic resonance images
(CMRI) is a prerequisite for automatic diagnosis and prognosis of cardiovascular diseases …
(CMRI) is a prerequisite for automatic diagnosis and prognosis of cardiovascular diseases …
Biomedical image segmentation: a survey
Y Alzahrani, B Boufama - SN Computer Science, 2021 - Springer
Abstract Medical Image Segmentation is the process of segmenting and detecting
boundaries of anatomical structures in various types of 2D and 3D-medical images. The …
boundaries of anatomical structures in various types of 2D and 3D-medical images. The …
Automatic quality control of brain T1-weighted magnetic resonance images for a clinical data warehouse
Many studies on machine learning (ML) for computer-aided diagnosis have so far been
mostly restricted to high-quality research data. Clinical data warehouses, gathering routine …
mostly restricted to high-quality research data. Clinical data warehouses, gathering routine …