2023
DOI: 10.3390/diagnostics13132274
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The Application of Deep Learning for the Segmentation and Classification of Coronary Arteries

Abstract: In recent years, the prevalence of coronary artery disease (CAD) has become one of the leading causes of death around the world. Accurate stenosis detection of coronary arteries is crucial for timely treatment. Cardiologists use visual estimations when reading coronary angiography images to diagnose stenosis. As a result, they face various challenges which include high workloads, long processing times and human error. Computer-aided segmentation and classification of coronary arteries, as to whether stenosis i… Show more

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Cited by 11 publications
(2 citation statements)
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“…Additionally, the lesion activation map is fused, and the complimentary connection between the high-resolution and low-resolution features is captured by a lesion attention module (LAM). Li et al [29] presented a Spatial Dependence Multi-task Transformer (SDMT) network. After extracting features using a shared encoder, SDMT mutually promotes the two tasks by leveraging the spatial dependency of segmentation results.…”
Section: Related Prior Workmentioning
confidence: 99%
“…Additionally, the lesion activation map is fused, and the complimentary connection between the high-resolution and low-resolution features is captured by a lesion attention module (LAM). Li et al [29] presented a Spatial Dependence Multi-task Transformer (SDMT) network. After extracting features using a shared encoder, SDMT mutually promotes the two tasks by leveraging the spatial dependency of segmentation results.…”
Section: Related Prior Workmentioning
confidence: 99%
“…In order to detect CAD, medical professionals use a variety of imaging techniques to inspect the heart, blood arteries, and tissues [11]. Stress testing can evaluate the cardiovascular system's capacity to resist physical stress by imaging and monitoring its electrical activity in response to exercise and drugs [12].…”
Section: Introductionmentioning
confidence: 99%