Automatic Diagnosis of Carotid Atherosclerosis Using a Portable Freehand 3D Ultrasound Imaging System
Jiawen Li, Yunqian Huang, Sheng Song, Hongbo Chen, Junni Shi, Duo Xu,, Haibin Zhang, Man Chen, Rui Zheng

TL;DR
This study presents a deep learning-based method utilizing portable freehand 3D ultrasound imaging for automatic detection and diagnosis of carotid atherosclerosis, achieving promising accuracy and clinical correlation.
Contribution
It introduces a novel 3D reconstruction algorithm and a classification system tailored for portable ultrasound, enhancing diagnosis convenience and reducing clinician dependence.
Findings
Sensitivity of 0.714 for detection
Specificity of 0.851 for detection
Good correlation (r=0.762) with expert measurements
Abstract
The objective of this study is to develop a deep-learning based detection and diagnosis technique for carotid atherosclerosis using a portable freehand 3D ultrasound (US) imaging system. A total of 127 3D carotid artery scans were acquired using a portable 3D US system which consisted of a handheld US scanner and an electromagnetic tracking system. A U-Net segmentation network was firstly applied to extract the carotid artery on 2D transverse frame, then a novel 3D reconstruction algorithm using fast dot projection (FDP) method with position regularization was proposed to reconstruct the carotid artery volume. Furthermore, a convolutional neural network was used to classify healthy and diseased cases qualitatively. 3D volume analysis methods including longitudinal image acquisition and stenosis grade measurement were developed to obtain the clinical metrics quantitatively. The proposed…
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Taxonomy
TopicsCerebrovascular and Carotid Artery Diseases · Cardiovascular Health and Disease Prevention · Cardiovascular Disease and Adiposity
MethodsMax Pooling · *Communicated@Fast*How Do I Communicate to Expedia? · Convolution · Concatenated Skip Connection · U-Net
