2022
DOI: 10.1249/mss.0000000000003010
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DeepACSA: Automatic Segmentation of Cross-Sectional Area in Ultrasound Images of Lower Limb Muscles Using Deep Learning

Abstract: PurposeMuscle anatomical cross-sectional area (ACSA) can be assessed using ultrasound and images are usually evaluated manually. Here, we present DeepACSA, a deep learning approach to automatically segment ACSA in panoramic ultrasound images of the human rectus femoris (RF), vastus lateralis (VL), gastrocnemius medialis (GM) and lateralis (GL) muscles.MethodsWe trained three muscle-specific convolutional neural networks (CNN) using 1772 ultrasound images from 153 participants (age = 38.2 yr, range = 13–78). Im… Show more

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Cited by 9 publications
(2 citation statements)
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“…Nevertheless, ultrasonography can be used to assess muscle anatomical cross-sectional area (ACSA) as well. We recently published DeepACSA (Ritsche et al, 2022), the counterpart of DL_Track_US. DeepACSA was developed for automatic segmentation of muscle ACSA in transversal, panoramic ultrasonography images of the human rectus femoris, vastus lateralis and gastrocnemius muscles.…”
Section: Statement Of Needmentioning
confidence: 99%
“…Nevertheless, ultrasonography can be used to assess muscle anatomical cross-sectional area (ACSA) as well. We recently published DeepACSA (Ritsche et al, 2022), the counterpart of DL_Track_US. DeepACSA was developed for automatic segmentation of muscle ACSA in transversal, panoramic ultrasonography images of the human rectus femoris, vastus lateralis and gastrocnemius muscles.…”
Section: Statement Of Needmentioning
confidence: 99%
“…CTo address the challenge of intra-and interobserver variability in muscle ultrasound measurement, AI techniques have been proposed [18][19][20].…”
mentioning
confidence: 99%