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Ultrasound median nerve Image Instance Segmentation via Nesting Attention and Boundary-guided segmentation Mechanism

Research output: Chapters, Conference Papers, Creative and Literary WorksRGC 32 - Refereed conference paper (with host publication)peer-review

Abstract

Most existing deep learning approaches, such as instance segmentation, are for natural images only. However, due to the unique characteristics of medical ultrasound images, they may not be suitable for ultrasound image diagnosis. In this study, we introduce Boundmask, an instance segmentation framework specially designed for medical ultrasound median nerve images. In Boundmark, firstly, we propose the nesting attention module (NAM), which combines spatial and channel attention to enhance the feature information so that we can still get rich feature information even with a simple backbone. Secondly, we design a boundary-guided segmentation mechanism (BGSM) that considers the object’s unique traits and border information while segmenting. The experiments conducted using clinical data demonstrate that Boundmask has a high practical value. The results show that it achieves 54.2 AP on the ultrasound median nerve image dataset and outperforms most existing instance segmentation models. © 2023 Copyright held by the owner/author(s). Publication rights licensed to ACM
Original languageEnglish
Title of host publicationICBET '23: Proceedings of the 2023 13th International Conference on Biomedical Engineering and Technology
PublisherAssociation for Computing Machinery
Pages37–43
ISBN (Electronic)979-8-4007-0743-8
DOIs
Publication statusPublished - Jun 2023
Event13th International Conference on Biomedical Engineering and Technology (ICBET 2023) - Tokyo, Japan
Duration: 15 Jun 202318 Jun 2023

Conference

Conference13th International Conference on Biomedical Engineering and Technology (ICBET 2023)
PlaceJapan
CityTokyo
Period15/06/2318/06/23

Research Keywords

  • Ultrasound diagnoses
  • Instance segmentation
  • Attention
  • Boundary-guided
  • Median-nerve

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