A bi-directional segmentation method for prostate ultrasound images under semantic constraints
Zexiang Li,
Wei Du,
Yongtao Shi
et al.
Abstract:Due to the lack of sufficient labeled data for the prostate and the extensive and complex semantic information in ultrasound images, accurately and quickly segmenting the prostate in transrectal ultrasound (TRUS) images remains a challenging task. In this context, this paper proposes a solution for TRUS image segmentation using an end-to-end bidirectional semantic constraint method, namely the BiSeC model. The experimental results show that compared with classic or popular deep learning methods, this method ha… Show more
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