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Ultrasound prostate segmentation based on multidirectional deeply supervised V‐Net

分割 人工智能 计算机科学 基本事实 前列腺活检 深度学习 Sørensen–骰子系数 豪斯多夫距离 前列腺近距离放射治疗 超声波 图像分割 交叉熵 近距离放射治疗 前列腺 计算机视觉 模式识别(心理学) 医学 放射科 放射治疗 癌症 内科学
作者
Yang Lei,Sibo Tian,Xiuxiu He,Tonghe Wang,Bo Wang,Pretesh Patel,Ashesh B. Jani,Hui Mao,Walter J. Curran,Tian Liu,Xiaofeng Yang
出处
期刊:Medical Physics [Wiley]
卷期号:46 (7): 3194-3206 被引量:128
标识
DOI:10.1002/mp.13577
摘要

PURPOSE: Transrectal ultrasound (TRUS) is a versatile and real-time imaging modality that is commonly used in image-guided prostate cancer interventions (e.g., biopsy and brachytherapy). Accurate segmentation of the prostate is key to biopsy needle placement, brachytherapy treatment planning, and motion management. Manual segmentation during these interventions is time-consuming and subject to inter- and intraobserver variation. To address these drawbacks, we aimed to develop a deep learning-based method which integrates deep supervision into a three-dimensional (3D) patch-based V-Net for prostate segmentation. METHODS AND MATERIALS: We developed a multidirectional deep-learning-based method to automatically segment the prostate for ultrasound-guided radiation therapy. A 3D supervision mechanism is integrated into the V-Net stages to deal with the optimization difficulties when training a deep network with limited training data. We combine a binary cross-entropy (BCE) loss and a batch-based Dice loss into the stage-wise hybrid loss function for a deep supervision training. During the segmentation stage, the patches are extracted from the newly acquired ultrasound image as the input of the well-trained network and the well-trained network adaptively labels the prostate tissue. The final segmented prostate volume is reconstructed using patch fusion and further refined through a contour refinement processing. RESULTS: Forty-four patients' TRUS images were used to test our segmentation method. Our segmentation results were compared with the manually segmented contours (ground truth). The mean prostate volume Dice similarity coefficient (DSC), Hausdorff distance (HD), mean surface distance (MSD), and residual mean surface distance (RMSD) were 0.92 ± 0.03, 3.94 ± 1.55, 0.60 ± 0.23, and 0.90 ± 0.38 mm, respectively. CONCLUSION: We developed a novel deeply supervised deep learning-based approach with reliable contour refinement to automatically segment the TRUS prostate, demonstrated its clinical feasibility, and validated its accuracy compared to manual segmentation. The proposed technique could be a useful tool for diagnostic and therapeutic applications in prostate cancer.
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