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用于在未增强腹部CT图像中分割肾脏和检测肾结石的深度分割网络。

Deep Segmentation Networks for Segmenting Kidneys and Detecting Kidney Stones in Unenhanced Abdominal CT Images.

作者信息

Li Dan, Xiao Chuda, Liu Yang, Chen Zhuo, Hassan Haseeb, Su Liyilei, Liu Jun, Li Haoyu, Xie Weiguo, Zhong Wen, Huang Bingding

机构信息

College of Big Data and Internet, Shenzhen Technology University, Shenzhen 518118, China.

Wuerzburg Dynamics Inc., Shenzhen 518118, China.

出版信息

Diagnostics (Basel). 2022 Jul 23;12(8):1788. doi: 10.3390/diagnostics12081788.

Abstract

Recent breakthroughs of deep learning algorithms in medical imaging, automated detection, and segmentation techniques for renal (kidney) in abdominal computed tomography (CT) images have been limited. Radiomics and machine learning analyses of renal diseases rely on the automatic segmentation of kidneys in CT images. Inspired by this, our primary aim is to utilize deep semantic segmentation learning models with a proposed training scheme to achieve precise and accurate segmentation outcomes. Moreover, this work aims to provide the community with an open-source, unenhanced abdominal CT dataset for training and testing the deep learning segmentation networks to segment kidneys and detect kidney stones. Five variations of deep segmentation networks are trained and tested both dependently (based on the proposed training scheme) and independently. Upon comparison, the models trained with the proposed training scheme enable the highly accurate 2D and 3D segmentation of kidneys and kidney stones. We believe this work is a fundamental step toward AI-driven diagnostic strategies, which can be an essential component of personalized patient care and improved decision-making in treating kidney diseases.

摘要

深度学习算法在医学成像、腹部计算机断层扫描(CT)图像中肾脏的自动检测和分割技术方面的近期突破一直有限。肾脏疾病的放射组学和机器学习分析依赖于CT图像中肾脏的自动分割。受此启发,我们的主要目标是利用具有所提出训练方案的深度语义分割学习模型,以实现精确和准确的分割结果。此外,这项工作旨在为社区提供一个开源的、未增强的腹部CT数据集,用于训练和测试深度学习分割网络,以分割肾脏并检测肾结石。五种深度分割网络变体分别根据所提出的训练方案进行依赖训练和独立测试。经过比较,使用所提出训练方案训练的模型能够对肾脏和肾结石进行高精度的二维和三维分割。我们相信这项工作是迈向人工智能驱动诊断策略的重要一步,这可能是个性化患者护理和改善肾脏疾病治疗决策的重要组成部分。

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