首页> 外文会议>IEEE International Conference on Intelligence and Safety for Robotics >M-region Segmentation of Pharyngeal Swab Image Based on Improved U-Net Model**Resrach Supported by Scientific Research Fund of Education Department of Liaoning Province. (LFGD2020004)
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M-region Segmentation of Pharyngeal Swab Image Based on Improved U-Net Model**Resrach Supported by Scientific Research Fund of Education Department of Liaoning Province. (LFGD2020004)

机译:基于改进的U-NET模型的咽部拭子形象的M区分割**辽宁省科研基金支持研究。 (LFGD2020004)

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The main method to diagnose COVID-19 is a nucleic acid test from a throat swab. Routine manual collection methods expose medical personnel to high-risk environment, which has a high risk of cross-infection. A throat swab sampling robot was developed to take the place of medical staff. The automatic segmentation of M-region in the pharyngeal swab image, which plays a core guiding role when the robot takes a throat swab sample. Aiming at the problem of discontinuous or fuzzy boundary in M -region of oral cavity, the segmentation accuracy is affected. An improved U -Net model is proposed and a new multi-scale feature fusion module with channel attention mechanism is presented. The ability of adaptive learning is enhanced and the segmentation precision of M -region with discontinuous or fuzzy edges is increased. Oral images of 45 volunteers were collected for training and testing. Experimental results showed that the model could accurately segment M-region in pharyngeal swab images, and compared with other segmentation networks, it has better indexes of segmentation precision.
机译:诊断Covid-19的主要方法是来自喉部拭子的核酸试验。常规手动收集方法将医务人员暴露于高风险环境,具有很高的交叉感染风险。开发了一种喉咙拭子采样机器人以取代医务人员。咽部拭子图像中M次区域的自动分割,当机器人采用咽喉拭子样品时起着核心引导作用。旨在瞄准口腔腔中的M-Region中的不连续或模糊边界的问题,分割精度受到影响。提出了一种改进的U形式模型,并提出了一种具有通道注意机制的新的多尺度特征融合模块。增强了自适应学习的能力,并且增加了具有不连续或模糊边缘的M-Region的分割精度。收集了45名志愿者的口头图像进行培训和测试。实验结果表明,该模型可以在咽拭子图像中精确地分段,并与其他分段网络进行比较,它具有更好的分割精度指标。

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