首页> 外文会议>International Conference on Informatics, Electronics and Vision;International Conference on Imaging, Vision and Pattern Recognition >Early Pulmonary Embolism Detection from Computed Tomography Pulmonary Angiography Using Convolutional Neural Networks
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Early Pulmonary Embolism Detection from Computed Tomography Pulmonary Angiography Using Convolutional Neural Networks

机译:利用卷积神经网络从计算机断层扫描肺血管造影检测的早期肺栓塞检测

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In this study., we developed the first computer-aided detection (CAD) system aimed at triage patients with pulmonary embolism (PE) to reduce the death rate during the waiting period. Computed tomography pulmonary angiography (CTPA) is used for definite diagnosis of PE., and CTPA imaging reports are read by radiologists who suggest further management., which requires time and hence a waiting period to obtain a diagnosis. Patients may die during this waiting period., and a CAD method can triage patients with PE from those without PE. In this study., we proposed a CAD system to achieve the aforementioned purpose. Our purpose is different from related studies and CAD systems that were aimed at identifying key PE lesion images in images of patients with PE to expedite PE diagnosis. Our CAD system consists of a novel classification-model ensemble for PE detection and a segmentation model to label PE lesion on each image. We utilized data from the National Cheng Kung University Hospital and open resource to construct models. In the classification model., the algorithm achieved an area under the receiver operating characteristic curve of 0.88 (accuracy = 0.85). In the segmentation model., the mean intersection over union was 0.689. Overall., our CAD system successfully distinguished patients with PE from those without PE and automatically labeled the PE lesion to expedite PE diagnosis. Contribution-This is the first CAD system aimed at triage patients with PE that uses the multiple convolutional neural network architecture.
机译:在这项研究中,我们开发了第一种计算机辅助检测(CAD)系统,旨在患有肺栓塞(PE)的肺栓塞(PE),以降低等待期间的死亡率。计算机断层扫描肺血管造影(CTPA)用于PE的明确诊断。,CTPA成像报告是由建议进一步管理的辐射科医生读取。,这需要时间并因此进行诊断的等待期。患者在这段期间可能会死亡。和CAD方法可以从没有PE的那些患者进行PE的患者。在这项研究中,我们提出了一个CAD系统来达到上述目的。我们的目的是与相关研究和CAD系统不同,该系统旨在鉴定PE患者的患者的关键PE病变图像以加快PE诊断。我们的CAD系统包括用于PE检测的新型分类模型集合,以及在每个图像上标记PE病变的分段模型。我们利用来自国民成功大学医院的数据和开放资源来构建模型。在分类模型中。,该算法在接收器下进行的区域,操作特性曲线为0.88(精度= 0.85)。在分割模型中。,联盟的平均交叉量为0.689。总体而言。,我们的CAD系统成功介绍了没有PE的PE的患者,并自动标记PE病变以加快PE诊断。贡献 - 这是第一个针对PE患者的CAD系统,它使用多个卷积神经网络架构。

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