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Automatic Cephalometric Evaluation of Patients Suffering from Sleep-Disordered Breathing

机译:患睡眠无序呼吸患者的自动头部测定评估

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We address the problem of automatically analyzing lateral cephalometric images as a diagnostic tool for patients suffering from Sleep Disordered Breathing (SDB). First, multiple landmarks and anatomical structures that were previously associated with SDB are localized. Then statistical regression is applied in order to estimate the Respiratory Disturbance Index (RDI), which is the standard measure for the severity of obstructive sleep apnea. The landmark localization employs a new registration method that is based on Local Affine Frames (LAF). Multiple LAFs are sampled per image based on random selection of triplets of keypoints, and are used to register the input image to the training images. The landmarks are then projected from the training images to the query image. Following a refinement step, the tongue, velum and pharyngeal wall are localized. We collected a dataset of 70 images and compare the accuracy of the anatomical landmarks with recent publications, showing preferable performance in localizing most of the anatomical points. Furthermore, we are able to show that the location of the anatomical landmarks and structures predicts the severity of the disorder, obtaining an error of less than 7.5 RDI units for 44% of the patients.
机译:我们解决了自动分析横向头颅图像作为患有睡眠无序呼吸(SDB)的诊断工具的问题。首先,先前与SDB相关联的多个地标和解剖结构是本地化的。然后应用统计回归以估计呼吸扰动指数(RDI),这是阻塞性睡眠呼吸暂停严重程度的标准措施。地标本地化采用新的注册方法,该方法基于本地仿射框架(LAF)。根据关键点三胞胎的随机选择,每个图像采样多个LAF,并用于将输入图像注册到训练图像。然后将地标从训练图像投影到查询图像。在细化步骤之后,舌头,绒和咽墙是局部的。我们收集了70张图片的数据集,并比较了最近出版物的解剖标志性的准确性,显示了定位大多数解剖点的优选表现。此外,我们能够表明解剖学标志性和结构的位置预测了疾病的严重程度,获得了44%的患者的误差。

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