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Automatic measurement of features in ultrasound images of the eye.

机译:自动测量眼睛超声图像中的特征。

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In closed angled Glaucoma, fluid pressure in the eye increases because of inadequate fluid flow between the iris and the cornea. One important technique to assess patients at risk of glaucoma is to analyze ultrasound images of the eye to detect abnormal structural changes. Currently, these images are analyzed manually. This thesis presents an algorithm to automatically identify and measure clinically important features in ultrasound images of the eye. The main challenge is stable detection of features in the presence of ultrasound speckle noise; an algorithm is developed to address this using multiscale analysis and template matching. Tests were performed by comparison of results with eighty images of glaucoma patients and normals against the feature locations identified by a trained technologist. In 5% of cases, the algorithm could not analyze the images; in the remaining cases, features were correctly identified (within 97.5 mum) in 97% of images. This work shows promise as a technique to improve the efficiency of clinical interpretation of ultrasound images of the eye.
机译:在闭角型青光眼中,由于虹膜和角膜之间的流体流动不足,眼睛中的流体压力会增加。评估有青光眼风险的患者的一项重要技术是分析眼睛的超声图像以检测异常的结构变化。当前,这些图像是手动分析的。本文提出了一种算法,可以自动识别和测量眼睛超声图像中的临床重要特征。主要挑战是在存在超声斑点噪声的情况下稳定地检测特征。开发了一种使用多尺度分析和模板匹配来解决此问题的算法。通过将结果与80名青光眼患者和正常人的图像与受过训练的技术人员确定的特征位置进行比较,进行了测试。在5%的情况下,该算法无法分析图像;在其余情况下,可以在97%的图像中正确识别特征(在97.5毫米以内)。这项工作显示出有望作为一种提高临床对眼睛超声图像的解释效率的技术。

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