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首页> 外文期刊>Journal of medical systems >Novel Automated Approach to Predict the Outcome of Laser Peripheral Iridotomy for Primary Angle Closure Suspect Eyes Using Anterior Segment Optical Coherence Tomography
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Novel Automated Approach to Predict the Outcome of Laser Peripheral Iridotomy for Primary Angle Closure Suspect Eyes Using Anterior Segment Optical Coherence Tomography

机译:使用前段光学相干断层扫描来预测主要角度闭合激光外周虹膜透明度的结果的新型自动化方法

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Develop an algorithm to predict the success of laser peripheral iridotomy (LPI) in primary angle closure suspect (PACS), using pre-treatment anterior segment optical coherence tomography (ASOCT) scans. A total of 116 eyes with PACS underwent LPI and time-domain ASOCT scans (temporal and nasal cuts) were performed before and 1 month after LPI. All the post-treatment scans were classified to one of the following categories: (a) both angles open, (b) one of two angles open and (c) both angles closed. After LPI, success is defined as one or more angles changed from close to open. In this proposed method, the pre and post-LPI ASOCT scans were registered at the corresponding angles based on similarities between the respective local descriptor features and random sample consensus technique was used to identify the largest consensus set of correspondences between the pre and post-LPI ASOCT scans. Subsequently, features such as correlation co-efficient (CC) and structural similarity index (SSIM) were extracted and correlated with the success of LPI. We included 116 eyes and 91 (78.44%) eyes fulfilled the criteria for success after LPI. Using the CC and SSIM index scores from this training set of ASOCT images, our algorithm showed that the success of LPI in eyes with narrow angles can be predicted with 89.7% accuracy, specificity of 95.2% and sensitivity of 36.4% based on pre-LPI ASOCT scans only. Using pre-LPI ASOCT scans, our proposed algorithm showed good accuracy in predicting the success of LPI for PACS eyes. This fully-automated algorithm could aid decision making in offering LPI as a prophylactic treatment for PACS.
机译:使用预处理前段光学相干断层扫描(ASOCT)扫描,开发一种算法以预测主要角度闭合嫌疑嫌疑嫌疑嫌疑人(PACS)中的激光外围虹膜透明度(LPI)的成功。在LPI后1个月之前,总共116只眼睛接受了LPI和时域ASOCT扫描(时间和鼻切割)。所有后治疗扫描被分类为以下类别之一:(a)两个角度打开,(b)打开两个角度中的一个,(c)两个角度关闭。在LPI之后,成功被定义为一个或多个角度从接近打开变为变化。在该提出的方法中,基于各个本地描述符特征和随机样本共识技术之间的相似性地注册了预先和后LPI ASOCT扫描,用于识别PRE和后LPI之间的最大共识集的相应关系集asoct扫描。随后,提取诸如相关共同高效(CC)和结构相似性指数(SSIM)的特征,并与LPI的成功相关。我们包括116只眼睛,91(78.44%)眼睛履行了LPI后成功的标准。使用CC和SSIM指数从该训练集的ASOCT图像集得分,我们的算法表明,LPI在具有窄角度的眼睛中的成功可以预测89.7%,特异性为95.2%,敏感度为36.4%,基于LPI的敏感度为36.4% ASOCT扫描。使用PRE-LPI ASOCT扫描,我们所提出的算法在预测PACS眼睛的LPI成功方面表现出良好的准确性。这种完全自动化的算法可以帮助决策提供LPI作为PACS的预防治疗。

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