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Image Analysis of Retinal Vascular Network Geometry and its Relationship to Cardiovascular Complications.

机译:视网膜血管网络几何图像分析及其与心血管并发症的关系。

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摘要

Objective: 1) To detect retina characteristics that associated with stroke; 2) To develop a statistics model with variables of retina characteristics for classifying patients with stroke from those without stroke in aged population.;Method: Matched case control study. Patients with stroke from the diabetic retinopathy screening program and stroke patients from Acute Stroke Unit were selected as stroke cases. Controls (patients without history of stroke) with matched diabetes status and age were selected from the diabetic retinopathy screening program and eye outpatient clinics. All subjects in this study were from Prince of Wales Hospital, Hong Kong. Risk factors of stroke from all subjects were collected, including age, gender, diabetes, hypertension, hyperlipidemia, history of ischemic heart disease, atrial fibrillation and smoking. Color retina images of each subject were collected and analyzed. The retina characteristics, including diameters of arterioles and venules, bifurcation coefficients, bifurcation angles, branch symmetry, optic disc perimeter were extracted from the color retina images by software "ImageJ". Other retina characteristics including arteriole-venule nicking, hemorrhages, exudates, arteriole occlusion, and vessel tortuosity were also recorded. Independent t test and Chi-squire test were used to compare the continuous and categorical retina characteristics respectively between patients with stroke and those without stroke. Logistic model combining the risk factors of stroke and retina characteristics was established to classify patients with stroke from those without stroke. All data analysis was by SPSS 16.0.;Results: there were 122 stroke cases and 122 controls recruited in this study. There were 41 patients without diabetes and 81 patients with diabetes in each group. Retina characteristics including diameters of arterioles and venules, vessel tortuosity, hemorrhages, exudates, arteriole-venule nicking were significantly different between the two groups. We established risk models to classify patients with stroke from those without stroke. The risk model with highest accuracy of classification included 1) stroke risk factors including hypertension, diabetes and atrial fibrillation; 2) retina characteristics, including arteriole diameters, vessel tortuosity, hemorrhages, arteriole-venule nicking and venule symmetry; 3)interaction between retina characteristics, including arteriole diameters by venule symmetry, arteriole diameters by hemorrhage, and venule symmetry by vessel tortuosity. The accuracy of classification was 80.4%. Using retinal characteristics alone achieved an accuracy of 74.5%.;Conclusion: color retina images are a potential tool for stroke risk stratification. Useful characteristics found in the retinal images included vessel diameters, vessel tortuosity, vessel symmetry, hemorrhage, arteriole-venule nicking. The association between the retinal characteristic and stroke was modified by other retinal characteristics.
机译:目的:1)检测与中风相关的视网膜特征; 2)建立具有视网膜特征变量的统计模型,以将老年人群与非中风患者进行分类。方法:配对病例对照研究。从糖尿病性视网膜病筛查计划中获得卒中的患者和急性卒中部门的卒中患者被选为卒中病例。从糖尿病视网膜病变筛查程序和眼科门诊中选择与糖尿病状况和年龄相匹配的对照(无中风病史的患者)。本研究的所有受试者均来自香港威尔斯亲王医院。收集了所有受试者的中风危险因素,包括年龄,性别,糖尿病,高血压,高脂血症,缺血性心脏病史,心房颤动和吸烟。收集并分析每个受试者的彩色视网膜图像。通过软件“ ImageJ”从彩色视网膜图像中提取视网膜特征,包括小动脉和小静脉的直径,分叉系数,分叉角,分支对称性,视盘周长。还记录了其他视网膜特征,包括小动脉-小切口,出血,渗出液,小动脉闭塞和血管曲折。使用独立t检验和Chi-squire检验分别比较中风患者和非中风患者的连续和分类视网膜特征。建立了结合中风危险因素和视网膜特征的逻辑模型,将中风患者与非中风患者进行了分类。所有数据分析均采用SPSS 16.0。结果:本研究共招募了122例中风病例和122例对照。每组41例无糖尿病患者和81例糖尿病患者。两组的视网膜特征,包括小动脉和小静脉的直径,血管曲折度,出血,渗出液,小动脉-小静脉切口均显着不同。我们建立了风险模型以将中风患者与非中风患者进行分类。分类准确度最高的风险模型包括:1)中风风险因素,包括高血压,糖尿病和心房纤颤; 2)视网膜特征,包括小动脉直径,血管曲折,出血,小动脉-小静脉切迹和小静脉对称性; 3)视网膜特征之间的相互作用,包括通过小静脉对称的小动脉直径,通过出血的小动脉直径和通过血管曲折的小静脉对称。分类的准确率为80.4%。仅使用视网膜特征就可以达到74.5%的准确性。结论:彩色视网膜图像是中风风险分层的潜在工具。在视网膜图像中发现的有用特征包括血管直径,血管曲折度,血管对称性,出血,小动脉-小静脉切口。视网膜特征与中风之间的关联被其他视网膜特征所修饰。

著录项

  • 作者

    Li, Qing.;

  • 作者单位

    The Chinese University of Hong Kong (Hong Kong).;

  • 授予单位 The Chinese University of Hong Kong (Hong Kong).;
  • 学科 Health Sciences Public Health.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 157 p.
  • 总页数 157
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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