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An improved algorithm based on convolution dynamic multi-parameter template for microaneurysms detection

机译:基于卷积动态多参数模板的改进算法,用于微安瘤检测

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Diabetic Retinopathy (DR) is a serious diabetic complication which may lead to new-onset blindness or visual injury. As the smallest lesions and the earliest sign that can be observed, the screening and localization of MAs is especially important for the diabetes diagnose of early lesions. In this paper, a combination of algorithms is proposed to detect MAs accurately. In the proposed algorithm, a primary candidate set will be detected by using the convolution dynamic multiparameter template (CDMPT) matching scheme and then uses a Random Forest to obtain true MA classification from the candidate set. In this work, the proposed algorithm is tested on a public dataset. The experimental results validate the effectiveness of the new algorithm.
机译:糖尿病视网膜病变(DR)是一种严重的糖尿病并发症,可能导致新发病的失明或视觉损伤。作为最小的病变和可以观察到的最早的标志,MA的筛查和定位对于早期病变的糖尿病诊断尤为重要。在本文中,提出了算法的组合来准确地检测MAS。在所提出的算法中,将通过使用卷积动态多级计模板(CDMPT)匹配方案来检测主候选集,然后使用随机林来从候选集获得真实MA分类。在这项工作中,在公共数据集上测试了所提出的算法。实验结果验证了新算法的有效性。

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