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An optimal voting scheme for microaneurysm candidate extractors using simulated annealing

机译:用于使用模拟退火的微安患者候选提取器的最佳投票方案

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In this paper, we present a novel approach to improve microaneurysm candidate extraction in color fundus images. The individual algorithms published so far can be hardly considered in an automatic screening system. To improve further the sensitivity, specificity and image classification rate of microaneurysm detection, we propose an appropriate combination of individual algorithms. Thus, we investigate the detection of microaneurysms through the following phases: first, we use different approaches to extract microaneurysm candidates. Then, we select candidates voted by a sufficient number of the candidate extractor algorithms. The optimal number of votes and participating algorithms are determined by a simulated annealing algorithm. Finally, we classify the candidates with a machine-learning based approach by following the current literature recommendations. Our framework improves the positive likelihood ratio for the microaneurysms and outperforms both the state-of-the-art individual candidate extractors and microaneurysm detectors in these terms.
机译:在本文中,我们提出了一种新的方法来改善彩色眼镜图像中的微安患者候选提取。到目前为止发布的个体算法可以在自动筛选系统中难以考虑。为了进一步提高微内塞检测的敏感性,特异性和图像分类率,我们提出了一种适当的单个算法组合。因此,我们通过以下阶段调查微安瘤的检测:首先,我们使用不同的方法来提取微安患者候选人。然后,我们选择通过足够数量的候选提取器算法投票的候选者。投票数和参与算法的最佳数量由模拟退火算法确定。最后,我们通过遵循当前的文献建议,将候选人与基于机器学习的方法进行分类。我们的框架在这​​些术语中提高了微安瘤的正面似然比,优于最先进的个人候选提取器和微安肌肤探测器。

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