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Leak detection optimisation on retina fluorescein angiography images using phase stretch transform for malaria retinopathy

机译:使用相位拉伸转换技术对视网膜荧光素血管造影图像进行泄漏检测优化,以解决疟疾视网膜病变

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Malarial Retinopathy (MR) is indicated by retina alteration such as white dots occurrence which is caused by malaria. Leak detection is a key factor of MR’s early diagnosis. Inconsistent size and shape of the leakages with the colour contrast that relatively similar with the background. Leak detection’s algorithm is one of the most complex algorithms on the fundus image analysis field. Therefore, improving performance in the leakage detection is essential. This study focuses on automated leakage detection on fluorescein angiography (FA) images. The methods used in this study are vessel segmentation, saliency detection, phase stretch transform (PST), optic disk removal and leak detection to extract some features which then classified to correctly validate the leak. From 20 patient data large focal leak images with 31 leak points, 28 of them have been correctly detected. So, the experiment produced the accuracy and specificity of 0.98 and 0.9, respectively. With the proposed method of this study, there is a potential to enhance the knowledge on MR field in the future.
机译:疟疾视网膜病(MR)由视网膜变化表示,例如由疟疾引起的白点出现。泄漏检测是MR早期诊断的关键因素。泄漏的大小和形状与颜色对比不一致,与背景相对相似。泄漏检测算法是眼底图像分析领域最复杂的算法之一。因此,提高泄漏检测的性能至关重要。这项研究专注于荧光素血管造影(FA)图像的自动泄漏检测。在这项研究中使用的方法是血管分割,显着性检测,相拉伸变换(PST),视盘去除和泄漏检测以提取一些特征,然后对其分类以正确验证泄漏。从20个患者数据中,发现具有31个泄漏点的大局灶性泄漏图像,其中28个已正确检测。因此,实验得出的准确度和特异性分别为0.98和0.9。借助本研究提出的方法,将来有可能增强对MR领域的了解。

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