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Improved multi-scale line detection method for retinal blood vessel segmentation

机译:改进的视网膜血管分割多尺度线检测方法

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Changes of retinal blood vessel are precursors of many serious diseases such as diabetic retinopathy, hypertension and cardiovascular diseases. Automatic segmentation of retinal blood vessels in the fundus image can better assist in the diagnosis of these diseases and has been studied by many researchers. However, the segmentation of pale vessel pixels remains a problem because of their low contrasts with surrounding pixels. This study proposes an improved multi-scale line detector to segment retinal vessels. It computes the line responses of vessels in multi-scale windows and takes the maximum as the response value, which can enhance the responses of pale vessel pixels near strong vessels or dark background pixels. Experimental results on the publicly available database DRIVE demonstrate that the proposed method can detect pale vessel pixels better. It achieves 75.28% in sensitivity and 94.47% in accuracy, which outperforms the state-of-the-art unsupervised methods. Compared with the supervised methods it also gets better sensitivity and comparable accuracy.
机译:视网膜血管的变化是许多严重疾病的先兆,例如糖尿病性视网膜病变,高血压和心血管疾病。眼底图像中视网膜血管的自动分割可以更好地帮助诊断这些疾病,许多研究人员已经对其进行了研究。然而,由于它们与周围像素的对比度低,因此淡血管像素的分割仍然是一个问题。这项研究提出了一种改进的多尺度线检测器,以分割视网膜血管。它计算多尺度窗口中血管的线响应,并以最大值作为响应值,这可以增强强血管附近的淡血管像素或深色背景像素的响应。公开数据库DRIVE上的实验结果表明,该方法可以更好地检测苍白血管像素。它的灵敏度达到75.28%,准确度达到94.47%,超过了最新的无监督方法。与监督方法相比,它还具有更好的灵敏度和相当的准确性。

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