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An Unsupervised Approach for Eye Sclera Segmentation

机译:一种无人监督的眼科分割方法

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We present an unsupervised sclera segmentation method for eye color images. The proposed approach operates on a visible spectrum RGB eye image and does not require any prior knowledge such as eyelid or iris center coordinate detection. The eye color input image is enhanced by an adaptive histogram normalization to produce a gray level image in which the sclera is highlighted. A feature extraction process is involved both in the image binarization and in the computation of scores to assign to each connected components of the foreground. The binarization process is based on clustering and adaptive thresholding. Finally, the selection of foreground components identifying the sclera is performed on the analysis of the computed scores and of the positions between the foreground components. The proposed method was ranked 2nd in the Sclera Segmentation and Eye Recognition Benchmarking Competition (SSRBC 2017), providing satisfactory performance in terms of precision.
机译:我们提出了一种针对眼睛彩色图像的无人监督的巩膜分段方法。该方法在可见频谱RGB眼图像上运行,不需要任何现有知识,例如眼睑或虹膜中心坐标检测。通过自适应直方图归一化来增强眼睛颜色输入图像,以产生灰度级图像,其中突出显示巩膜。特征提取过程涉及图像二值化和分数计算以分配给前景的每个连接组件。二值化过程基于聚类和自适应阈值。最后,对识别Sclera的前景组件的选择是对计算得分的分析和前景组件之间的位置进行的。该方法在巩膜分割和眼睛识别基准竞争中排名第2(SSRBC 2017),在精度方面提供令人满意的性能。

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