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基于分布式信息模糊聚类的瞳孔分割算法。

A Pupil Segmentation Algorithm Based on Fuzzy Clustering of Distributed Information.

机构信息

School of Mechatronical Engineering, Beijing Institute of Technology, Beijing 100081, China.

出版信息

Sensors (Basel). 2021 Jun 19;21(12):4209. doi: 10.3390/s21124209.

Abstract

Pupil segmentation is critical for line-of-sight estimation based on the pupil center method. Due to noise and individual differences in human eyes, the quality of eye images often varies, making pupil segmentation difficult. In this paper, we propose a pupil segmentation method based on fuzzy clustering of distributed information, which first preprocesses the original eye image to remove features such as eyebrows and shadows and highlight the pupil area; then the Gaussian model is introduced into global distribution information to enhance the classification fuzzy affiliation for the local neighborhood, and an adaptive local window filter that fuses local spatial and intensity information is proposed to suppress the noise in the image and preserve the edge information of the pupil details. Finally, the intensity histogram of the filtered image is used for fast clustering to obtain the clustering center of the pupil, and this binarization process is used to segment the pupil for the next pupil localization. Experimental results show that the method has high segmentation accuracy, sensitivity, and specificity. It can accurately segment the pupil when there are interference factors such as light spots, light reflection, and contrast difference at the edge of the pupil, which is an important contribution to improving the stability and accuracy of the line-of-sight tracking.

摘要

瞳孔分割对于基于瞳孔中心法的视线估计至关重要。由于人眼的噪声和个体差异,眼睛图像的质量通常会有所不同,这使得瞳孔分割变得困难。在本文中,我们提出了一种基于分布式信息模糊聚类的瞳孔分割方法,该方法首先对原始眼图像进行预处理,以去除眉毛和阴影等特征,突出瞳孔区域;然后引入高斯模型到全局分布信息中,以增强局部邻域的分类模糊隶属度,并提出了一种自适应局部窗口滤波器,融合局部空间和强度信息,以抑制图像中的噪声并保留瞳孔细节的边缘信息。最后,使用滤波后的图像的强度直方图进行快速聚类,以获得瞳孔的聚类中心,并使用此二值化过程对瞳孔进行分割,以进行下一步的瞳孔定位。实验结果表明,该方法具有较高的分割精度、灵敏度和特异性。即使在瞳孔边缘存在斑点、反光和对比度差异等干扰因素的情况下,也能准确地分割瞳孔,这对提高视线跟踪的稳定性和准确性有重要贡献。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7d46/8234793/41c2a631f27d/sensors-21-04209-g001.jpg

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