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通过眼周图像分类评估眼部按摩疗法的有效性。

Evaluation of effectiveness of eye massage therapy via classification of periocular images.

作者信息

Zheng Xiao-Ben, Ling Bingo Wing-Kuen, Zeng Zhi-Tao

机构信息

School of Information Engineering, Guangdong University of Technology, Guangzhou, 510006 China.

Bella (Guangzhou) Intelligent Information Technology Company Limited, Guangzhou, 510006 China.

出版信息

Multimed Tools Appl. 2022;81(4):5743-5760. doi: 10.1007/s11042-021-11789-w. Epub 2021 Dec 29.

Abstract

This paper proposes a method to evaluate the effectiveness of the eye message therapy. The existing methods are via the diagnoses conducted by the medical professions based on the measurements acquired by the optical instruments. However, this approach is very expensive. To address this issue, this paper performs the classification between the periocular images taken before performing the eye massage therapy and those after performing the eye massage therapy to address the above difficulty. First, the median filtering is used to suppress the solitary point noise with preserving the edges of the image without causing the significant blurring. Then, the Canny operator is employed to accurately locate the edges. Next, the circle Hough transform (CHT) is used for performing the iris segmentation. Finally, various classifiers are used to perform the classification. The computer numerical simulation results show that our proposed method can achieve the high classification accuracies. This implies that there is a significant difference on the iris before performing the eye massage therapy and after performing the eye massage therapy. In addition, the comparisons with the state of art Daugman method have been performed. It is found that the classification performance achieved by the CHT based method is better than those achieved by the Daugman method.

摘要

本文提出了一种评估眼部信息疗法有效性的方法。现有的方法是通过医学专业人员根据光学仪器获取的测量结果进行诊断。然而,这种方法非常昂贵。为了解决这个问题,本文对眼部按摩疗法实施前和实施后的眼周图像进行分类,以解决上述难题。首先,使用中值滤波来抑制孤立点噪声,同时保留图像边缘而不造成明显模糊。然后,采用Canny算子精确地定位边缘。接下来,使用圆形霍夫变换(CHT)进行虹膜分割。最后,使用各种分类器进行分类。计算机数值模拟结果表明,我们提出的方法能够实现较高的分类准确率。这意味着在实施眼部按摩疗法之前和之后,虹膜存在显著差异。此外,还与当前最先进的Daugman方法进行了比较。结果发现,基于CHT的方法所实现的分类性能优于Daugman方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/5453/8714457/f59840b16265/11042_2021_11789_Fig1_HTML.jpg

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