Detecting eyes in digital images

D. R. Iskander, Siegfried Mioschek, Martin Trunk, W. Werth
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引用次数: 8

Abstract

Detecting eyes in digital images taken in a variety of natural lighting conditions is not a straightforward task. Great difficulties are experienced when one attempts to employ traditional methods such as the Radon or Hough transforms. They appear to be not robust enough to perform the detection task in images that include blur, speckles, or a reflection in the pupil or iris areas. Also, in some practical applications these techniques are not computationally efficient. We propose a simple quadruple axis spatial-domain-based symmetry indicator for detecting circularly symmetric objects in digital images. The proposed detector is an inherent part of a larger system for estimating 2D characteristics of the human eye. The efficacy of the proposed technique versus a frequency domain energy detector has been evaluated using artificial images. It has been shown that the proposed method outperforms the energy-based detector for moderate levels of noise. Also, the method appears to be more robust than its frequency domain counterpart and correctly detects the eye in a wide variety of images. An application of the detector to clinical assessment and patient diagnosis in optometry is provided.
在数字图像中检测眼睛
在各种自然光线条件下拍摄的数字图像中检测眼睛并不是一项简单的任务。当人们试图采用传统的方法,如拉东变换或霍夫变换时,会遇到很大的困难。在包含模糊、斑点或瞳孔或虹膜区域反射的图像中,它们似乎不够健壮,无法执行检测任务。此外,在一些实际应用中,这些技术的计算效率不高。我们提出了一种简单的四轴空间域对称指示器,用于检测数字图像中的圆对称物体。所提出的检测器是用于估计人眼二维特征的更大系统的固有部分。所提出的技术与频率域能量检测器的有效性已经使用人工图像进行了评估。结果表明,该方法在中等噪声水平下优于基于能量的检测器。此外,该方法似乎比其频域对应物更健壮,并在各种各样的图像中正确地检测眼睛。介绍了该检测器在验光临床评估和患者诊断中的应用。
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