视频角膜炎图像中计算效率高的干扰检测

D. Alonso-Caneiro, D. R. Iskander, M. Collins
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引用次数: 9

摘要

一个最佳的视频透视图像呈现了一个强大的定向模式在大多数测量角膜表面。在干扰存在的情况下,由于睫毛的反射或泪膜的不稳定性,图案流受到干扰,干扰区域的局部方向不再与全局流一致。在评估泪膜表面质量、破裂时间和位置以及设计提供更准确的角膜地形图静态测量的工具时,检测和分析视频角化镜模式干扰非常重要。本文提出了一套检测视频透视图像中干涉图案的算法。首先采用频率法从取向结构中去除背景信息,然后采用梯度分析方法获得图案的取向和相干性。将提出的技术与先前报道的基于统计块归一化和Gabor滤波的方法进行了比较。结果表明,在大多数情况下,所提出的技术导致了一个更好的视频角化干扰检测系统,对于给定的有用信号检测概率(99.7%),虚警概率显着降低,同时计算效率比先前报道的方法高得多。
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Computationally efficient interference detection in videokeratoscopy images
An optimal videokeratoscopic image presents a strong well-oriented pattern over the majority of the measured corneal surface. In the presence of interference, arising from reflections from eyelashes or tear film instability, the patternpsilas flow is disturbed and the local orientation of the area of interference is no longer coherent with the global flow. Detecting and analysing videokeratoscopic pattern interference is important when assessing tear film surface quality, break-up time and location as well as designing tools that provide a more accurate static measurement of corneal topography. In this paper a set of algorithms for detecting interference patterns in videokeratoscopic images is presented. First a frequency approach is used to subtract the background information from the oriented structure and then a gradient-based analysis is used to obtain the patternpsilas orientation and coherence. The proposed techniques are compared to a previously reported method based on statistical block normalisation and Gabor filtering. The results indicate that the proposed technique leads, in most cases: to a better videokeratoscopic interference detection system, that for a given probability of the useful signal detection (99.7%) has a significantly lower probability of false alarm, and at the same time is computationally much more efficient than the previously reported method.
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