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Assessment of tear film surface quality using dynamic-area high-speed videokeratoscopy

机译:使用动态区域高速角膜镜检查法评估泪膜表面质量

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摘要

A new method for noninvasive assessment of tear film surface quality (TFSQ) is proposed. The method is based on high-speed videokeratoscopy in which the corneal area for the analysis is dynamically estimated in a manner that removes videokeratoscopy interference from the shadows of eyelashes but not that related to the poor quality of the precorneal tear film that is of interest. The separation between the two types of seemingly similar videokeratoscopy interference is achieved by region-based classification in which the overall noise is first separated from the useful signal (unaltered videokeratoscopy pattern), followed by a dedicated interference classification algorithm that distinguishes between the two considered interferences. The proposed technique provides a much wider corneal area for the analysis of TFSQ than the previously reported techniques. A preliminary study with the proposed technique, carried out for a range of anterior eye conditions, showed an effective behavior in terms of noise to signal separation, interference classification, as well as consistent TFSQ results. Subsequently, the method proved to be able to not only discriminate between the bare eye and the lens on eye conditions but also to have the potential to discriminate between the two types of contact lenses.
机译:提出了一种新的无创评估泪膜表面质量的方法。该方法基于高速视频角膜镜检查,其中以消除睫毛阴影的视频角膜镜检查干扰的方式动态估算用于分析的角膜面积,但与所关注的角膜前泪膜质量差无关。两种看似相似的视频角膜镜检查干扰类型之间的分离是通过基于区域的分类实现的,其中首先将总噪声与有用信号分离(未改变的视频角膜镜检查模式),然后是专用的干扰分类算法,用于区分两种考虑的干扰。所提出的技术为TFSQ的分析提供了比以前报道的技术更大的角膜面积。对一系列的前眼条件进行的这项提议技术的初步研究显示,在噪声与信号分离,干扰分类以及一致的TFSQ结果方面,其行为是有效的。随后,该方法被证明不仅能够在眼睛状况下区分裸眼和晶状体,而且还具有区分两种类型的隐形眼镜的潜力。

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