首页> 外文期刊>British journal of ophthalmology >Automated, real time extraction of fundus images from slit lamp fundus biomicroscope video image sequences.
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Automated, real time extraction of fundus images from slit lamp fundus biomicroscope video image sequences.

机译:从裂隙灯眼底生物显微镜视频图像序列中自动实时提取眼底图像。

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AIMS: Slit lamp fundus biomicroscopy allows for high magnification, stereoscopic diagnosis, and treatment of macular diseases. Variable contrast, narrow field of view, and specular reflections arising from the cornea, sclera, and examining lens reduce image quality; these images are of limited clinical utility for diagnosis, treatment planning, and photodocumentation when compared with fundus camera images. Algorithms are being developed to segment fundus imagery from slit lamp biomicroscopic video image sequences in order to improve clinical utility. METHODS: Video fundus image sequences of human volunteers were acquired with a video equipped, Nikon NS-1V slit lamp biomicroscope. Custom developed software identified specular reflections based on brightness and colour content, and extracted the illuminated fundus image based on colour image analysis and size constraints. RESULTS: In five subjects with variable image quality, the approach allowed for automatic, robust, accurate extraction of that portion of the video image corresponding to the illuminated portion of the fundus. Non-real time analysis allowed for fundus image segmentation for each frame of the image sequence. In real time, segmentation occurs at 2 Hz, and improvements are being implemented for video rate performance. CONCLUSIONS: Computer vision algorithms allow for real time extraction of fundus imagery from marginal quality, slit lamp fundus biomicroscope image sequences.
机译:目的:裂隙灯眼底生物显微镜可以高倍放大,立体诊断和治疗黄斑疾病。可变的对比度,狭窄的视野以及来自角膜,巩膜和检查镜的镜面反射会降低图像质量;与眼底照相机图像相比,这些图像在诊断,治疗计划和照相记录方面的临床用途有限。正在开发从裂隙灯生物显微视频图像序列中分割眼底图像的算法,以提高临床效用。方法:使用配备有视频的尼康NS-1V裂隙灯生物显微镜获取人类志愿者的视频眼底图像序列。定制开发的软件根据亮度和颜色含量确定镜面反射,并根据彩色图像分析和尺寸约束提取照明的眼底图像。结果:在五名具有可变图像质量的对象中,该方法允许自动,鲁棒,准确地提取视频图像对应于眼底照明部分的那部分。非实时分析允许对图像序列的每一帧进行眼底图像分割。实时地,分段以2 Hz的频率发生,并且正在为视频速率性能进行改进。结论:计算机视觉算法允许从边缘质量,裂隙灯眼底生物显微镜图像序列中实时提取眼底图像。

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