利用前向链和Viola Jones算法检测翼状胬肉

Umu Hanifah, Purba Daru Kusuma, C. Setianingsih
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引用次数: 6

摘要

视力是人类生命中最重要的感官之一。因为只有用我们的眼睛,我们才能看到和知道发生在我们周围的情况和条件。如果我们的眼睛出现问题或紊乱,那么我们会感到不舒服,有几种疾病会降低视力质量,并可能导致失明。在这个项目中,笔者将根据患者的早期症状,对翼状胬肉眼病进行检测,了解患者翼状胬肉病的严重程度和不同程度。用于确定翼状胬肉疾病级别的阶段是通过使用前向链接方法填充患者在应用程序中的所有症状,并使用维奥拉琼斯算法的图像分割过程。使用本应用程序处理过的Viola Jones算法的结果,通过测试50张图像,检测到的图像结果为38张图像,准确率为76%,此外还有一些未检测到的图像和未检测到的图像。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detection of Pterygium Disease Using Forward Chaining and Viola Jones Algorithm
Eyesight is one of the most important senses for human life. Because only with our eyes, we can see and know the situations and conditions that occur around us. If there are problems or disorders that happen in our eyes, then we will feel uncomfortable and there are several diseases that can reduce the quality of vision and can cause blindness. In this project the author will be make an application to detect Pterygium eye disease based on the early symptoms that have been felt by the patient and find out how severely the patient affected by Pterygium disease with different levels. The stages used to determine the level of Pterygium disease is by filling all the symptoms by the patient in the application using Forward Chaining method and using an image segmentation process with Viola Jones Algorithm. The results of using the Viola Jones algorithm that have been processed using this application have an accuracy rate of 76% by testing 50 images and the results of the images detected are 38 images, in addition there are some images that are not detected and there are some images that are not detected.
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