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Assessment of the repeatability in an automatic methodology for hyperemia grading in the bulbar conjunctiva

机译:球结膜充血分级自动方法的重复性评估

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When the vessels of the bulbar conjunctiva get congested with blood, a characteristic red hue appears in the area. This symptom is known as hyperemia, and can be an early indicator of certain pathologies. Therefore, a prompt diagnosis is desirable in order to minimize both medical and economic repercussions. A fully automatic methodology for hyperemia grading in the bulbar conjunctiva was developed, by means of image processing and machine learning techniques. As there is a wide range of illumination, contrast, and focus issues in the images that specialists use to perform the grading, a repeatability analysis is necessary. Thus, the validation of each step of the methodology was performed, analyzing how variations in the images are translated to the results, and comparing them to the optometrist's measurements. Our results prove the robustness of our methodology to various conditions. Moreover, the differences in the automatic outputs are similar to the optometrist's ones.
机译:当球结膜的血管充血时,该区域会出现特征性的红色调。这种症状称为充血,可以作​​为某些病理的早期指标。因此,期望迅速诊断以便最小化医学和经济影响。通过图像处理和机器学习技术,开发了一种用于球结膜充血分级的全自动方法。由于专家用来进行分级的图像中存在广泛的照明,对比度和焦点问题,因此需要进行重复性分析。因此,对方法的每个步骤进行了验证,分析了图像中的变化如何转换为结果,并将其与验光师的测量结果进行了比较。我们的结果证明了我们的方法在各种条件下的鲁棒性。此外,自动输出的差异与验光师的相似。

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