Reliable detection of eczema areas for fully automated assessment of eczema severity from digital camera images

Rahman Attar, Guillem Hurault, Zihao Wang, Ricardo Mokhtari, Kevin Pan, Bayanne Olabi, Eleanor Earp, Lloyd Steele, Hywel C. Williams, Reiko J. Tanaka
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Abstract

Assessing the severity of eczema in clinical research requires face-to-face skin examination by trained staff. Such approaches are resource-intensive for participants and staff, challenging during pandemics, and prone to inter- and intra-observer variation. Computer vision algorithms have been proposed to automate the assessment of eczema severity using digital camera images. However, they often require human intervention to detect eczema lesions and cannot automatically assess eczema severity from real-world images in an end-to-end pipeline.
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可靠的检测湿疹区域,全自动评估湿疹严重程度从数码相机图像
在临床研究中评估湿疹的严重程度需要经过培训的工作人员进行面对面的皮肤检查。这种方法对参与者和工作人员来说是资源密集型的,在大流行期间具有挑战性,而且容易出现观察员之间和观察员内部的差异。计算机视觉算法已被提出用于使用数码相机图像自动评估湿疹严重程度。然而,它们通常需要人为干预来检测湿疹病变,并且不能在端到端管道中根据真实图像自动评估湿疹严重程度。
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