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Identification of acne lesions, scars and normal skin for acne vulgaris cases

机译:用于痤疮寻常症病例的痤疮病变,疤痕和正常皮肤的鉴定

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Acne affects 85% of adolescents at some time during their lives. There are various causes for acne including genetic, hormonal, sebaceous activity, bacteria, climate, chemical and psychological. Till now, dermatologists use manual methods such as direct visual assessment and ordinary flash photography to assess the acne. These methods are very time consuming and tedious. To address these issues, researchers in recent years have proposed computational imaging methods for aiding in the acne diagnosis. This paper proposes an algorithm to identify acne lesions, scars and normal skin features from photographs taken by Digital Single-Lens Reflex (DSLR) cameras. The images are converted from RGB to CIELAB color space, thresholded to three clusters and segmented using minimum Euclidean distance. The segmentation results from randomly selected images show sensitivity and specificity of greater than 80%.
机译:痤疮在他们生命期间的一段时间影响了85%的青少年。痤疮有各种原因,包括遗传,激素,皮脂活性,细菌,气候,化学和心理。到目前为止,皮肤科医生使用手动方法,如直视视觉评估和普通闪光摄影,以评估痤疮。这些方法非常耗时和繁琐。为了解决这些问题,近年来的研究人员提出了用于帮助痤疮诊断的计算成像方法。本文提出了一种鉴定数字单镜头反射(DSLR)摄像机拍摄的照片痤疮病变,疤痕和正常皮肤特征的算法。图像从RGB转换为Cielab颜色空间,阈值为三个集群并使用最小欧几里德距离分段。随机选择的图像的分割结果显示大于80%的敏感性和特异性。

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