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Automatic method for the dermatological diagnosis of selected hand skin features in hyperspectral imaging

机译:高光谱成像中所选手部皮肤特征皮肤病学诊断的自动方法

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Introduction Hyperspectral imaging has been used in dermatology for many years. The enrichment of hyperspectral imaging with image analysis broadens considerably the possibility of reproducible, quantitative evaluation of, for example, melanin and haemoglobin at any location in the patient's skin. The dedicated image analysis method proposed by the authors enables to automatically perform this type of measurement. Material and method As part of the study, an algorithm for the analysis of hyperspectral images of healthy human skin acquired with the use of the Specim camera was proposed. Images were collected from the dorsal side of the hand. The frequency λ of the data obtained ranged from 397 to 1030?nm. A total of 4'000 2D images were obtained for 5 hyperspectral images. The method proposed in the paper uses dedicated image analysis based on human anthropometric data, mathematical morphology, median filtration, normalization and others. The algorithm was implemented in Matlab and C programs and is used in practice. Results The algorithm of image analysis and processing proposed by the authors enables segmentation of any region of the hand (fingers, wrist) in a reproducible manner. In addition, the method allows to quantify the frequency content in different regions of interest which are determined automatically. Owing to this, it is possible to perform analyses for melanin in the frequency range λE∈(450,600) nm and for haemoglobin in the range λH∈(397,500) nm extending into the ultraviolet for the type of camera used. In these ranges, there are 189 images for melanin and 126 images for haemoglobin. For six areas of the left and right sides of the little finger (digitus minimus manus), the mean values of melanin and haemoglobin content were 17% and 15% respectively compared to the pattern. Conclusions The obtained results confirmed the usefulness of the proposed new method of image analysis and processing in dermatology of the hand as it enables reproducible, quantitative assessment of any fragment of this body part. Each image in a sequence was analysed in this way in no more than 100?ms using Intel Core i5 CPU M460 @2.5 GHz 4 GB RAM.
机译:简介高光谱成像已在皮肤病学中使用了很多年。利用图像分析对高光谱成像进行富集,大大扩展了可重复,定量评估患者皮肤任何位置的黑色素和血红蛋白的可能性。作者提出的专用图像分析方法可以自动执行这种类型的测量。材料和方法作为研究的一部分,提出了一种使用Specim相机获取的分析健康人皮肤高光谱图像的算法。从手背侧收集图像。获得的数据的频率λ在397至1030μnm的范围内。对于5个高光谱图像,总共获得了4000张2D图像。本文提出的方法使用了基于人体测量数据,数学形态学,中值滤波,归一化等的专用图像分析。该算法在Matlab和C程序中实现,并在实践中使用。结果作者提出的图像分析和处理算法可以以可重现的方式分割手的任何区域(手指,手腕)。另外,该方法允许量化自动确定的不同感兴趣区域中的频率含量。因此,可以对λ E ∈(450,600)nm范围内的黑色素和λ H ∈(397,500)nm范围内的血红蛋白进行分析扩展到适用于所用相机类型的紫外线。在这些范围内,黑色素有189张图像,血红蛋白有126张图像。在小指的左侧和右侧六个区域(小指骨),与该模式相比,黑色素和血红蛋白含量的平均值分别为17%和15%。结论所获得的结果证实了所提出的手部皮肤病学图像分析和处理新方法的实用性,因为该方法能够对身体任何部位的碎片进行可再现,定量的评估。使用Intel Core i5 CPU M460 @ 2.5 GHz 4 GB RAM,以不超过100?ms的方式分析序列中的每个图像。

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