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Statistics-based Classification Approach for Hyperspectral Dermatologic Data Processing

机译:基于统计学的高光谱皮肤病学数据处理的分类方法

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Hyperspectral Imaging (HSI) for dermatology applications lacks a physical model to differentiate between cancerous or non-cancerous pigmented skin lesions. In this paper the statistical properties of a set of HSI data are exploited as an alternative to this limitation. The hyperspectral dermatologic database employed in the experiments is composed by 40 noncancerous and 36 cancerous pigmented skin lesions (PSLs) obtained from 61 patients. The preliminary experiments suggest the potential of a simple statistics metrics, such as the coefficient of variation, to distinguish between cancerous and non-cancerous PSLs using hyperspectral data. A sensitivity result of 100% was achieved in the test set providing an overall accuracy classification of 80%.
机译:皮肤病学应用的高光谱成像(HSI)缺乏物理模型,以区分癌症或非癌性皮肤病变。在本文中,一组HSI数据的统计特性被利用作为这种限制的替代品。实验中使用的高光谱皮肤病学患者由来自61例患者的40名非癌症和36种癌癌癌皮肤病变(PSL)组成。初步实验表明,潜在的统计指标,例如变异系数,以区分癌症和非癌性PSL使用超细数据。在试验组中实现了100%的灵敏度结果,提供了80%的整体精度分类。

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