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Plaque psoriasis diagnosis model with dominant pixel gradation from primary color space

机译:来自原色空间的具有主导像素灰度的斑块牛皮癣诊断模型

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In dermatology, characteristics of the "ABCD" information are useful features used by the expert domain in their morphological learning method for skin lesion identification. With the advancement of the computer vision technology, not only these features can be quantified in the digital image restoration and enhancement but also can be as input parameters for an intelligent diagnosis system. In this paper, clinical psoriasis lesion images are processed to produce the dominant pixel gradation indices in the primary color model. These reflectance indices gained under controlled environment are then used to design a ANN diagnosis model for plaque. The optimized model is evaluated and validated through analysis of the performance indicators regularly applied in medical research. Findings in this work have shown that the model has produced 75% in diagnostic accuracy with more than 80% achievement for both sensitivity and specificity.
机译:在皮肤病学中,“ ABCD”信息的特征是专家领域在其形态学学习方法中用于皮肤病变识别的有用特征。随着计算机视觉技术的进步,不仅可以在数字图像的恢复和增强中量化这些特征,而且可以将其作为智能诊断系统的输入参数。在本文中,对临床牛皮癣病变图像进行处理,以在原色模型中生成占主导地位的像素灰度指数。然后,在受控环境下获得的这些反射率指标可用于设计斑块的ANN诊断模型。通过对医学研究中经常应用的性能指标进行分析,可以评估和验证优化后的模型。这项工作的发现表明,该模型已产生了75%的诊断准确性,而敏感性和特异性均超过80%。

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