应用神经网络对人指甲早期疾病的无创诊断

A. V. Venkataranganathan, R. Hariharan, M. Roopa
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引用次数: 8

摘要

对人的手指甲进行分析,以在早期阶段发现许多疾病。在医疗保健领域,调查一个人的手指甲颜色有助于疾病诊断。在这种情况下,所提出的系统有助于疾病的预后,其中系统的输入是人类指甲的照片。人类指甲具有多种特征,提出的系统识别指甲颜色变化的特征,以识别疾病。初始训练集使用open cv工具构建,使用具有一定条件的人的照片。为了得到结果,从采集的指甲图像中提取的特征与训练数据集进行计算。使用指甲图像的颜色特征,发现平均65%的结果与训练集数据适当匹配。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Non-invasive Diagnosis of Early Stage Diseases through human nail using Neural Networks
The human hand nail is analysed to detect numerous disorders at an early stage. In the healthcare area, the investigation of a person's hand nail colour assists in illness diagnosis. In such a setting, the proposed system assists in the prognosis of disease, where the system’s input is a photograph of a human nail. The human nail possesses a variety of characteristics, and the proposed system discerns the characteristic of nail colour variations for the identification of disease. The initial training set is constructed using the open cv tool, using photos of people with certain conditions. To obtain the result, the feature extracted from the acquired image of nail is computed with the training dataset. Using the colour feature of nail images, it is discovered that on average, 65 percent of results appropriately match to the training set data.
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