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A medical decision support system based on Gabor fisher classifier for evaluation of Down syndrome affecteds

机译:基于Gabor Fisher分类器的医学决策支持系统,用于唐氏综合症患者的评估

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Today, one of the most frequently encountered dysmorphic diseases, Down syndrome, includes different findings belonging to the face. Early diagnosis of Down syndrome is vital for individual's further life. The databases, which were benefited by making comparisons on pre-diagnosis of Down syndrome, are not objective as doctor's experiences come into prominence. To speed up pre-diagnosis and eliminate subjectivity, computer-assisted objective methods are needed. In this research, belonging to children's pictures with Down syndrome and normal operation of two separate groups are tried to distinguish on database groups. As feature, filter responses obtained as a result of Gabor Wavelet Transform (GWT) are used. Dimension reduction is provided with Principal Component Analysis (PCA) and Linear Discriminant Analysis (LDA) on the reaching higher dimension feature vectors. Classification process was carried out with kth Nearest Neighbor (kNN) and Support Vector Machines (SVM) which has been successfully used in pattern recognition applications.
机译:如今,唐氏综合症是最常见的畸形疾病之一,它包含与面部有关的不同发现。唐氏综合症的早期诊断对于个人的进一步生活至关重要。通过对唐氏综合症的预诊断进行比较而受益的数据库并不客观,因为医生的经验日益突出。为了加快预诊断并消除主观性,需要计算机辅助的客观方法。在这项研究中,尝试将属于唐氏综合症的儿童图片和两个独立组的正常操作区分开数据库组。作为特征,使用了通过Gabor小波变换(GWT)获得的滤波器响应。主成分分析(PCA)和线性判别分析(LDA)提供了降维功能,以达到更高的维数特征向量。分类过程是使用第k个最近邻(kNN)和支持向量机(SVM)进行的,该方法已成功应用于模式识别应用中。

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