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基于计算机的畸形面容识别。

Computer-based recognition of dysmorphic faces.

作者信息

Loos Hartmut S, Wieczorek Dagmar, Würtz Rolf P, von der Malsburg Christoph, Horsthemke Bernhard

机构信息

Institut für Neuroinformatik, Ruhr-Universität Bochum, Germany.

出版信息

Eur J Hum Genet. 2003 Aug;11(8):555-60. doi: 10.1038/sj.ejhg.5200997.

Abstract

Genetic syndromes often involve craniofacial malformations. We have investigated whether a computer can recognize disease-specific facial patterns in unrelated individuals. For this, 55 photographs (256 x 256 pixel) of patients with mucopolysaccharidosis type III (n=6), Cornelia de Lange (n=12), fragile X (n=12), Prader-Willi (n=12), and Williams-Beuren (n=13) syndromes were preprocessed by a Gabor wavelet transformation. By comparing the feature vectors at 32 facial nodes, 42/55 (76%) of the patients were correctly classified. In another four patients (7%), the correct and an incorrect diagnosis scored equally well. Clinical geneticists who were shown the same photographs achieved a recognition rate of 62%. Our results prove that certain syndromes are associated with a specific facial pattern and that this pattern can be described in mathematical terms.

摘要

遗传综合征常常涉及颅面畸形。我们研究了计算机是否能够识别无关个体中特定疾病的面部模式。为此,对患有Ⅲ型黏多糖贮积症(n = 6)、科妮莉亚·德朗格综合征(n = 12)、脆性X综合征(n = 12)、普拉德-威利综合征(n = 12)和威廉斯-贝伦综合征(n = 13)的患者的55张照片(256×256像素)进行了伽柏小波变换预处理。通过比较32个面部节点处的特征向量,42/55(76%)的患者被正确分类。另外4名患者(7%)的正确诊断和错误诊断得分相同。看过相同照片的临床遗传学家的识别率为62%。我们的结果证明,某些综合征与特定的面部模式相关,并且这种模式可以用数学术语来描述。

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