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Impact of geometry and viewing angle on classification accuracy of 2D based analysis of dysmorphic faces

Tobias Vollmar, Baerbel Maus, Rolf P. Wurtz, Gabriele Gillessen-Kaesbach, Bernhard Horsthemke, Dagmar Wieczorek, Stefan Boehringer*

*Korrespondierende/r Autor/-in für diese Arbeit

Abstract

Digital image analysis of faces has been demonstrated to be effective in a small number of syndromes. In this paper we investigate several aspects that help bringing these methods closer to clinical application. First, we investigate the impact of increasing the number of syndromes from 10 to 14 as compared to an earlier study. Second, we include a side-view pose into the analysis and third, we scrutinize the effect of geometry information. Picture analysis uses a Gabor wavelet transform, standardization of landmark coordinates and subsequent statistical analysis. We can demonstrate that classification accuracy drops from 76% for 10 syndromes to 70% for 14 syndromes for frontal images. Including side-views achieves an accuracy of 76% again. Geometry performs excellently with 85% for combined poses. Combination of wavelets and geometry for both poses increases accuracy to 93%. In conclusion, a larger number of syndromes can be handled effectively by means of image analysis.

OriginalspracheEnglisch
ZeitschriftEuropean Journal of Medical Genetics
Jahrgang51
Ausgabenummer1
Seiten (von - bis)44-53
Seitenumfang10
ISSN1769-7212
DOIs
PublikationsstatusVeröffentlicht - 01.01.2008

Fördermittel

We thank all patients who took part in the study. We thank Stella Sinigerova for helping with labeling. This study was supported by DFG grants BO 1955/2-1, WU 314/2-1 and IFORES grant 107-05860, 107-02270.

UN SDGs

Dieser Output leistet einen Beitrag zu folgendem(n) Ziel(en) für nachhaltige Entwicklung

  1. SDG 3 – Gesundheit und Wohlergehen
    SDG 3 – Gesundheit und Wohlergehen

Strategische Forschungsbereiche und Zentren

  • Querschnittsbereich: Medizinische Genetik

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