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Ear Structure Feature Extraction Based on Multi-scale Hessian Matrix

초록

영어

In this paper, a new ear anatomy feature edge extraction method based on Hessian matrix is proposed. Stable edge is obtained from principal curvature image across scale space. Firstly, the side face image that includes an ear is filtered and forms Gaussian pyramid. Secondly, the 2D gray image in the pyramid was regarded as a surface, maximum and minimum principal curvature and their direction were calculated by using Hessian matrix, and principal curvature image was formed. The characteristic of surface is that gray level changes in edge area is sharp and the curvature is larger compared to that of the smooth area. In accordance with this characteristic, automatic hysteresis thresholding based on curvature direction flow is used to segment curvature images. Lastly, combine different scale threshold images to get the feature edge image. The experiments demonstrate that extracted feature edge is smooth and connected. New method is robust to noise, and is sensitive to the weak edge, using Hausdorff distance as similarity measurement of two edge images can obtain above 96% recognition rate.

목차

Abstract
 1. Introduction
 2. Algorithm Description
  2.1 The principal Curvature Image Determined by Hessian Matrix
  2.2 Automatic Thresholding
 3. Experimental Results and Analysis
  3.1 Image Sources and pretreatment
  3.2 Classification and Recognition
 4. Conclusion
 References

저자정보

  • Ma Chi School of Computer & Communication Engineering, University of Science and Technology Beijing, Beijing, China, College of Software, University of Science and Technology LiaoNing, Anshan, China, Beihai Yinhe Industry Investment Co.,Ltd., Beihai, China
  • Ban Xiaojuan School of Computer & Communication Engineering, University of Science and Technology Beijing, Beijing, China
  • Wang Guosheng Beihai Yinhe Industry Investment Co.,Ltd., Beihai, China
  • Tian Ying College of Software, University of Science and Technology LiaoNing, Anshan, China

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