Contribution to the image segmentation methods and machine-vision tracking

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In this research work, several vision-based algorithms have been proposed for automatic detection, classification and tracking of multiple mobile objects as well as for automatic detection of stationary obstacles appearing in a sequence of images taken with an overhead camera. An adaptive background subtraction technique that models each pixel as a mixture of Gaussians has been developed for motion activity detection of dynamic objects, mobile robots and human beings moving in the scene. The computational cost and the memory requirement have been considerably reduced. The classification of dynamic objects as rigid or non-rigid has been based on the homogeneity analysis of the motion field. The rigidity-based classification of dynamic objects is aimed to avoid collisions of interfering humans with mobile robots, whereas identifying stationary obstacles is aimed to prevent collisions of dynamic objects with such obstacles. The identification of stationary obstacles has been based on separating the textured background of the scene. Good results have been obtained over the image-frame sequence and the method can run in real-time on a Pentium class computer.

Autorentext

Alaa Hamdy received the B.Sc. & M.Sc. from the Faculty of Engineering of Helwan University, Cairo, Egypt in 1989 & 1996, respectively. He received the Ph.D. from the Faculty of Electrical Engineering, Poznan University of Technology, Poland in 2004. His special fields of interest, include image processing, pattern analysis, and machine vision.

Weitere Informationen

  • Allgemeine Informationen
    • Sprache Englisch
    • Herausgeber LAP LAMBERT Academic Publishing
    • Gewicht 221g
    • Untertitel of multiple objects in image-sequences
    • Autor Alaa Hamdy
    • Titel Contribution to the image segmentation methods and machine-vision tracking
    • Veröffentlichung 23.05.2011
    • ISBN 384431489X
    • Format Kartonierter Einband
    • EAN 9783844314892
    • Jahr 2011
    • Größe H220mm x B150mm x T9mm
    • Anzahl Seiten 136
    • GTIN 09783844314892

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