DocumentCode
116883
Title
Real time static/dynamic obstacle detection for visually impaired persons
Author
Tapu, Ruxandra ; Mocanu, Bogdan ; Zaharia, T.
Author_Institution
ARTEMIS Dept., IT/Telecom SudParis, Evry, France
fYear
2014
fDate
10-13 Jan. 2014
Firstpage
394
Lastpage
395
Abstract
In this paper we introduce a novel framework for detecting static/moving obstacles in order to assist visually impaired/blind persons to navigate safely. Firstly, a set of interest points is extracted base on an image grid and tracked using the multiscale Lucas - Kanade algorithm. Next, the camera/background motion is determined through a set of homographic transforms, estimated by recursively applying the RANSAC algorithm on the interest point correspondence while other types of movements are identified using an agglomerative clustering technique. Finally, obstacles are classified as urgent/normal based on their distance to the subject and motion vectors orientation. The experimental results performed on various challenging scenes demonstrate that our approach is effective in videos with important camera movement, including noise and low resolution data.
Keywords
feature extraction; handicapped aids; motion estimation; object detection; object tracking; pattern clustering; recursive estimation; video cameras; RANSAC algorithm; agglomerative clustering technique; blind persons; camera movement; camera-background motion; homographic transforms; image grid; interest point extraction; low resolution data; motion vector estimation; motion vector orientation; multiscale Lucas-Kanade algorithm; random sample consensus algorithm; real-time static-dynamic obstacle detection; static-moving obstacle detection; visually impaired persons; Cameras; Classification algorithms; Estimation; Real-time systems; Robustness; Tracking; Videos;
fLanguage
English
Publisher
ieee
Conference_Titel
Consumer Electronics (ICCE), 2014 IEEE International Conference on
Conference_Location
Las Vegas, NV
ISSN
2158-3994
Print_ISBN
978-1-4799-1290-2
Type
conf
DOI
10.1109/ICCE.2014.6776055
Filename
6776055
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