DocumentCode :
2658157
Title :
Edge detection through cooperation and competition
Author :
Moura, Lincoin ; Martins, Fernando C M
Author_Institution :
Sao Paulo Univ., Brazil
fYear :
1991
fDate :
18-21 Nov 1991
Firstpage :
2588
Abstract :
The system presented is an edge detector based on a simplified vertebrate retina model and on a constraint-satisfaction neural network implementation. The objective of this system is to produce long image-correlated edge segments. From a functional point of view a simplified vertebrate retina can be seen as a three-layer network. Light is received and encoded by the first layer, the image features are extracted by the second layer, and motion analysis is performed by the last layer. In the first layer, the image intensity gradient magnitude and direction evaluation are performed by the Sobel operator over the smoothed image. In the second layer, a competition and cooperation process is defined and executed in order to suppress noise effects and determine the relevant features. The feature extraction task model is composed of two synchronous subtasks, and is implemented by a constraint-satisfaction neural network. The model was simulated on a SUN-SPARC with four kinds of images. The edge segments generated by the competition and cooperation process are longer and thinner than the results of traditional edge detectors
Keywords :
neural nets; pattern recognition; picture processing; SUN-SPARC; Sobel operator; competition; constraint-satisfaction neural network implementation; cooperation; direction evaluation; edge detection; edge segments; feature extraction; image encoding; image intensity gradient magnitude; light encoding; light reception; long image-correlated edge segments; motion analysis; noise effect suppression; smoothed image; synchronous subtasks; three-layer network; vertebrate retina model; Detectors; Distributed processing; Feature extraction; Image coding; Image edge detection; Image processing; Image segmentation; Neural networks; Retina; Smoothing methods;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Neural Networks, 1991. 1991 IEEE International Joint Conference on
Print_ISBN :
0-7803-0227-3
Type :
conf
DOI :
10.1109/IJCNN.1991.170779
Filename :
170779
Link To Document :
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