DocumentCode :
1034714
Title :
PsyCOP-a psychologically motivated connectionist system for object perception
Author :
Bas, Jayanta ; Pal, Sankar K.
Author_Institution :
Machine Intelligence Unit, Indian Stat. Inst., Calcutta, India
Volume :
6
Issue :
6
fYear :
1995
fDate :
11/1/1995 12:00:00 AM
Firstpage :
1337
Lastpage :
1354
Abstract :
A connectionist system has been designed for learning and simultaneous recognition of flat industrial objects (based an the concepts of conventional and structured connectionist computing) by integrating the psychological hypotheses with the generalized Hough transform technique. The psychological facts include the evidence of separation of two regions for identification (“what it is”) and pose estimation (“where it is”). The system uses the mechanism of selective attention for initial hypotheses generation. A special two-stage training paradigm has been developed for learning the structural relationships between the features and objects and the importance values of the features with respect to the objects. The performance of the system has been demonstrated on real-life data both for single and mixed (overlapped) instances of object categories. The robustness of the system with respect to noise and false alarming has been theoretically investigated
Keywords :
Hough transforms; heuristic programming; image recognition; neural nets; object recognition; PsyCOP; connectionist system; flat industrial object recognition; generalized Hough transform technique; identification; initial hypotheses generation; learning; object perception; pose estimation; psychological hypotheses; robustness; selective attention; structural relationships; two-stage training paradigm; Artificial intelligence; Computer industry; Computer networks; Computer vision; Labeling; Layout; Neural networks; Noise robustness; Object recognition; Psychology;
fLanguage :
English
Journal_Title :
Neural Networks, IEEE Transactions on
Publisher :
ieee
ISSN :
1045-9227
Type :
jour
DOI :
10.1109/72.471373
Filename :
471373
Link To Document :
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