DocumentCode :
2669593
Title :
Multi-sensory fusion and model-based recognition of complex objects
Author :
Devy, Michel ; Boumaza, Rachid
Author_Institution :
Lab. d´´Autom. et d´´Anal. des Syst., CNRS, Toulouse, France
fYear :
1994
fDate :
2-5 Oct 1994
Firstpage :
345
Lastpage :
352
Abstract :
Perception with complementary sensors like a color camera and a laser range finder, make easier the recognition of objects in a 3D scene. This paper copes with the recognition of non-polyhedral objects, described each one by a REV graph and an aspect table, required to afford reasoning about visibility. The authors focus on the relations between segmentation and recognition strategies. A set of segmentation operators, executed by logical sensors, can be requested with respect to the state of the recognition task, in order to extract the more suitable set of features from the sensory data; if needed, the fusion of perceptual data can provide the more accurate estimates of the perceived geometric features. The control module of the recognition task, follows a classical “hypothesize and test” paradigm; this paper concerns only the hypothesis generation and verification, after one acquisition. Recognition strategies could be compiled off line, according to the object and the sensor models. The authors show how such strategies allow one to limit complexity of the segmentation and recognition processes; experimental results on real perceptual data, validate this method
Keywords :
image colour analysis; image segmentation; image sensors; laser ranging; object recognition; sensor fusion; 3D scene; REV graph; aspect table; color camera; complex objects; geometric features; hypothesize and test paradigm; laser range finder; model-based recognition; multi-sensory fusion; nonpolyhedral objects; perceptual data; recognition strategies; segmentation; Cameras; Data mining; Fusion power generation; Laser fusion; Laser modes; Layout; Sensor fusion; Sensor phenomena and characterization; State estimation; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Multisensor Fusion and Integration for Intelligent Systems, 1994. IEEE International Conference on MFI '94.
Conference_Location :
Las Vegas, NV
Print_ISBN :
0-7803-2072-7
Type :
conf
DOI :
10.1109/MFI.1994.398434
Filename :
398434
Link To Document :
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