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효과적인 3차원 객체 인식 및 자세 추정을 위한 외형 및 SIFT 특징 정보 결합 기법Combining Shape and SIFT Features for 3-D Object Detection and Pose Estimation

Other Titles
Combining Shape and SIFT Features for 3-D Object Detection and Pose Estimation
Authors
탁윤식황인준
Issue Date
2010
Publisher
대한전기학회
Keywords
Pose estimation; 3-D object retrieval; Shape-based retrieval; Distance curve; SIFT
Citation
전기학회논문지ABCD, v.59, no.2, pp.429 - 435
Journal Title
전기학회논문지ABCD
Volume
59
Number
2
Start Page
429
End Page
435
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/117481
ISSN
1229-2443
Abstract
Three dimensional (3-D) object detection and pose estimation from a single view query image has been an important issue in various fields such as medical applications, robot vision, and manufacturing automation. However, most of the existing methods are not appropriate in a real time environment since object detection and pose estimation requires extensive information and computation. In this paper, we present a fast 3-D object detection and pose estimation scheme based on surrounding camera view-changed images of objects. Our scheme has two parts. First, we detect images similar to the query image from the database based on the shape feature, and calculate candidate poses. Second,we perform accurate pose estimation for the candidate poses using the scale invariant feature transform (SIFT) method. We carried out extensive experiments on our prototype system and achieved excellent performance, and we report some of the results.
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공과대학 (전기전자공학부)
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