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AIPR
2003
IEEE

Eigenviews for Object Recognition in Multispectral Imaging Systems

14 years 5 months ago
Eigenviews for Object Recognition in Multispectral Imaging Systems
We address the problem of representing multispectral images of objects using eigenviews for recognition purposes. Eigenviews have long been used for object recognition and pose estimation purposes in the grayscale and color image settings. The purpose of this paper is two-fold: firstly to extend the idealogies of eigenviews to multispectral images and secondly to propose the use of dimensionality reduction techniques other than those popularly used. Principal Component Analysis (PCA) and its various kernel-based flavors are popularly used to extract eigenviews. We propose the use of Independent Component Analysis (ICA) and Non-negative Matrix Factorization (NMF) as possible candidates for eigenview extraction. Multispectral images of a collection of 3D objects captured under different viewpoint locations are used to obtain representative views (eigenviews) that encode the information in these images. The idea is illustrated with a collection of eight synthetic objects imaged in both...
Rajeev Ramanath, Wesley E. Snyder, Hairong Qi
Added 04 Jul 2010
Updated 04 Jul 2010
Type Conference
Year 2003
Where AIPR
Authors Rajeev Ramanath, Wesley E. Snyder, Hairong Qi
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