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ID 48125
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Abstract
We optimally estimate the similarity (rotation, translation, and scale change) between two sets of 3-D data in the presence of inhomogeneous and anisotropic noise. Adopting the Lie algebra representation of the 3-D rotational change, we derive the Levenberg-Marquardt procedure for simultaneously optimizing the rotation, the translation, and the scale change. We test the performance of our method using simulated stereo data and real GPS geodetic sensing data. We conclude that the conventional method assuming homogeneous and isotropic noise is insufficient and that our simultaneous optimization scheme can produce an accurate solution.
Publication Title
Memoirs of the Faculty of Engineering, Okayama University
Published Date
2012-01
Volume
volume46
Publisher
Faculty of Engineering, Okayama University
Start Page
1
End Page
9
ISSN
1349-6115
NCID
AA12014085
Content Type
Departmental Bulletin Paper
OAI-PMH Set
岡山大学
language
English
Copyright Holders
Copyright © by the authors
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publisher
NAID
Eprints Journal Name
mfe