DocumentCode :
2186886
Title :
Samantha: Towards Automatic Image-Based Model Acquisition
Author :
Gherardi, R. ; Toldo, R. ; Farenzena, M. ; Fusiello, A.
Author_Institution :
Dipt. di Inf., Univ. di Verona, Verona, Italy
fYear :
2010
fDate :
17-18 Nov. 2010
Firstpage :
161
Lastpage :
170
Abstract :
In this paper we describe SAMANTHA, a Structure and Motion pipeline from images which is both more robust and computationally cheaper than current competing approaches. Pictures are organized into a hierarchical tree which has single images as leaves and partial reconstructions as internal nodes. The method proceeds bottom up until it reaches the root node, corresponding to the final result. This framework is one order of magnitude faster than sequential approaches, inherently parallel, less sensitive to the error accumulation causing drift and truly uncalibrated, not needing EXIF metadata to be present in pictures. We have verified the quality of our reconstructions both qualitatively producing compelling point clouds and quantitatively, comparing them with laser scans serving as ground truth. We also show how to automatically extract a meaningful collection of planar patches obtaining a compact, stable representation of scenes.
Keywords :
data acquisition; image motion analysis; image reconstruction; image representation; meta data; optical scanners; tree data structures; EXIF metadata; SAMANTHA; automatic image based model acquisition; current competing approach; error accumulation; hierarchical tree; inherently parallel; internal node; laser scan; motion pipeline; partial reconstruction; planar patch; scene representation; sequential approach; Cameras; Couplings; Image reconstruction; Nearest neighbor searches; Pipelines; Robustness; Three dimensional displays;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Visual Media Production (CVMP), 2010 Conference on
Conference_Location :
London
Print_ISBN :
978-1-4244-8872-8
Electronic_ISBN :
978-0-7695-4268-3
Type :
conf
DOI :
10.1109/CVMP.2010.27
Filename :
5693107
Link To Document :
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