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IEEE transactions on pattern analysis and machine intelligence, 2012-08, Vol.34 (8), p.1658-1664
2012

Details

Autor(en) / Beteiligte
Titel
Unsupervised Image Matching Based on Manifold Alignment
Ist Teil von
  • IEEE transactions on pattern analysis and machine intelligence, 2012-08, Vol.34 (8), p.1658-1664
Ort / Verlag
Los Alamitos, CA: IEEE
Erscheinungsjahr
2012
Link zum Volltext
Quelle
IEEE Electronic Library (IEL)
Beschreibungen/Notizen
  • This paper challenges the issue of automatic matching between two image sets with similar intrinsic structures and different appearances, especially when there is no prior correspondence. An unsupervised manifold alignment framework is proposed to establish correspondence between data sets by a mapping function in the mutual embedding space. We introduce a local similarity metric based on parameterized distance curves to represent the connection of one point with the rest of the manifold. A small set of valid feature pairs can be found without manual interactions by matching the distance curve of one manifold with the curve cluster of the other manifold. To avoid potential confusions in image matching, we propose an extended affine transformation to solve the nonrigid alignment in the embedding space. The comparatively tight alignments and the structure preservation can be obtained simultaneously. The point pairs with the minimum distance after alignment are viewed as the matchings. We apply manifold alignment to image set matching problems. The correspondence between image sets of different poses, illuminations, and identities can be established effectively by our approach.

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