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Enhanced SIFT Descriptor Based on Modified Discrete Gaussian-Hermite Moment

Authors
Kang, Tae-KooZhang, HuazhenKim, Dong W.Park, Gwi-Tae
Issue Date
Aug-2012
Publisher
WILEY
Keywords
SIFT; modified discrete Gaussian-Hermite moments (MDGHM); local feature extraction
Citation
ETRI JOURNAL, v.34, no.4, pp.572 - 582
Indexed
SCIE
SCOPUS
KCI
Journal Title
ETRI JOURNAL
Volume
34
Number
4
Start Page
572
End Page
582
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/107759
DOI
10.4218/etrij.12.0111.0538
ISSN
1225-6463
Abstract
The discrete Gaussian-Hermite moment (DGHM) is a global feature representation method that can be applied to square images. We propose a modified DGHM (MDGHM) method and an MDGHM-based scale-invariant feature transform (MDGHM-SIFT) descriptor. In the MDGHM, we devise a movable mask to represent the local features of a non-square image. The complete set of non-square image features are then represented by the summation of all MDGHMs. We also propose to apply an accumulated MDGHM using multi-order derivatives to obtain distinguishable feature information in the third stage of the SIFT. Finally, we calculate an MDGHM-based magnitude and an MDGHM-based orientation using the accumulated MDGHM. We carry out experiments using the proposed method with six kinds of deformations. The results show that the proposed method can be applied to non-square images without any image truncation and that it significantly outperforms the matching accuracy of other SIFT algorithms.
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