Paper
14 August 2019 Sequence image matching using adaptive SIFT under complex environmental conditions
Chunman Yan, Youfei Hao, Di Zhang, Jiahui Chen
Author Affiliations +
Proceedings Volume 11179, Eleventh International Conference on Digital Image Processing (ICDIP 2019); 111792D (2019) https://doi.org/10.1117/12.2539675
Event: Eleventh International Conference on Digital Image Processing (ICDIP 2019), 2019, Guangzhou, China
Abstract
The scale invariant feature transform (SIFT) is one of effective methods for sequence image matching, but under complex environmental conditions such as illumination and blur, the matching rate is low, and the matching process becomes difficult. It is mainly because of the fixed threshold which results in the particular scenes are not considered. A new method with adaptive threshold is proposed for sequence image matching in this paper. Firstly, the statistical features of the sequence images are analyzed, then the comprehensive indicators of each statistical feature are calculated by the principal component analysis method, and finally, based on main influence factor and statistics features, the adaptive threshold prediction model is established. To test the efficiency of the proposed method, it is used for sequence image matching. The experimental results show that the adaptive threshold prediction model can be applied to many cases and improves the matching performance for sequence images under complex environmental conditions, especially for the sequence images under poor illumination.
© (2019) COPYRIGHT Society of Photo-Optical Instrumentation Engineers (SPIE). Downloading of the abstract is permitted for personal use only.
Chunman Yan, Youfei Hao, Di Zhang, and Jiahui Chen "Sequence image matching using adaptive SIFT under complex environmental conditions", Proc. SPIE 11179, Eleventh International Conference on Digital Image Processing (ICDIP 2019), 111792D (14 August 2019); https://doi.org/10.1117/12.2539675
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KEYWORDS
Principal component analysis

Image analysis

Image processing

Statistical analysis

Evolutionary algorithms

Feature extraction

Statistical modeling

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