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Infrared Patch-Image Model for Small Target Detection in a Single Image

IEEE Transactions on Image Processing · 2013 · Vol. 22(12) · pp. 4996–5009
Chenqiang GaoDeyu MengYi YangYongtao WangXiaofang ZhouAlexander G. Hauptmann

Abstract

The robust detection of small targets is one of the key techniques in infrared search and tracking applications. A novel small target detection method in a single infrared image is proposed in this paper. Initially, the traditional infrared image model is generalized to a new infrared patch-image model using local patch construction. Then, because of the non-local self-correlation property of the infrared background image, based on the new model small target detection is formulated as an optimization problem of recovering low-rank and sparse matrices, which is effectively solved using stable principle component pursuit. Finally, a simple adaptive segmentation method is used to segment the target image and the segmentation result can be refined by post-processing. Extensive synthetic and real data experiments show that under different clutter backgrounds the proposed method not only works more stably for different target sizes and signal-to-clutter ratio values, but also has better detection performance compared with conventional baseline methods.

Infrared Target Detection MethodologiesOptical Systems and Laser TechnologyVideo Surveillance and Tracking MethodsArtificial intelligenceClutterComputer visionComputer sciencePattern recognition (psychology)Image segmentationImage (mathematics)SegmentationImage processingRadar
Citations
1,173
FWCI
430.98
field-weighted impact
References
51
Percentile
100%
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References
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Proceedings of SPIE, the International Society for Optical Engineering/Proceedings of SPIE · 1999 · 773 citations
Robust Recovery of Subspace Structures by Low-Rank Representation
IEEE Transactions on Pattern Analysis and Machine Intelligence · 2012 · 3,610 citations
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