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Unsupervised change detection in optical satellite imagery using sift flow

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Erer, Işın
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Copernicus GmbH

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Research Projects

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Abstract. The process of identifying change in remote sensing images has been a focal point of research for decades now. Many classical algorithms exist, and many new modern ones are still being developed. These algorithms can be divided into supervised and unsupervised. In this work an unsupervised method is presented. This method relies on the scene alignment algorithm SIFT flow. It is shown that building upon simple principles an accurate change map can be obtained from the SIFT descriptor flow of the two input images. Furthermore, it is shown that this method despite its simplicity exceeds other unsupervised methods and comes close to supervised ones, even exceeding them in some metrics. Lastly, the advantages of SIFT flow in comparison to the supervised methods are highlighted alongside its own downsides.

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The International Archives of the Photogrammetry, Remote Sensing and Spatial Information Sciences

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OPEN

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Technology, Artificial intelligence, Geometry, Object-Based Analysis, Image Analysis, Epistemology, Pattern recognition (psychology), Feature Extraction, Engineering, Point (geometry), Media Technology, Image (mathematics), FOS: Mathematics, Applied optics. Photonics, Scale-invariant feature transform, Geography, Optical flow, Change Detection, Remote sensing, Engineering (General). Civil engineering (General), Hyperspectral Image Analysis and Classification, Computer science, TA1501-1820, Process (computing), FOS: Philosophy, ethics and religion, Philosophy, Operating system, Simplicity, Aerospace engineering, Spectral Unmixing, Satellite, Physical Sciences, Change detection, Computer vision, TA1-2040, Flow (mathematics), Mathematics

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