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Papers/Fully Convolutional Siamese Networks for Change Detection

Fully Convolutional Siamese Networks for Change Detection

Rodrigo Caye Daudt, Bertrand Le Saux, Alexandre Boulch

2018-10-19Change detection for remote sensing imagesChange DetectionVideo Object Tracking
PaperPDFCodeCodeCodeCode(official)Code

Abstract

This paper presents three fully convolutional neural network architectures which perform change detection using a pair of coregistered images. Most notably, we propose two Siamese extensions of fully convolutional networks which use heuristics about the current problem to achieve the best results in our tests on two open change detection datasets, using both RGB and multispectral images. We show that our system is able to learn from scratch using annotated change detection images. Our architectures achieve better performance than previously proposed methods, while being at least 500 times faster than related systems. This work is a step towards efficient processing of data from large scale Earth observation systems such as Copernicus or Landsat.

Results

TaskDatasetMetricValueModel
VideoNT-VOT211AUC32.62SiamFC
VideoNT-VOT211Precision40.81SiamFC
Object TrackingNT-VOT211AUC32.62SiamFC
Object TrackingNT-VOT211Precision40.81SiamFC
Change DetectionOSCD - 13chF157.92FC-Siam-Diff
Change DetectionOSCD - 13chPrecision51.84FC-Siam-Diff
Change DetectionOSCD - 13chF156.91FC-EF
Change DetectionOSCD - 13chPrecision64.42FC-EF
Change DetectionGVLMF174.3FC-Siam-diff
Change DetectionCLCDF154.1FC-Siam-diff
Change DetectionEGY-BCDF142.3FC-Siam-diff
Change DetectionOSCD - 3chF148.89FC-EF
Change DetectionOSCD - 3chPrecision49.81FC-Siam-diff

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