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5 months ago

SARAS-Net: Scale and Relation Aware Siamese Network for Change Detection

Chao-Peng Chen; Jun-Wei Hsieh; Ping-Yang Chen; Yi-Kuan Hsieh; Bor-Shiun Wang

SARAS-Net: Scale and Relation Aware Siamese Network for Change Detection

Abstract

Change detection (CD) aims to find the difference between two images at different times and outputs a change map to represent whether the region has changed or not. To achieve a better result in generating the change map, many State-of-The-Art (SoTA) methods design a deep learning model that has a powerful discriminative ability. However, these methods still get lower performance because they ignore spatial information and scaling changes between objects, giving rise to blurry or wrong boundaries. In addition to these, they also neglect the interactive information of two different images. To alleviate these problems, we propose our network, the Scale and Relation-Aware Siamese Network (SARAS-Net) to deal with this issue. In this paper, three modules are proposed that include relation-aware, scale-aware, and cross-transformer to tackle the problem of scene change detection more effectively. To verify our model, we tested three public datasets, including LEVIR-CD, WHU-CD, and DSFIN, and obtained SoTA accuracy. Our code is available at https://github.com/f64051041/SARAS-Net.

Code Repositories

f64051041/saras-net
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
building-change-detection-for-remote-sensingSARAS-Net
F1: 91.91
IoU: 84.95
change-detection-for-remote-sensing-images-onSARAS-Net
F1-Score: 0.9749
IoU: 95.11
change-detection-on-dsifn-cdSARAS-Net
F1: 67.58
IoU: 51.04
Overall Accuracy: 89.01

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