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5 months ago

Robust Scene Change Detection Using Visual Foundation Models and Cross-Attention Mechanisms

Chun-Jung Lin; Sourav Garg; Tat-Jun Chin; Feras Dayoub

Robust Scene Change Detection Using Visual Foundation Models and Cross-Attention Mechanisms

Abstract

We present a novel method for scene change detection that leverages the robust feature extraction capabilities of a visual foundational model, DINOv2, and integrates full-image cross-attention to address key challenges such as varying lighting, seasonal variations, and viewpoint differences. In order to effectively learn correspondences and mis-correspondences between an image pair for the change detection task, we propose to a) freeze'' the backbone in order to retain the generality of dense foundation features, and b) employfull-image'' cross-attention to better tackle the viewpoint variations between the image pair. We evaluate our approach on two benchmark datasets, VL-CMU-CD and PSCD, along with their viewpoint-varied versions. Our experiments demonstrate significant improvements in F1-score, particularly in scenarios involving geometric changes between image pairs. The results indicate our method's superior generalization capabilities over existing state-of-the-art approaches, showing robustness against photometric and geometric variations as well as better overall generalization when fine-tuned to adapt to new environments. Detailed ablation studies further validate the contributions of each component in our architecture. Our source code is available at: https://github.com/ChadLin9596/Robust-Scene-Change-Detection.

Code Repositories

ChadLin9596/Robust-Scene-Change-Detection
Official
pytorch
Mentioned in GitHub

Benchmarks

BenchmarkMethodologyMetrics
scene-change-detection-on-unaligned-vl-cmu-cdRobust-Scene-Change-Detection
F1-score: 0.739
scene-change-detection-on-unaligned-vl-cmu-cdRobust-Scene-Change-Detection (Diff-View Augmentation)
F1-score: 0.784

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Robust Scene Change Detection Using Visual Foundation Models and Cross-Attention Mechanisms | Papers | HyperAI