Defending Multimodal Fusion Models against Single-Source Adversaries
June 25, 2022 Β· Declared Dead Β· π Computer Vision and Pattern Recognition
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Authors
Karren Yang, Wan-Yi Lin, Manash Barman, Filipe Condessa, Zico Kolter
arXiv ID
2206.12714
Category
cs.CV: Computer Vision
Cross-listed
cs.CR,
cs.LG
Citations
44
Venue
Computer Vision and Pattern Recognition
Last Checked
3 months ago
Abstract
Beyond achieving high performance across many vision tasks, multimodal models are expected to be robust to single-source faults due to the availability of redundant information between modalities. In this paper, we investigate the robustness of multimodal neural networks against worst-case (i.e., adversarial) perturbations on a single modality. We first show that standard multimodal fusion models are vulnerable to single-source adversaries: an attack on any single modality can overcome the correct information from multiple unperturbed modalities and cause the model to fail. This surprising vulnerability holds across diverse multimodal tasks and necessitates a solution. Motivated by this finding, we propose an adversarially robust fusion strategy that trains the model to compare information coming from all the input sources, detect inconsistencies in the perturbed modality compared to the other modalities, and only allow information from the unperturbed modalities to pass through. Our approach significantly improves on state-of-the-art methods in single-source robustness, achieving gains of 7.8-25.2% on action recognition, 19.7-48.2% on object detection, and 1.6-6.7% on sentiment analysis, without degrading performance on unperturbed (i.e., clean) data.
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