Context-Aware Transfer Attacks for Object Detection
Zikui Cai, Xinxin Xie, Shasha Li, Mingjun Yin, Chengyu Song, Srikanth V. Krishnamurthy, Amit K. Roy-Chowdhury, M. Salman Asif
Abstract
Blackbox transfer attacks for image classifiers have been extensively studied in recent years. In contrast, little progress has been made on transfer attacks for object detectors. Object detectors take a holistic view of the image and the detection of one object (or lack thereof) often depends on other objects in the scene. This makes such detectors inherently context-aware and adversarial attacks in this space are more challenging than those targeting image classifiers. In this paper, we present a new approach to generate context-aware attacks for object detectors. We show that by using co-occurrence of objects and their relative locations and sizes as context information, we can successfully generate targeted mis-categorization attacks that achieve higher transfer success rates on blackbox object detectors than the state-of-the-art. We test our approach on a variety of object detectors with images from PASCAL VOC and MS COCO datasets and demonstrate up to 20 percentage points improvement in performance compared to the other state-of-the-art methods.
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Cited by top-tier papers15
- Rethinking Image Restoration for Object DetectionShangquan Sun, Wenqi Ren, Tao Wang, Xiaochun CaoNeurIPS 2022 · 99 citations
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- GAMA: Generative Adversarial Multi-Object Scene AttacksAbhishek Aich, Calvin-Khang Ta, Akash Gupta, Chengyu Song et al.NeurIPS 2022 · 26 citations
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- Deformable DETR: Deformable Transformers for End-to-End Object DetectionXizhou Zhu, Weijie Su, Lewei Lu, Bin Li et al.ICLR 2021 · 7,353 citations
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- Black-Box Adversarial Attack with Transferable Model-based EmbeddingZhichao Huang, Tong ZhangICLR 2020 · 131 citations
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