Papers › Unified Adversarial Patch for Cross-modal Attacks in the Physical World

Unified Adversarial Patch for Cross-modal Attacks in the Physical World

15 Jul 2023ICCV 2023 1arXiv:2307.07859archive 2025-07-28

Xingxing Wei, Yao Huang, Yitong Sun, Jie Yu

Recently, physical adversarial attacks have been presented to evade DNNs-based object detectors. To ensure the security, many scenarios are simultaneously deployed with visible sensors and infrared sensors, leading to the failures of these single-modal physical attacks. To show the potential risks under such scenes, we propose a unified adversarial patch to perform cross-modal physical attacks, i.e., fooling visible and infrared object detectors at the same time via a single patch. Considering different imaging mechanisms of visible and infrared sensors, our work focuses on modeling the shapes of adversarial patches, which can be captured in different modalities when they change. To this end, we design a novel boundary-limited shape optimization to achieve the compact and smooth shapes, and thus they can be easily implemented in the physical world. In addition, to balance the fooling degree between visible detector and infrared detector during the optimization process, we propose a score-aware iterative evaluation, which can guide the adversarial patch to iteratively reduce the predicted scores of the multi-modal sensors. We finally test our method against the one-stage detector: YOLOv3 and the two-stage detector: Faster RCNN. Results show that our unified patch achieves an Attack Success Rate (ASR) of 73.33% and 69.17%, respectively. More importantly, we verify the effective attacks in the physical world when visible and infrared sensors shoot the objects under various settings like different angles, distances, postures, and scenes.

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autopad aries-iai/cross-modal_patch_attack/yolov3/models/common.py community (archive-listed) ran · honoured contract MIT (permissive) · 988a3c854b1b13d0 · report
compute_dis aries-iai/cross-modal_patch_attack/attack_utils/spline.py community (archive-listed) unverified MIT (permissive) · 6e2c4123ff49ea80 · report
cross aries-iai/cross-modal_patch_attack/attack_utils/spline.py community (archive-listed) unverified MIT (permissive) · 30a8ee34752d3fb4 · report
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get_state aries-iai/cross-modal_patch_attack/spline_DE_attack.py community (archive-listed) unverified MIT (permissive) · aab637864c086647 · report
ifcross aries-iai/cross-modal_patch_attack/attack_utils/spline.py community (archive-listed) unverified MIT (permissive) · 89d475d77e7aa9a2 · report
img_process aries-iai/cross-modal_patch_attack/attack_utils/multi_angles_transform_inf.py community (archive-listed) unverified MIT (permissive) · 9f92d6e6f7a4cf15 · report
limit_region aries-iai/cross-modal_patch_attack/spline_DE_attack.py community (archive-listed) unverified MIT (permissive) · ca197255ebcd19f7 · report
yolov3 aries-iai/cross-modal_patch_attack/yolov3/hubconf.py community (archive-listed) unverified MIT (permissive) · 933e3e3518a0fbcc · report
yolov3_spp aries-iai/cross-modal_patch_attack/yolov3/hubconf.py community (archive-listed) unverified MIT (permissive) · bc00ccb584e433ec · report

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Methods

1x1 ConvolutionAverage PoolingBatch NormalizationConvolutionGlobal Average PoolingLogistic RegressionResidual ConnectionSoftmaxYOLOv3k-Means Clustering

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