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[ARTICLE · art-58253] src=arxiv.org ↗ pub= topic=autonomous-vehicles verified=true sentiment=↓ negative

Adversarially Guided Diffusion for LiDAR Range Image Synthesis

Researchers introduced the first diffusion-based unrestricted adversarial attack against LiDAR range-image segmentation, using adversarial guidance from a segmentation loss to generate realistic yet misleading examples. The attack, tested on the SemanticKITTI dataset with RangeNet++ and CENet, offers adjustable degradation and transfers across architectures, posing new safety risks for autonomous driving perception systems.

read1 min views1 publishedJul 14, 2026

arXiv:2607.09787v1 Announce Type: new Abstract: LiDAR semantic segmentation is a key perception task in autonomous driving, where false predictions can affect downstream planning and safety-critical decision-making. Although adversarial attacks, and specifically adversarial examples, have been widely studied for image classification and 3D point cloud segmentation, unrestricted adversarial examples remain largely unexplored in the space of 2D range images, which are projections of 3D point clouds. The proposed method is, to the best of our knowledge, the first diffusion-based unrestricted adversarial attack against 2D range-image segmentation, using adversarial guidance from a segmentation loss. By applying guidance directly during sampling, the method produces unrestricted adversarial examples that remain close to the learned LiDAR data manifold while inducing structured segmentation errors. Experiments on the SemanticKITTI dataset using RangeNet++ and CENet segmentation networks demonstrate that the attack provides adjustable degradation across guidance strengths and transfers across segmentation architectures. Compared with norm-bounded FGSM and SegPGD baselines, the proposed attack offers a distinct effectiveness-realism trade-off, achieving controllable white-box and transfer degradation while maintaining competitive distributional and visual realism.

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