Abstract:Point cloud models with neural network architectures have achieved great success and been widely used in safety-critical applications, such as Lidarbased recognition systems in autonomous vehicles. However, such models are shown vulnerable against adversarial attacks which aim to apply stealthy semantic transformations such as rotation and tapering to mislead model predictions. In this paper, we propose a transformation-specific smoothing framework TPC, which provides tight and scalable robustness guarantees f… Show more
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