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Jordan Vice

3 accepted papers

2026

NatADiff: Adversarial Boundary Guidance for Natural Adversarial Diffusion

ICLR 2026poster

Adversarial samples exploit irregularities in the manifold "learned" by deep learning models to cause misclassifications. The study of these adversarial samples provides insight into the features a model uses to classify inputs, which can be leveraged to improve robustness against future attacks. Ho…

Cited by 0SourceScholar
2025

CymbaDiff: Structured Spatial Diffusion for Sketch-based 3D Semantic Urban Scene Generation

NeurIPS 2025poster

Outdoor 3D semantic scene generation produces realistic and semantically rich environments for applications such as urban simulation and autonomous driving. However, advances in this direction are constrained by the absence of publicly available, well-annotated datasets. We introduce SketchSem3D, th…

Cited by 0SourceScholar
2025

Skip Mamba Diffusion for Monocular 3D Semantic Scene Completion

AAAI 2025technical

3D semantic scene completion is critical for multiple downstream tasks in autonomous systems. It estimates missing geometric and semantic information in the acquired scene data. Due to the challenging real-world conditions, this task usually demands complex models that process multi-modal data to ac…