AI RESEARCH
Safety-Guided Flow (SGF): A Unified Framework for Negative Guidance in Safe Generation
arXiv CS.AI
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ArXi:2603.13300v1 Announce Type: cross Safety mechanisms for diffusion and flow models have recently been developed along two distinct paths. In robot planning, control barrier functions are employed to guide generative trajectories away from obstacles at every denoising step by explicitly imposing geometric constraints. In parallel, recent data-driven, negative guidance approaches have been shown to suppress harmful content and promote diversity in generated samples. However, they rely on heuristics without clearly stating when safety guidance is actually necessary. In this paper, we first