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simmediumoffline-rlmetric · varies

Local Manifold Approximation and Projection for Manifold-Aware Diffusion Planning

Description

Recent advances in diffusion-based generative modeling have demonstrated significant promise in tackling long-horizon, sparse-reward tasks by leveraging offline datasets. While these approaches have achieved promising results, their reliability remains inconsistent due to the inherent stochastic risk of producing infeasible trajectories, limiting their applicability in safety-critical applications. We identify that the primary cause of these failures is inaccurate guidance during the sampling pr

Source

http://arxiv.org/abs/2506.00867v1