D-CLING attaches a zero-initialized trainable copy of a pre-trained navigation model backbone to learn in-domain depth cues without eroding prior generalization, enabling better real-world long-horizon navigation.
Adding conditional control to text-to-image diffusion models
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D-CLING: Prior-Preserving Depth-Conditioned Fine-Tuning for Navigation Foundation Models
D-CLING attaches a zero-initialized trainable copy of a pre-trained navigation model backbone to learn in-domain depth cues without eroding prior generalization, enabling better real-world long-horizon navigation.