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Learning 3D Editing without Paired Supervision via Generative Prior Distillation

Researchers propose a method for instruction-guided 3D editing that eliminates the need for paired supervision by distilling generative priors, addressing the scarcity of high-quality training data. The approach aims to overcome the limitations of existing methods that rely on slow test-time optimization or pseudo-pairs.

by read1 min views2 publishedSep 9, 2026

Instruction-guided 3D editing is essential for interactive content creation, yet it faces a significant bottleneck: the severe scarcity of high-quality paired training data. Existing approaches attempt to bypass this by either relying on slow test-time optimization or training on pseudo-pairs constr

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