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ovie-monocular-novel-view-synthesis

A single insight eliminates multi-view requirements for novel-view synthesis: monocular depth acts as a training-time geometric scaffold to generate synthetic view pairs from unpaired internet images, but can be discarded at inference. This reframes the problem from needing paired multi-view data to leveraging abundant 2D internet imagery. Trigger: When limited to monocular video or single-image novel-view synthesis, use depth as training scaffold on unpaired data—the model learns geometry without needing it at inference.

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Repository
ADu2021/skillXiv
Last source activity
March 26, 2026 at 05:22
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English
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