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Presenting MonoNeRF at #ICML2023 We train a generalizable NeRF from: ✅Large-scale monocular videos instead of one scene ✅No GT camera poses.📷🚫 Without per-scene optimization, the model can do view synthesis, depth estimation, camera pose estimation.

36,578 Aufrufe • vor 3 Jahren •via X (Twitter)

8 Kommentare

Profilbild von Xiaolong Wang
Xiaolong Wangvor 3 Jahren

This work is extending from our previous work on Video Autoencoder, but a NeRF version. We firmly believe in the potential of learning 3D geometry from videos without the constraint of camera poses. This is the way to scale up! 2/n

Profilbild von Xiaolong Wang
Xiaolong Wangvor 3 Jahren

Even trained without camera poses, it can still be used for camera pose estimation. 3/n

Profilbild von Xiaolong Wang
Xiaolong Wangvor 3 Jahren

This is a joint effort with my student Yang Fu (@yangfu21) and old friend Ishan Misra (@imisra_). Looking forward to catching up in ICML. arxiv: 4/n

Profilbild von Yue Wang
Yue Wangvor 3 Jahren

@JiaweiYang118

Profilbild von 69420
69420vor 3 Jahren

Can it render in real time?

Profilbild von Jiatao Gu
Jiatao Guvor 3 Jahren

Amazing work!! Will you release the code & pretrained models soon?

Profilbild von Xiaolong Wang
Xiaolong Wangvor 3 Jahren

Yes. Very soon I think! @yangfu21

Profilbild von Yuliang Zou
Yuliang Zouvor 3 Jahren

Nice work! Not sure if I miss something, I did not find how to set d_i adaptively for each image and how to convert depth encoder features to this multiple nerf representation.

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