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Incorporating readily available depth information as supervision significantly improves the performance of Neural Radiance Fields (NeRF) for view synthesis, particularly in scenarios with limited training views, by accelerating training and enhancing the accuracy of rendered geometry.
Deng, K., Liu, A., Zhu, J.-Y., & Ramanan, D. (2024). Depth-supervised NeRF: Fewer Views and Faster Training for Free. arXiv preprint arXiv:2107.02791v3.
This paper investigates the use of depth information as an additional supervisory signal during the training of Neural Radiance Fields (NeRF) to address the limitations of conventional NeRF models in handling sparse view scenarios and lengthy training times.