Implicit View-Time Interpolation of Stereo Videos using Multi-Plane Disparities and Non-Uniform Coordinates

March 30, 2023 ยท Entered Twilight ยท ๐Ÿ› Computer Vision and Pattern Recognition

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Authors Avinash Paliwal, Andrii Tsarov, Nima Khademi Kalantari arXiv ID 2303.17181 Category cs.CV: Computer Vision Cross-listed cs.GR Citations 2 Venue Computer Vision and Pattern Recognition Repository https://github.com/avinashpaliwal/StereoMPD โญ 11 Last Checked 1 month ago
Abstract
In this paper, we propose an approach for view-time interpolation of stereo videos. Specifically, we build upon X-Fields that approximates an interpolatable mapping between the input coordinates and 2D RGB images using a convolutional decoder. Our main contribution is to analyze and identify the sources of the problems with using X-Fields in our application and propose novel techniques to overcome these challenges. Specifically, we observe that X-Fields struggles to implicitly interpolate the disparities for large baseline cameras. Therefore, we propose multi-plane disparities to reduce the spatial distance of the objects in the stereo views. Moreover, we propose non-uniform time coordinates to handle the non-linear and sudden motion spikes in videos. We additionally introduce several simple, but important, improvements over X-Fields. We demonstrate that our approach is able to produce better results than the state of the art, while running in near real-time rates and having low memory and storage costs.
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