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- W4320803037 abstract "Stereo matching using deep network has made significant progress in recent years. However, state-of-the-art methods are based on expensive 4D cost volume, which limits their use in real-world applications. To address this issue, 3D correlation maps and iterative disparity updates have been proposed. Regarding that in real-world platforms, such as self-driving cars and robots, the Lidar is usually installed. Thus we further introduce the sparse Lidar point into the iterative updates, which alleviates the burden of network updating the disparity from zero states. Furthermore, we propose training the network in a self-supervised way so that it can be trained on any captured data for better generalization ability. Experiments and comparisons show that the presented method is effective and achieves comparable results with related methods." @default.
- W4320803037 created "2023-02-15" @default.
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- W4320803037 date "2022-08-15" @default.
- W4320803037 modified "2023-10-16" @default.
- W4320803037 title "Sparse LiDAR Assisted Self-supervised Stereo Disparity Estimation" @default.
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- W4320803037 doi "https://doi.org/10.1109/ccdc55256.2022.10033693" @default.
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