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Long-Term Image Boundary Prediction

机译:长期图像边界预测

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Boundary estimation in images and videos has been a very active topic of research, and organizing visual information into boundaries and segments is believed to be a corner stone of visual perception. While prior work has focused on estimating boundaries for observed frames, our work aims at predicting boundaries of future unobserved frames. This requires our model to learn about the fate of boundaries and corresponding motion patterns - including a notion of "intuitive physics". We experiment on natural video sequences along with synthetic sequences with deterministic physics-based and agent-based motions. While not being our primary goal, we also show that fusion of RGB and boundary prediction leads to improved RGB predictions.
机译:图像和视频中的边界估计是研究的非常活跃的主题,并将视觉信息组织成界限,段被认为是视觉感知的角落。 虽然事先工作的重点是估算观察框架的界限,但我们的工作旨在预测未来未观察框架的边界。 这需要我们的模型来了解边界的命运和相应的运动模式 - 包括“直观物理学”的概念。 我们在自然视频序列和基于药物的综合序列的实验。 虽然不是我们的主要目标,但我们还表明RGB和边界预测的融合导致改进的RGB预测。

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