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Human-Centric Scene Understanding from Single View 360 Video

机译:通过Single View 360视频了解以人为中心的场景

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In this paper, we propose an approach to indoor scene understanding from observation of people in single view spherical video. As input, our approach takes a centrally located spherical video capture of an indoor scene, estimating the 3D localisation of human actions performed throughout the long term capture. The central contribution of this work is a deep convolutional encoder-decoder network trained on a synthetic dataset to reconstruct regions of affordance from captured human activity. The predicted affordance segmentation is then applied to compose a reconstruction of the complete 3D scene, integrating the affordance segmentation into 3D space. The mapping learnt between human activity and affordance segmentation demonstrates that omnidirectional observation of human activity can be applied to scene understanding tasks such as 3D reconstruction. We show that our approach using only observation of people performs well against previous approaches, allowing reconstruction of occluded regions and labelling of scene affordances.
机译:在本文中,我们提出了一种通过在单视角球形视频中观察人的方式来了解室内场景的方法。作为输入,我们的方法是对室内场景进行中心定位的球形视频捕获,以估计在整个长期捕获过程中执行的人类动作的3D定位。这项工作的主要贡献是在合成数据集上训练的深度卷积编码器/解码器网络,以从捕获的人类活动中重建可承受的区域。然后,将预测的供需分割应用于组合完整的3D场景,将供需分割整合到3D空间中。在人类活动和支付能力分割之间学习到的映射表明,人类活动的全方位观察可以应用于场景理解任务,例如3D重建。我们表明,仅使用人员观察的方法与以前的方法相比效果良好,从而可以重建遮挡区域并标记场景可承受能力。

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