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Learning Social Etiquette: Human Trajectory Understanding In Crowded Scenes

机译:学习社会礼仪:在拥挤的场景中的人类轨迹理解

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Humans navigate crowded spaces such as a university campus by following common sense rules based on social etiquette. In this paper, we argue that in order to enable the design of new target tracking or trajectory forecasting methods that can take full advantage of these rules, we need to have access to better data in the first place. To that end, we contribute a new large-scale dataset that collects videos of various types of targets (not just pedestrians, but also bikers, skateboarders, cars, buses, golf carts) that navigate in a real world outdoor environment such as a university campus. Moreover, we introduce a new characterization that describes the "social sensitivity" at which two targets interact. We use this characterization to define "navigation styles" and improve both forecasting models and state-of-the-art multi-target tracking-whereby the learnt forecasting models help the data association step.
机译:通过基于社交礼仪的常识规则,人类通过以下常识规则导航拥挤的空间,如大学校园。在本文中,我们争辩说,为了使新的目标跟踪或轨迹预测方法能够充分利用这些规则,我们需要首先访问更好的数据。为此,我们贡献了一个新的大规模数据集,收集各种类型的目标(不仅仅是行人,还有骑自行车的人,滑板,汽车,公共汽车,高尔夫球车),这些户外环境在大学(如大学)校园。此外,我们介绍了一种新的表征,描述了两个目标互动的“社会敏感性”。我们使用此表征来定义“导航样式”,并改善预测模型和最先进的多目标跟踪 - 所以学习的预测模型有助于数据关联步骤。

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