Generative Hybrid Representations for Activity Forecasting With No-Regret Learning
Jiaqi Guan, Ye Yuan, Kris M. Kitani, Nicholas Rhinehart
摘要
Automatically reasoning about future human behaviors is a difficult problem but has significant practical applications to assistive systems. Part of this difficulty stems from learning systems' inability to represent all kinds of behaviors. Some behaviors, such as motion, are best described with continuous representations, whereas others, such as picking up a cup, are best described with discrete representations. Furthermore, human behavior is generally not fixed: people can change their habits and routines. This suggests these systems must be able to learn and adapt continuously. In this work, we develop an efficient deep generative model to jointly forecast a person's future discrete actions and continuous motions. On a large-scale egocentric dataset, EPIC-KITCHENS, we observe our method generates high-quality and diverse samples while exhibiting better generalization than related generative models. Finally, we propose a variant to continually learn our model from streaming data, observe its practical effectiveness, and theoretically justify its learning efficiency.
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引用它的顶会 Paper9
- AgentFormer: Agent-Aware Transformers for Socio-Temporal Multi-Agent ForecastingYe Yuan, Xinshuo Weng, Yanglan Ou, Kris KitaniICCV 2021 · 被引用 658 次
- PRECOG: PREdiction Conditioned on Goals in Visual Multi-Agent SettingsNicholas Rhinehart, Rowan McAllister, Kris Kitani, Sergey LevineICCV 2019 · 被引用 407 次
- Analyzing the Variety Loss in the Context of Probabilistic Trajectory PredictionLuca Anthony Thiede, Pratik Prabhanjan BrahmaICCV 2019 · 被引用 69 次
- EgoEnv: Human-centric environment representations from egocentric videoTushar Nagarajan, Santhosh Kumar Ramakrishnan, Ruta Desai, James Hillis 等NeurIPS 2023 · 被引用 28 次
- Joint Metrics Matter: A Better Standard for Trajectory ForecastingErica Weng, Hana Hoshino, Deva Ramanan, Kris KitaniICCV 2023 · 被引用 27 次
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