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Towards Embodied Scene Description

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arxiv 2004.14638 v2 pith:T5LZTLX2 submitted 2020-04-30 cs.RO cs.CV

classification cs.ROcs.CV
keywords descriptionsceneagentlearningembodiedembodimentenvironmentframework
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Embodiment is an important characteristic for all intelligent agents (creatures and robots), while existing scene description tasks mainly focus on analyzing images passively and the semantic understanding of the scenario is separated from the interaction between the agent and the environment. In this work, we propose the Embodied Scene Description, which exploits the embodiment ability of the agent to find an optimal viewpoint in its environment for scene description tasks. A learning framework with the paradigms of imitation learning and reinforcement learning is established to teach the intelligent agent to generate corresponding sensorimotor activities. The proposed framework is tested on both the AI2Thor dataset and a real world robotic platform demonstrating the effectiveness and extendability of the developed method.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score.

  1. Apple: Toward General Active Perception via Reinforcement Learning

    cs.RO 2025-05 unverdicted novelty 5.0 of 10

    APPLE is an RL framework that jointly optimizes a transformer perception module and policy via a unified objective for general active perception, with evaluations on tactile MNIST regression and classification tasks.

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