让机器人在动态家庭环境里精准找到特定物品实例。
OpenIN: Open-Vocabulary Instance-Oriented Navigation in Dynamic Domestic Environments
- 构建可动态更新的载体关系场景图,捕捉物品与容器的关联变化。
- 在Habitat模拟器中实现90%以上成功率的长序列实例导航任务。
- 结合大模型常识与视觉语言特征,适合实际家庭服务机器人使用。
日常家庭环境中,杯子等常用物品位置不固定、同类多实例且载体常变,导致机器人难以高效定位特定实例。现有导航方法多聚焦语义层面,缺乏动态场景表征能力。本文提出开放词汇的载体关系场景图(CRSG),捕捉常用物品与其静态载体之间的关系,并在导航过程中持续更新携带状态以反映场景动态变化。基于CRSG,设计了一种将导航建模为马尔可夫决策过程的实例导航策略,每一步决策融合大语言模型的常识知识与视觉-语言特征相似性。我们在Habitat仿真器中设计了针对常见日用品的长序列导航任务,结果表明,通过更新CRSG,机器人能高效定位移动目标。此外,算法已在真实机器人上部署并验证了实用性。
原文摘要 · Abstract (English)
In daily domestic settings, frequently used objects like cups often have unfixed positions and multiple instances within the same category, and their carriers frequently change as well. As a result, it becomes challenging for a robot to efficiently navigate to a specific instance. To tackle this challenge, the robot must capture and update scene changes and plans continuously. However, current object navigation approaches primarily focus on the semantic level and lack the ability to dynamically update scene representation. In contrast, this paper captures the relationships between frequently used objects and their static carriers. It constructs an open-vocabulary Carrier-Relationship Scene Graph (CRSG) and updates the carrying status during robot navigation to reflect the dynamic changes of the scene. Based on the CRSG, we further propose an instance navigation strategy that models the navigation process as a Markov Decision Process. At each step, decisions are informed by the Large Language Model's commonsense knowledge and visual-language feature similarity. We designed a series of long-sequence navigation tasks for frequently used everyday items in the Habitat simulator. The results demonstrate that by updating the CRSG, the robot can efficiently navigate to moved targets. Additionally, we deployed our algorithm on a real robot and validated its practical effectiveness. The project page can be found here: https://OpenIN-nav.github.io.
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