基于在线信息体构建与维护的长期自治家庭服务机器人环境理解方法

Environment Understanding Method for Long-term Autonomous Home Service Robot Based on Online Information Entity Construction and Maintenance

  • 摘要: 家庭服务机器人长期自治是其智能化的基础。然而服务机器人在家庭环境中实现长期自治仍然存在环境理解困难、对环境变化的适应性差等问题。为此,提出了一种在线的信息体构建和维护方法,为机器人提供实时、可靠且全面的物品信息,以实现对环境的精准认知。首先,为了一体化地表征环境中物品的物理和语义信息,构建了一种可适应多种服务任务的信息表达形式:信息体。在此基础上,提出了基于物品空间特征、语义信息以及置信度的信息体更新策略,实现了针对物品实例的高精度的信息自动提取。此外,考虑了相邻信息体的语义丰富度与置信度,并结合最优观测点,提出了一种选择性的主动信息维护方法,以较低的计算量实现对环境的整体感知。最后,在模拟和真实实验中验证了方法的有效性。实验结果表明,本文方法可以准确、丰富地描述环境信息,并且实现高效、完整的信息维护,以满足长期自治的需求。

     

    Abstract: Long-term autonomy is the foundation of intelligence for home service robots. However, achieving long-term autonomy in home environments still presents challenges such as difficulties in understanding the environment and poor adaptability to environmental changes. Therefore, an online method for constructing and maintaining information entities is proposed to provide real-time, reliable, and comprehensive object information for robots, enabling precise environmental perception. Firstly, a form of information representation suitable for various service tasks is constructed, named information entities, to integrally represent the physical and semantic information of objects in the environment. Based on this, an information entity updating strategy is proposed based on the spatial features, semantic information, and confidence of objects, to achieve high-precision automatic information extraction for object instances. Additionally, a selective active information maintenance method is proposed by considering the semantic richness and confidence of adjacent information entities, and combining with the optimal observation points, to achieve overall perception of the environment with lower computational cost. Finally, the effectiveness of the proposed method is verified through simulation and real experiments. The experimental results demonstrate that the proposed method can accurately and comprehensively describe environmental information and achieve efficient and complete information maintenance, meeting the requirements of long-term autonomy.

     

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