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Spatio-temporal representation for long-term anticipation of human presence in service robotics

机译:适用于服务机器人中的人力人力存在的长期期待的时空表示

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We propose an efficient spatio-temporal model for mobile autonomous robots operating in human populated environments. Our method aims to model periodic temporal patterns of people presence, which are based on peoples' routines and habits. The core idea is to project the time onto a set of wrapped dimensions that represent the periodicities of people presence. Extending a 2D spatial model with this multidimensional representation of time results in a memory efficient spatio-temporal model. This model is capable of long-term predictions of human presence, allowing mobile robots to schedule their services better and to plan their paths. The experimental evaluation, performed over datasets gathered by a robot over a period of several weeks, indicates that the proposed method achieves more accurate predictions than the previous state of the art used in robotics.
机译:我们为人口流利环境中运行的移动自主机器人提出了一种有效的时空模式。我们的方法旨在模拟人们存在的周期性模式,这是基于人民的惯例和习惯。核心思想是将时间投入到一组包装尺寸上,该尺寸表示人们存在的周期性。通过该多维时间表扩展2D空间模型,时间结果导致记忆有效的时空模型。该模型能够长期预测人类存在,允许移动机器人更好地安排服务并计划他们的道路。在几周内由机器人收集的数据集进行的实验评估表明该方法比机器人中使用的先前技术的先前状态实现更准确的预测。

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