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Practical Map Building Method for Service Robot Using EKF Localization Based on Statistical Distribution of Noise Parameters

机译:基于噪声参数统计分布的EKF定位使用EKF定位的服务机器人的实用地图构建方法

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This paper presents a method to build the large-scale indoor maps by means of extended Kalman filter (EKF) localization which explores the statistical distribution of noise parameters. As typical method in many robot localization applications, EKF localization has shown considerable success history to locate the position of the robot. However, EKF has also lack which can degrade its performance, especially in the real environment due to incompleteness, incorrectness and imprecision of noise parameters. Moreover, although many kinds of sensors are used for EKF localization, it is still difficult to generate an accurate map because of noise parameters. The fundamental solution of this problem should be addressed to the utilization of adequate noise parameters setting. We have developed a new technique for searching the optimal noise parameters setting of EKF localization using a statistical distribution. The experiments carried out on mobile robot have been performed to build accurate maps by using EKF localization relied on statistical distribution of noise parameters. The mapping results show that the method based on statistical distribution can be useful for practical application.
机译:本文介绍了通过扩展的卡尔曼滤波器(EKF)定位构建大型室内地图的方法,该定位探讨了噪声参数的统计分布。作为许多机器人本地化应用中的典型方法,EKF定位已经显示了相当大的成功历史来定位机器人的位置。然而,由于噪声参数的不完整,不正确和噪声参数不精确,EKF也缺乏,这可能会降低其性能,特别是在真实环境中。此外,尽管许多种传感器用于EKF定位,但由于噪声参数仍然难以产生准确的图。应解决此问题的基本解决方案,以利用充足的噪声参数设置。我们使用统计分布开发了一种用于搜索EKF本地化的最佳噪声参数设置的新技术。已经进行了在移动机器人上进行的实验,通过使用EKF定位依赖于噪声参数的统计分布来构建精确的图。映射结果表明,基于统计分布的方法对实际应用有用。

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