远程高空无人机多传感器信息融合系统应用研究

Yongjun Yu, Jianye Liu, Zhi Xiong, Rongbing Li
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引用次数: 2

摘要

多传感器组合是提高远程高空无人机导航系统精度和容错能力的有效手段。在分析星敏感器定姿问题的基础上,提出了一种SINS/STAR/GPS信息融合导航系统。为了解决多传感器的不坐标间隔特性问题,设计了异步集中式卡尔曼滤波器(AKF)。,滤波周期分为时间更新周期和测量更新周期。设计了一种处理GPS信息的外推方法。此外,设计了一种新的模型来解决垂直移动过程中的姿态组合问题。仿真结果表明,该方法的滤波精度提高了50%,具有重要的工程应用价值
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Research on multi-sensor information fusion system application for UAVS with long range and high altitude
Multi-sensors combination is an effective means to improve the accuracy and fault tolerance of the navigation system for UAVs with long range and high altitude. Based on analyses of attitude determination using STAR sensor, this paper presents a SINS/STAR/GPS information fusion navigation system. To solve the problem of the incoordinate interval characteristics of multi-sensors, an asynchronous centralized Kalman Filter (AKF) is designed., and the filter period is divided to time update period and measurement update period. An extrapolation method is designed to deal with GPS information. Moreover, a new model is designed to solve the problem of attitude combination in process of vertical mobility. Simulation results indicate that filtering accuracy is improved by 50% with the Kalman Filter, and the method is of important value in engineering application
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