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State Estimation for GPS Outage Based on Improved Nonlinear Autoregressive Model

机译:基于改进非线性自回归模型的GPS中断国家估计

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The accurate and immediate state estimation is essential in control of navigation system. The traditional Global Position System/ Inertial Navigation System (GPSIINS) integration may be invalid without location information provided by GPS during outage periods. A state estimation framework is proposed in this paper to obtain GPS location information during satellite outages. Firstly, a Nonlinear AutoRegressive Moving Average model with eXogenous input (NARMAX) is designed to characterize the outage periods. Secondly, the integration of Least Square Support Vector Machine (LSSVM) with NARMAX is implemented by using LSSVM to identify NARMAX parameters. The model is trained at first based on present planar angular information and historical location increment feedback provided by GPS with estimation error feedback before outage periods. It switches to predictor mode during outage periods without GPS information. Also, time-serial data are analyzed in NARMAX-LSSVM model to excavate the data features in time dimension. An experiment was conducted to verify the proposed model with multi-step prediction. The results were compared with other traditional methods to show its improvement and validation in state estimation.
机译:准确和立即的状态估计对于导航系统的控制是必不可少的。传统的全球位置系统/惯性导航系统(GPSIINS)集成可能无效,没有GPS在中断期间提供的位置信息。本文提出了一种状态估计框架,以在卫星中断期间获得GPS位置信息。首先,具有外源输入(NARMAX)的非线性自回归移动平均模型被设计为表征中断时期。其次,利用LSSVM识别NARMAX参数来实现具有NARMAX的最小二乘支持向量机(LSSVM)的集成。首先基于目前的平面角信息和GPS提供的历史位置增量反馈首先进行培训,其中GPS在中断前的估计误差反馈。在没有GPS信息的情况下,它在中断时段中切换到预测测量模式。此外,在NARMAX-LSSVM模型中分析了时间序列数据,以挖掘时间尺寸的数据特征。进行实验以验证具有多步预测的提出模型。将结果与其他传统方法进行比较,以表明状态估计的改进和验证。

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