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Performance analysis of device-level SINS/ACFSS deeply integrated navigation method

机译:设备级SINS / ACFSS深度集成导航方法的性能分析

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The strap-down inertial navigation system(SINS) is a widely used navigation system. The combination of SINS and the celestial navigation system(CNS) is one of the popular measures to constitute the integrated navigation system. A star sensor(SS) is used as a precise attitude determination device in CNS. To solve the problem that the star image obtained by SS under dynamic conditions is motion-blurred, the attitude-correlated frames (ACF) is presented and the star sensor which works based on ACF approach is named ACFSS. Depending on the ACF approach, a novel device-level SINS/ACFSS deeply integrated navigation method is proposed in this paper. Feedback to the ACF process from the error of the gyro is one of the typical characters of the SINS/CNS deeply integrated navigation method. Herein, simulation results have verified its validity and efficiency in improving the accuracy of gyro and it can be proved that this method is feasible in theory.
机译:捷联惯性导航系统(SINS)是一种广泛使用的导航系统。 SINS与天体导航系统(CNS)的组合是构成集成导航系统的流行措施之一。星传感器(SS)用作CNS中的精确姿态确定设备。为解决SS在动态条件下获得的恒星图像运动模糊的问题,提出了姿态相关帧(ACF),将基于ACF方法的恒星传感器命名为ACFSS。基于ACF方法,本文提出了一种新的设备级SINS / ACFSS深度集成导航方法。陀螺仪误差对ACF过程的反馈是SINS / CNS深度集成导航方法的典型特征之一。仿真结果证明了该方法对提高陀螺仪精度的有效性和有效性,可以证明该方法在理论上是可行的。

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