Error Analysis for GPS Based Position and Attitude Determination for Motion Compensation in TerraSAR-X/PAMIR Bistatic SAR Experiment

Author(s):  
Zhen Dai
2017 ◽  
Vol 2017 ◽  
pp. 1-13 ◽  
Author(s):  
Yuyu Zhao ◽  
Hui Zhao ◽  
Xin Huo ◽  
Yu Yao

Calibration tests are of great importance to ensure rate-sensing accuracy of GyroWheel, an innovative attitude determination and control device. In the process of calibration tests, turntable errors are inevitable, which hinder the calibration accuracy and rate-sensing capability. Hence, error analysis for GyroWheel calibration tests is conducted, and the relationship between the calibration accuracy and the orientation error is established based on analytical derivation and numerical simulations. Subsequently, an error model of the turntable system is derived using rigid body kinematics, by which the relationship between the orientation error and turntable errors is described. According to sensitivity analysis and manufacturing capability, an error allocation method is proposed to determine the accuracy requirement of the test turntable, and the effectiveness of the proposed method is verified by repeated simulation tests. Based on the presented analysis and proposed method in this paper, the effects of various turntable errors on the calibration accuracy can be obtained quantitatively, and a theoretical basis for the determination of the turntable accuracy is provided, which are of great significance to guide the calibration tests and improve the calibration accuracy of GyroWheel.


Sensors ◽  
2021 ◽  
Vol 21 (6) ◽  
pp. 2040
Author(s):  
Felipe O. Silva ◽  
Lucas P. S. Paiva ◽  
Gustavo S. Carvalho

This paper revisits the stationary attitude initialization problem, i.e., the stationary alignment, of Attitude and Heading Reference Systems (AHRSs). A detailed and comprehensive error analysis is proposed for four of the most representative accelerometer- and magnetometer-based stationary attitude determination methods, namely, the Three-Axis Attitude Determination (TRIAD), the QUaternion ESTimator (QUEST), the Factored Quaternion Algorithm (FQA), and the Arc-TANgent (ATAN). For the purpose of the error analysis, constant biases in the accelerometer and magnetometer measurements are considered (encompassing, hence, the effect of hard-iron magnetism), in addition to systematic errors in the local gravity and Earth magnetic field models (flux density magnitude, declination angle, and inclination angle). The contributions of this paper are novel closed-form formulae for the residual errors (normality, orthogonality, and alignment errors) developed in the computed Direction Cosine Matrices (DCM). As a consequence, analytical insight is provided into the problem, allowing us to properly compare the performance of the investigated alignment formulations (in terms of ultimate accuracy), as well as to remove some misleading conclusions reported in previous works. The adequacy of the proposed error analysis is validated through simulation and experimental results.


Author(s):  
Yi Li ◽  
Wenchao Li ◽  
Zhongyu Li ◽  
Junjie Wu ◽  
Yulin Huang ◽  
...  

Author(s):  
Yi Li ◽  
Wenchao Li ◽  
Min Li ◽  
Wenjing Wang ◽  
Zhongyu Li ◽  
...  

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