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A Nonlinear Multiparameters Temperature Error Modeling and Compensation of POS Applied in Airborne Remote Sensing System

机译:机载遥感中POS的非线性多参数温度误差建模与补偿。

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The position and orientation system (POS) is a key equipment for airborne remote sensing systems, which provides high-precision position, velocity, and attitude information for various imaging payloads. Temperature error is the main source that affects the precision of POS. Traditional temperature error model is single temperature parameter linear function, which is not sufficient for the higher accuracy requirement of POS. The traditional compensation method based on neural network faces great problem in the repeatability error under different temperature conditions. In order to improve the precision and generalization ability of the temperature error compensation for POS, a nonlinear multiparameters temperature error modeling and compensation method based on Bayesian regularization neural network was proposed. The temperature error of POS was analyzed and a nonlinear multiparameters model was established. Bayesian regularization method was used as the evaluation criterion, which further optimized the coefficients of the temperature error. The experimental results show that the proposed method can improve temperature environmental adaptability and precision. The developed POS had been successfully applied in airborne TSMFTIS remote sensing system for the first time, which improved the accuracy of the reconstructed spectrum by 47.99%.
机译:位置和定位系统(POS)是机载遥感系统的关键设备,可为各种成像有效载荷提供高精度的位置,速度和姿态信息。温度误差是影响POS精度的主要来源。传统的温度误差模型是单一温度参数线性函数,不足以满足POS对精度的更高要求。传统的基于神经网络的补偿方法在不同温度条件下的可重复性误差都很大。为了提高POS温度误差补偿的精度和泛化能力,提出了一种基于贝叶斯正则化神经网络的非线性多参数温度误差建模与补偿方法。分析了POS的温度误差,建立了非线性多参数模型。贝叶斯正则化方法作为评估标准,进一步优化了温度误差系数。实验结果表明,该方法可以提高温度环境的适应性和精度。研制成功的POS机已首次成功应用于机载TSMFTIS遥感系统,使重构频谱的准确性提高了47.99%。

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