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Optimal Weight and Parameter Estimation of Multi-structure and Unequal-Precision Data Fusion

机译:多结构和不等精度数据融合的最佳重量和参数估计

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摘要

Measured data fusion process is an effective way to improve the data process precision. In this paper,the fusion weight is firstly introduced, and then we study the optimal weight and parameter estimation using multistructure and unequal-precision data fusion. For the linear regression model, it is theoretically proved that the optimal weight is only related to the data measure precision,which is consistent with the classical Gauss-Markov theorem. For the nonlinear regression model, we analyze the method for calculating the optimal weight theoretically,and then provide the algorithm for the optimal weight and the parameter estimation for the actual data fusion.
机译:测量的数据融合过程是提高数据处理精度的有效方法。在本文中,首先介绍了融合重量,然后我们使用多体积和不平等精度数据融合来研究最佳权重和参数估计。对于线性回归模型,理论上证明了最佳权重仅与数据测量精度有关,这与经典高斯 - 马尔可夫定理一致。对于非线性回归模型,我们分析了理论上的计算方法,然后为实际数据融合提供了最佳权重和参数估计的算法。

著录项

  • 来源
    《电子学报:英文版》 |2017年第6期|P.1245-1253|共9页
  • 作者单位

    College of Science National University of Defense Technology;

    Beijing Institute of Control Engineering;

    College of Science National University of Defense Technology;

    Beijing Institute of Control Engineering;

    College of Science National University of Defense Technology;

    Beijing Institute of Control Engineering;

    College of Science National University of Defense Technology;

    Beijing Institute of Control Engineering;

    College of Science National University of Defense Technology;

    Beijing Institute of Control Engineering;

  • 收录信息 中国科学引文数据库(CSCD);
  • 原文格式 PDF
  • 正文语种 chi
  • 中图分类 设计、性能分析与综合;
  • 关键词

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