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Optimal and suboptimal white noise smoothers for nonlinear stochastic systems
  • ISSN号:2095-2899
  • 期刊名称:Journal of Central South University
  • 时间:2013.3.3
  • 页码:655-662
  • 分类:TP273.2[自动化与计算机技术—控制科学与工程;自动化与计算机技术—检测技术与自动化装置] TP273[自动化与计算机技术—控制科学与工程;自动化与计算机技术—检测技术与自动化装置]
  • 作者机构:[1]College of Automation, Northwestem Polytechnical University, Xi'an 710072, China
  • 相关基金:Projects(61203234, 61135001, 61075029, 61074179) supported by the National Natural Science Foundation of China; Project (20110491692) supported by the Postdoctoral Science Fotmdation of China
  • 相关项目:量测随机缺失多速率系统估计理论与应用
中文摘要:

A new approach of smoothing the white noise for nonlinear stochastic system was proposed.Through presenting the Gaussian approximation about the white noise posterior smoothing probability density function,an optimal and unifying white noise smoothing framework was firstly derived on the basis of the existing state smoother.The proposed framework was only formal in the sense that it rarely could be directly used in practice since the model nonlinearity resulted in the intractability and infeasibility of analytically computing the smoothing gain.For this reason,a suboptimal and practical white noise smoother,which is called the unscented white noise smoother(UWNS),was further developed by applying unscented transformation to numerically approximate the smoothing gain.Simulation results show the superior performance of the proposed UWNS approach as compared to the existing extended white noise smoother(EWNS) based on the first-order linearization.

英文摘要:

A new approach of smoothing the white noise for nonlinear stochastic system was proposed. Through presenting the Gaussian approximation about the white noise posterior smoothing probability density fimction, an optimal and unifying white noise smoothing framework was firstly derived on the basis of the existing state smoother. The proposed framework was only formal in the sense that it rarely could be directly used in practice since the model nonlinearity resulted in the intractability and infeasibility of analytically computing the smoothing gain. For this reason, a suboptimal and practical white noise smoother, which is called the unscented white noise smoother (UWNS), was further developed by applying unscented transformation to numerically approximate the smoothing gain. Simulation results show the superior performance of the proposed UWNS approach as compared to the existing extended white noise smoother (EWNS) based on the first-order linearization.

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期刊信息
  • 《中南大学学报:英文版》
  • 主管单位:教育部
  • 主办单位:中南大学
  • 主编:黄伯云
  • 地址:湖南长沙中南大学校本部
  • 邮编:410083
  • 邮箱:jcsu@csu.edu.cn
  • 电话:0731-88836963
  • 国际标准刊号:ISSN:2095-2899
  • 国内统一刊号:ISSN:43-1516/TB
  • 邮发代号:42-316
  • 获奖情况:
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  • 被引量:334