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System error iterative identification for underwater positioning based on spectral clustering

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摘要 The observation error model of the underwater acous-tic positioning system is an important factor to influence the positioning accuracy of the underwater target.For the position inconsistency error caused by considering the underwater tar-get as a mass point,as well as the observation system error,the traditional error model best estimation trajectory(EMBET)with little observed data and too many parameters can lead to the ill-condition of the parameter model.In this paper,a multi-station fusion system error model based on the optimal polynomial con-straint is constructed,and the corresponding observation sys-tem error identification based on improved spectral clustering is designed.Firstly,the reduced parameter unified modeling for the underwater target position parameters and the system error is achieved through the polynomial optimization.Then a multi-sta-tion non-oriented graph network is established,which can address the problem of the inaccurate identification for the sys-tem errors.Moreover,the similarity matrix of the spectral cluster-ing is improved,and the iterative identification for the system errors based on the improved spectral clustering is proposed.Finally,the comprehensive measured data of long baseline lake test and sea test show that the proposed method can accu-rately identify the system errors,and moreover can improve the positioning accuracy for the underwater target positioning.
机构地区 College of Sciences
出处 《Journal of Systems Engineering and Electronics》 SCIE CSCD 2024年第4期1028-1041,共14页 系统工程与电子技术(英文版)
基金 This work was supported by the National Natural Science Foundation of China(61903086,61903366,62001115) the Natural Science Foundation of Hunan Province(2019JJ50745,2020JJ4280,2021JJ40133) the Fundamentals and Basic of Applications Research Foundation of Guangdong Province(2019A1515110136).
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