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    Efficient Approximation for a Fully Populated Variance-Covariance Matrix in RTK Positioning

    Source: Journal of Surveying Engineering:;2018:;Volume ( 144 ):;issue: 004
    Author:
    Zhang Zhetao;Li Bofeng;Shen Yunzhong
    DOI: 10.1061/(ASCE)SU.1943-5428.0000259
    Publisher: American Society of Civil Engineers
    Abstract: Global navigation satellite system (GNSS) observations have been shown to be physically correlated. Disregarding the physical correlations in a variance-covariance matrix (VCM) will lead to adverse impacts on GNSS applications. Typically, physical correlations have three types in a fully populated VCM: spatial, cross, and temporal correlations. However, such a fully populated VCM cannot be easily estimated and inverted, especially in real-time kinematic (RTK) positioning. The authors propose an efficient approximation approach for processing these physical correlations. This method appropriately considers the significant covariance elements and efficiently transforms the time-dependent VCM to a time-independent block diagonal matrix. As an example, 1 data sets of BeiDou code and phase observations with different baseline lengths and receivers were collected. The results showed that this proposed method had fewer covariance elements to be estimated, thus decreasing the number of unknowns when using (co)variance component estimation (VCE). In addition, the proposed method had lower computation burden than the multiple-epoch method. For instance, the computation efficiency was increased by more than 5% in the case of the 6-epoch data window. It can also provide more realistic baseline solutions and precisions compared with the traditional single-epoch method.
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      Efficient Approximation for a Fully Populated Variance-Covariance Matrix in RTK Positioning

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    contributor authorZhang Zhetao;Li Bofeng;Shen Yunzhong
    date accessioned2019-02-26T07:35:21Z
    date available2019-02-26T07:35:21Z
    date issued2018
    identifier other%28ASCE%29SU.1943-5428.0000259.pdf
    identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4248096
    description abstractGlobal navigation satellite system (GNSS) observations have been shown to be physically correlated. Disregarding the physical correlations in a variance-covariance matrix (VCM) will lead to adverse impacts on GNSS applications. Typically, physical correlations have three types in a fully populated VCM: spatial, cross, and temporal correlations. However, such a fully populated VCM cannot be easily estimated and inverted, especially in real-time kinematic (RTK) positioning. The authors propose an efficient approximation approach for processing these physical correlations. This method appropriately considers the significant covariance elements and efficiently transforms the time-dependent VCM to a time-independent block diagonal matrix. As an example, 1 data sets of BeiDou code and phase observations with different baseline lengths and receivers were collected. The results showed that this proposed method had fewer covariance elements to be estimated, thus decreasing the number of unknowns when using (co)variance component estimation (VCE). In addition, the proposed method had lower computation burden than the multiple-epoch method. For instance, the computation efficiency was increased by more than 5% in the case of the 6-epoch data window. It can also provide more realistic baseline solutions and precisions compared with the traditional single-epoch method.
    publisherAmerican Society of Civil Engineers
    titleEfficient Approximation for a Fully Populated Variance-Covariance Matrix in RTK Positioning
    typeJournal Paper
    journal volume144
    journal issue4
    journal titleJournal of Surveying Engineering
    identifier doi10.1061/(ASCE)SU.1943-5428.0000259
    page4018005
    treeJournal of Surveying Engineering:;2018:;Volume ( 144 ):;issue: 004
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
    نرم افزار کتابخانه دیجیتال "دی اسپیس" فارسی شده توسط یابش برای کتابخانه های ایرانی | تماس با یابش
    yabeshDSpacePersian