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Subsampling Variance Estimation for Non-stationary Spatial Lattice Data

    Publication: Contribution to journalJournal articlepeer-review

    Abstract

    Most proposed subsampling and resampling methods in the literature assume stationary data. In many empirical applications, however, the hypothesis of stationarity can easily be rejected. In this paper, we demonstrate that moment and variance estimators based on the subsampling methodology can also be employed for different types of non-stationarity data. Consistency of estimators are demonstrated under mild moment and mixing conditions. Rates of convergence are provided, giving guidance for the appropriate choice of subshape size. Results from a small simulation study on finite-sample properties are also reported.
    Original languageEnglish
    Pages (from-to)38-63
    Number of pages26
    JournalScandinavian Journal of Statistics
    Volume35
    Issue number1
    DOIs
    Publication statusPublished - 2008

    Keywords

    • block bootstrap
    • mixing
    • non-stationary random field
    • resampling
    • spatial lattice data
    • subsampling

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