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Non-linear optimal multivariate spatial design using spatial vine copulas

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  • معلومة اضافية
    • بيانات النشر:
      Springer New York
    • الموضوع:
      2017
    • Collection:
      Queensland University of Technology: QUT ePrints
    • نبذة مختصرة :
      A multivariate spatial sampling design that uses spatial vine copulas is presented that aims to simultaneously reduce the prediction uncertainty of multiple variables by selecting additional sampling locations based on the multivariate relationship between variables, the spatial configuration of existing locations and the values of the observations at those locations. Novel aspects of the methodology include the development of optimal designs that use spatial vine copulas to estimate prediction uncertainty and, additionally, use transformation methods for dimension reduction to model multivariate spatial dependence. Spatial vine copulas capture non-linear spatial dependence within variables, whilst a chained transformation that uses non-linear principal component analysis captures the non-linear multivariate dependence between variables. The proposed design methodology is applied to two environmental case studies. Performance of the proposed methodology is evaluated through partial redesigns of the original spatial designs. The first application is a soil contamination example that demonstrates the ability of the proposed methodology to address spatial non-linearity in the data. The second application is a forest biomass study that highlights the strength of the methodology in incorporating non-linear multivariate dependence into the design.
    • File Description:
      application/pdf
    • Relation:
      https://eprints.qut.edu.au/98746/1/manuscript.pdf; https://eprints.qut.edu.au/98746/2/supplimentary.pdf; Musafer, Gnai Nishani & Thompson, Helen (2017) Non-linear optimal multivariate spatial design using spatial vine copulas. Stochastic Environmental Research and Risk Assessment, 31(2), pp. 551-570.; https://eprints.qut.edu.au/98746/; Institute for Future Environments; Science & Engineering Faculty; ARC Centre of Excellence for Mathematical & Statistical Frontiers (ACEMS)
    • الدخول الالكتروني :
      https://eprints.qut.edu.au/98746/
    • Rights:
      free_to_read ; Consult author(s) regarding copyright matters ; This work is covered by copyright. Unless the document is being made available under a Creative Commons Licence, you must assume that re-use is limited to personal use and that permission from the copyright owner must be obtained for all other uses. If the document is available under a Creative Commons License (or other specified license) then refer to the Licence for details of permitted re-use. It is a condition of access that users recognise and abide by the legal requirements associated with these rights. If you believe that this work infringes copyright please provide details by email to qut.copyright@qut.edu.au
    • الرقم المعرف:
      edsbas.761C461