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The influence of dependence in characterizing multi-variable uncertainty for climate change impact assessments

Authors
Eghdamirad, SajjadJohnson, FionaSharma, AshishKim, Joong Hoon
Issue Date
26-4월-2019
Publisher
TAYLOR & FRANCIS LTD
Keywords
statistical downscaling; uncertainty; climate variable uncertainty dependence; Taylor series
Citation
HYDROLOGICAL SCIENCES JOURNAL-JOURNAL DES SCIENCES HYDROLOGIQUES, v.64, no.6, pp.731 - 738
Indexed
SCIE
SCOPUS
Journal Title
HYDROLOGICAL SCIENCES JOURNAL-JOURNAL DES SCIENCES HYDROLOGIQUES
Volume
64
Number
6
Start Page
731
End Page
738
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/65963
DOI
10.1080/02626667.2019.1602777
ISSN
0262-6667
Abstract
Few approaches exist that explicitly use the uncertainty associated with the spread of climate model simulations in assessing climate change impacts. An approach that does so is second-order approximation (SOA). This incorporates quantification of uncertainty to ascertain its impact on the derived response using a Taylor series expansion of the model. This study uses SOA in a statistical downscaling model of monthly streamflow, with a focus on the influence of dependence in the uncertainty of multiple atmospheric variables. Uncertainty is quantified using the square root error variance concept with a new extension that allows the inter-dependence terms among the atmospheric variable uncertainty to be specified. Applying the model to selected point locations in Australia, it is noted that the downscaling results differ considerably from downscaling that ignores uncertainty. However, when the effects of dependence in uncertainty are incorporated, the results differ according to the regional variations in dependence structure.
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