Please use this identifier to cite or link to this item: http://repositorio.ufc.br/handle/riufc/59411
Type: Artigo de Periódico
Title: Historical information in a generalized Maximum Likelihood Framework with partial duration and annual maximum series.
Title in English: Historical information in a generalized Maximum Likelihood Framework with partial duration and annual maximum series.
Authors: Martins, Eduardo Sávio Passos Rodrigues
Stedinger, Jery Russell
Keywords: Inundação;Cheias- risco;Parâmetros
Issue Date: 2001
Publisher: Water Resources Research
Citation: MARTINS, Eduardo Sávio Passos Rodrigues; STEDINGER, Jery Russell. Historical information in a generalized Maximum Likelihood Framework with partial duration and annual maximum series. Water Resources Research,United States, v. 37, n.10, p. 2559-2567, 2001.
Abstract: This paper considers use of historical information with partial duration series (PDS) and annual maximum series (AMS) flood risk models. A generalized Pareto distribution for exceedances over a threshold combined with the Poisson arrival model yields a three-parameter generalized extreme value (GEV) distribution for the AMS. When fitting three-parameter GEV models using generalized maximum likelihood estimators, the average gains from use of historical information are about the same with both AMS and PDS frameworks, though the exact values depend upon the shape parameter к. The effect of the arrival rate λ is modest. In general, average gains are higher when к = 0.0 as opposed to when −0.3 ≤ к ≤ −0.1. When fitting two-parameter models (exponential—Poisson and Gumbel), the average gains are less than those observed with the corresponding three-parameter models with к = 0. Fitting a two-parameter AMS lognormal distribution to lognormal data yielded higher average gains with use of historical information than were obtained with the two-parameter AMS/Gumbel distribution.
URI: http://www.repositorio.ufc.br/handle/riufc/59411
ISSN: 1944-7973
Appears in Collections:LABOMAR - Artigos publicados em revistas científicas

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