R Dataset / Package texmex / wavesurge
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dataset-46429.csv | 31.39 KB |
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On this Picostat.com statistics page, you will find information about the wavesurge data set which pertains to Rain, wavesurge, portpirie and nidd datasets.. The wavesurge data set is found in the texmex R package. Try to load the wavesurge data set in R by issuing the following command at the console data("wavesurge"). This may load the data into a variable called wavesurge. If R says the wavesurge data set is not found, you can try installing the package by issuing this command install.packages("texmex") and then attempt to reload the data with library("texmex") followed by data("wavesurge"). Perhaps strangley, if R gives you no output after entering a command, it means the command succeeded. If it succeeded you can see the data by typing wavesurge at the command-line which should display the entire dataset. If you need to download R, you can go to the R project website. You can download a CSV (comma separated values) version of the wavesurge R data set. The size of this file is about 32,142 bytes. Rain, wavesurge, portpirie and nidd datasets.DescriptionRainfall, wave-surge, Port Pirie and River Nidd data sets. FormatThe format of the rain data is: num [1:17531] 0 2.3 1.3 6.9 4.6 0 1 1.5 1.8 1.8 ... The wave-surge data is bivariate and is used for testing functions in
The Port Pirie data has two columns: 'Year' and 'SeaLevel'. The River Nidd data represents 154 measurements of the level of the River Nidd at Hunsingore Weir (Yorkshire, UK) between 1934 and 1969. Each measurement breaches the threshold of $65 m^3/2$. Various authors have analysed this dataset, as described by Papastathopoulos and Tawn~egp, there being some apparent difficulty in identifying a threshold above which GPD models are suitable. DetailsThe rain, wave-surge and Port Pirie datasets are used by Coles and appear in
the SourceCopied from the ReferencesS. Coles, An Introduction to Statistical Modeling of Extreme Values, Springer, 2001 I. Papastathopoulos and J. A. Tawn, Extended Generalised Pareto Models for Tail Estimation, Journal of Statistical Planning and Inference, 143, 134 – 143, 2011 -- Dataset imported from https://www.r-project.org. |
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