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An implementation of a number of Global Trend models for time series forecasting that are Bayesian generalizations and extensions of some Exponential Smoothing models. The main differences/additions include 1) nonlinear global trend, 2) Student-t error distribution, and 3) a function for the error size, so heteroscedasticity. The methods are particularly useful for short time series. When tested on the well-known M3 dataset, they are able to outperform all classical time series algorithms. The models are fitted with MCMC using the 'rstan' package.

copied from cf-post-staging / r-rlgt
Type Size Name Uploaded Downloads Labels
conda 2.0 MB | win-64/r-rlgt-0.2_2-r43h8ae3a7c_1.conda  11 months and 21 days ago 447 main
conda 2.1 MB | win-64/r-rlgt-0.2_2-r44h8ae3a7c_1.conda  11 months and 21 days ago 464 main
conda 2.1 MB | osx-64/r-rlgt-0.2_2-r44hc83a2cd_1.conda  11 months and 21 days ago 359 main
conda 2.1 MB | osx-64/r-rlgt-0.2_2-r43hc83a2cd_1.conda  11 months and 21 days ago 364 main
conda 2.4 MB | linux-64/r-rlgt-0.2_2-r44h93ab643_1.conda  11 months and 21 days ago 1245 main
conda 2.4 MB | linux-64/r-rlgt-0.2_2-r43h93ab643_1.conda  11 months and 21 days ago 1220 main
conda 2.1 MB | osx-64/r-rlgt-0.2_2-r43h25d921d_0.conda  1 year and 29 days ago 409 main
conda 2.3 MB | linux-64/r-rlgt-0.2_2-r43h0d4f4ea_0.conda  1 year and 29 days ago 1359 main

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