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Routines for generalized additive modelling under shape constraints on the component functions of the linear predictor (Pya and Wood, 2015) <doi:10.1007/s11222-013-9448-7>. Models can contain multiple shape constrained (univariate and/or bivariate) and unconstrained terms. The routines of gam() in package 'mgcv' are used for setting up the model matrix, printing and plotting the results. Penalized likelihood maximization based on Newton-Raphson method is used to fit a model with multiple smoothing parameter selection by GCV or UBRE/AIC.

copied from cf-post-staging / r-scam
Type Size Name Uploaded Downloads Labels
conda 1.0 MB | osx-64/r-scam-1.2_21-r45hdab4d57_0.conda  2 months and 14 days ago 31 main
conda 1.0 MB | win-64/r-scam-1.2_21-r44heceb674_0.conda  2 months and 14 days ago 39 main
conda 1.0 MB | osx-64/r-scam-1.2_21-r44hdab4d57_0.conda  2 months and 14 days ago 30 main
conda 1.0 MB | win-64/r-scam-1.2_21-r45heceb674_0.conda  2 months and 14 days ago 37 main
conda 1.0 MB | linux-64/r-scam-1.2_21-r45h54b55ab_0.conda  2 months and 14 days ago 199 main
conda 1.0 MB | linux-64/r-scam-1.2_21-r44h54b55ab_0.conda  2 months and 14 days ago 198 main

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