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RBBGCMuso is an R package which helps you to use the [[http://agromo.agrar.mta.hu/bbgc/][Biome-BGCMuSo]] biogeochemical model in R environment. It also provides some additional tools for the model such as MuSo optimized Monte-Carlo simulation and global sensitivity analysis. If you want to use the framework, please read the following description. RBBGCMuso is an R package which helps you to use the [[http://agromo.agrar.mta.hu/bbgc/][Biome-BGCMuSo]] biogeochemical model in R environment. It also provides some additional tools for the model such as MuSo optimized Monte-Carlo simulation and global sensitivity analysis. If you want to use the framework, please read the following description.
** Installation ** Installation
You can install the RBBGCMuso package in several ways depending on the operating system you use. Now, RBBGCMuso is tested only in Linux and Windows, so OS X compatibility cannot be granted yet. In Windows you can use install the package from binary or from source installer. In Linux you can only install from source.
*** Installation in Windows *** Installation in Windows
*** Istallation in Linux You can allways install the latest RBBGCMuso by copy the following line into the R console
*** Installation from Source #+BEGIN_SRC R :eval no
source("https://raw.githubusercontent.com/hollorol/RBBGCMuso/master/installWin.R")
#+END_SRC
*** Installation in Linux or from Source
If you want to install the RBBGCMuso package in Linux, you have several ways.
1) Clone this repository, and build and run the package (further information here: [[http://kbroman.org/pkg_primer/pages/build.html][package build and install]])
2) Install devtools package and copy the following line into an R session
#+BEGIN_SRC R :eval no
devtools::install_github("hollorol/RBBGCMuso/RBBGCMuso")
#+END_SRC
Please note, that the last point also works in Windows after you installed the [[https://cran.r-project.org/web/packages/devtools/index.html][devtools]] package and [[https://cran.r-project.org/bin/windows/Rtools/][Rtools]].
** Quick usage ** Quick usage
*** Running the model *** Running the model
*** Visualization of the model output *** Visualization of the model output
*** Study the effect of ecophysiological parameters using parameterSweep *** Study the effect of ecophysiological parameters using parameterSweep
*** Monte-Carlo experiments *** Monte-Carlo experiments