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r / packages / r-siminf

Provides an efficient and very flexible framework to conduct data-driven epidemiological modeling in realistic large scale disease spread simulations. The framework integrates infection dynamics in subpopulations as continuous-time Markov chains using the Gillespie stochastic simulation algorithm and incorporates available data such as births, deaths and movements as scheduled events at predefined time-points. Using C code for the numerical solvers and 'OpenMP' (if available) to divide work over multiple processors ensures high performance when simulating a sample outcome. One of our design goals was to make the package extendable and enable usage of the numerical solvers from other R extension packages in order to facilitate complex epidemiological research. The package contains template models and can be extended with user-defined models. For more details see the paper by Widgren, Bauer, Eriksson and Engblom (2019) <doi:10.18637/jss.v091.i12>. The package also provides functionality to fit models to time series data using the Approximate Bayesian Computation Sequential Monte Carlo ('ABC-SMC') algorithm of Toni and others (2009) <doi:10.1098/rsif.2008.0172>.

Type Size Name Uploaded Downloads Labels
conda 3.1 MB | linux-64/r-siminf-9.5.0-r43h76d94ec_0.tar.bz2  1 year and 28 days ago 19 main
conda 3.1 MB | linux-64/r-siminf-9.0.0-r42h76d94ec_0.tar.bz2  2 years and 7 months ago 58 main
conda 2.9 MB | win-64/r-siminf-6.3.0-r36hda5aaf8_0.tar.bz2  4 years and 11 months ago 92 main
conda 2.9 MB | osx-64/r-siminf-6.3.0-r36h46e59ec_0.tar.bz2  4 years and 11 months ago 15 main
conda 2.8 MB | linux-64/r-siminf-6.3.0-r36h96ca727_0.tar.bz2  4 years and 11 months ago 56 main

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