Package: calibmsm 1.1.1
calibmsm: Calibration Plots for the Transition Probabilities from Multistate Models
Assess the calibration of an existing (i.e. previously developed) multistate model through calibration plots. Calibration is assessed using one of three methods. 1) Calibration methods for binary logistic regression models applied at a fixed time point in conjunction with inverse probability of censoring weights. 2) Calibration methods for multinomial logistic regression models applied at a fixed time point in conjunction with inverse probability of censoring weights. 3) Pseudo-values estimated using the Aalen-Johansen estimator of observed risk. All methods are applied in conjunction with landmarking when required. These calibration plots evaluate the calibration (in a validation cohort of interest) of the transition probabilities estimated from an existing multistate model. While package development has focused on multistate models, calibration plots can be produced for any model which utilises information post baseline to update predictions (e.g. dynamic models); competing risks models; or standard single outcome survival models, where predictions can be made at any landmark time. Please see Pate et al. (2024) <doi:10.1002/sim.10094> and Pate et al. (2024) <https://alexpate30.github.io/calibmsm/articles/Overview.html>.
Authors:
calibmsm_1.1.1.tar.gz
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calibmsm.pdf |calibmsm.html✨
calibmsm/json (API)
NEWS
# Install 'calibmsm' in R: |
install.packages('calibmsm', repos = c('https://alexpate30.r-universe.dev', 'https://cloud.r-project.org')) |
Bug tracker:https://github.com/alexpate30/calibmsm/issues
- ebmtcal - European Group for Blood and Marrow Transplantation data
- ebmtcal_cmprsk - European Group for Blood and Marrow Transplantation data
- msebmtcal - European Group for Blood and Marrow Transplantation data in 'msdata' format.
- msebmtcal_cmprsk - European Group for Blood and Marrow Transplantation data in competing risks format, for transitions out of the initial state only
- tp_cmprsk_j0 - Predicted risks for a competing risks model out of state j = 0
- tps0 - Predicted transition probabilities out of transplant state made at time s = 0
- tps100 - Predicted transition probabilities out of every state made at time s = 100
Last updated 14 days agofrom:1a9266c28b. Checks:OK: 5. Indexed: yes.
Target | Result | Date |
---|---|---|
Doc / Vignettes | OK | Nov 08 2024 |
R-4.5-win | OK | Nov 08 2024 |
R-4.5-linux | OK | Nov 08 2024 |
R-4.4-win | OK | Nov 08 2024 |
R-4.4-mac | OK | Nov 08 2024 |
Exports:calc_weightscalib_msmmetadata
Dependencies:abindbackportsbase64encbootbroombslibcachemcarcarDatacheckmatecliclustercodetoolscolorspacecolourpickercommonmarkcorrplotcowplotcpp11crayondata.tableDerivdigestdoBydplyrevaluatefansifarverfastmapfontawesomeforeignFormulafsgenericsggExtraggplot2ggpubrggrepelggsciggsignifgluegridExtragtablehighrHmischtmlTablehtmltoolshtmlwidgetshttpuvisobandjquerylibjsonliteknitrlabelinglaterlatticelifecyclelme4magrittrMASSMatrixMatrixModelsmemoisemgcvmicrobenchmarkmimeminiUIminqamodelrmstatemultcompmunsellmvtnormnlmenloptrnnetnumDerivpbkrtestpillarpkgconfigpolsplinepolynompromisespurrrquantregR6rappdirsRColorBrewerRcppRcppEigenrlangrmarkdownrmsrpartrstatixrstudioapisandwichsassscalesshinyshinyjssourcetoolsSparseMstringistringrsurvivalTH.datatibbletidyrtidyselecttinytexutf8vctrsVGAMviridisviridisLitewithrxfunxtableyamlzoo
A catalogue of links and descriptions for the vignettes/articles
Rendered fromDirectory-of-vignettes.Rmd
usingknitr::rmarkdown
on Nov 08 2024.Last update: 2024-11-04
Started: 2023-08-26
A guide on how to use calibmsm
Rendered fromoverview_guide.pdf.asis
usingR.rsp::asis
on Nov 08 2024.Last update: 2024-04-24
Started: 2024-04-24