MuMIn (version 1.48.4)

Multi-Model Inference

Description

Tools for model selection and model averaging with support for a wide range of statistical models. Automated model selection through subsets of the maximum model, with optional constraints for model inclusion. Averaging of model parameters and predictions based on model weights derived from information criteria (AICc and alike) or custom model weighting schemes.

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Version

Install

install.packages('MuMIn')

Monthly Downloads

16,303

Version

1.48.4

License

GPL-2

Maintainer

Last Published

June 22nd, 2024

Functions in MuMIn (1.48.4)

Cement

Cement hardening data
loo

Leave-one-out cross-validation
get.models

Retrieve models from selection table
GPA

Grade Point Average data
jackknifeWeights

Jackknifed model weights
Beetle

Flour beetle mortality data
exprApply

Apply a function to calls inside an expression
cos2Weights

Cos-squared model weights
predict.averaging

Predict method for averaged models
par.avg

Parameter averaging
nested

Identify nested models
dredge

Automated model selection
Formula manipulation

Manipulate model formulas
Model utilities

Model utility functions
model.sel

model selection table
model.avg

Model averaging
plot.model.selection

Visualize model selection table
model.selection.object

Description of Model Selection Objects
merge.model.selection

Combine model selection tables
pdredge

Automated model selection using parallel computation
sw

Per-variable sum of model weights
stackingWeights

Stacking model weights
MuMIn-models

List of supported models
updateable

Make a function return updateable result
stdize

Standardize data
r.squaredGLMM

Pseudo-R-squared for Generalized Mixed-Effect models
r.squaredLR

Likelihood-ratio based pseudo-R-squared
subset.model.selection

Subsetting model selection table
std.coef

Standardized model coefficients
QIC

QIC and quasi-Likelihood for GEE
bootWeights

Bootstrap model weights
Weights

Akaike weights
MuMIn-package

Multi-model inference
QAIC

Quasi AIC or AICc
AICc

Second-order Akaike Information Criterion
BGWeights

Bates-Granger minimal variance model weights
coefplot

Plot model coefficients
arm.glm

Adaptive Regression by Mixing
Information criteria

Various information criteria