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R package emmeans: Estimated marginal means

Note: emmeans is a continuation of the package lsmeans. The latter will eventually be retired.

Features

Estimated marginal means (EMMs, previously known as least-squares means in the context of traditional regression models) are derived by using a model to make predictions over a regular grid of predictor combinations (called a reference grid). These predictions may possibly be averaged (typically with equal weights) over one or more of the predictors. Such marginally-averaged predictions are useful for describing the results of fitting a model, particularly in presenting the effects of factors. The emmeans package can easily produce these results, as well as various graphs of them (interaction-style plots and side-by-side intervals).

  • Estimation and testing of pairwise comparisons of EMMs, and several other types of contrasts, are provided. There is also a cld method for display of grouping symbols.

  • Two-way support of the glht function in the multcomp package.

  • For models where continuous predictors interact with factors, the package's emtrends function works in terms of a reference grid of predicted slopes of trend lines for each factor combination.

  • Vignettes are provided on various aspects of EMMs and using the package. See the CRAN page

Model support

  • The package incorporates support for many types of models, including standard models fitted using lm, glm, and relatives, various mixed models, GEEs, survival models, count models, ordinal responses, zero-inflated models, and others. Provisions for some models include special modes for accessing different types of predictions; for example, with zero-inflated models, one may opt for the estimated response including zeros, just the linear predictor, or the zero model. For details, see vignette("models", package = "emmeans")

  • Various Bayesian models (carBayes, MCMCglmm, MCMCpack) are supported by way of creating a posterior sample of least-squares means or contrasts thereof, which may then be examined using tools such as in the coda package.

  • Package developers may provide emmeans support for their models by writing recover_data and emm_basis methods. See vignette("extending", package = "emmeans")

Versions and installation

  • CRAN The latest CRAN version may be found at https://CRAN.R-project.org/package=emmeans. Also at that site, formatted versions of this package's vignettes may be viewed.

  • Github To install the latest development version from Github, install the newest version (definitely 2.0 or higher) of the devtools package; then run

remotes::install_github("rvlenth/emmeans", dependencies = TRUE, build_opts = "")

### To install without vignettes (faster):
remotes::install_github("rvlenth/emmeans")

Note: If you are a Windows user, you should also first download and install the latest version of Rtools.

For the latest release notes on this development version, see the NEWS file

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Version

Install

install.packages('emmeans')

Monthly Downloads

141,339

Version

1.5.2-1

License

GPL-2 | GPL-3

Issues

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Maintainer

Last Published

October 25th, 2020

Functions in emmeans (1.5.2-1)

add_grouping

Add a grouping factor
cld.emmGrid

Compact letter displays
auto.noise

Auto Pollution Filter Noise
emm_list

The emm_list class
str.emmGrid

Miscellaneous methods for emmGrid objects
MOats

Oats data in multivariate form
as.list.emmGrid

Convert to and from emmGrid objects
emmGrid-class

The emmGrid class
eff_size

Calculate effect sizes and confidence bounds thereof
contrast

Contrasts and linear functions of EMMs
extending-emmeans

Support functions for model extensions
emtrends

Estimated marginal means of linear trends
feedlot

Feedlot data
fiber

Fiber data
pigs

Effects of dietary protein on free plasma leucine concentration in pigs
oranges

Sales of oranges
as.mcmc.emmGrid

Support for MCMC-based estimation
emmeans-package

Estimated marginal means (aka Least-squares means)
emmobj

Construct an emmGrid object from scratch
models

Models supported in emmeans
emmip

Interaction-style plots for estimated marginal means
emmeans

Estimated marginal means (Least-squares means)
emm_options

Set or change emmeans options
joint_tests

Compute joint tests of the terms in a model
emm

Support for multcomp::glht
contrast-methods

Contrast families
neuralgia

Neuralgia data
qdrg

Quick and dirty reference grid
ref_grid

Create a reference grid from a fitted model
rbind.emmGrid

Combine or subset emmGrid objects
plot.emmGrid

Plot an emmGrid or summary_emm object
make.tran

Response-transformation extensions
pwpp

Pairwise P-value plot
hpd.summary

Summarize an emmGrid from a Bayesian model
ubds

Unbalanced dataset
update.emmGrid

Update an emmGrid object
regrid

Reconstruct a reference grid with a new transformation or posterior sample
nutrition

Nutrition data
summary.emmGrid

Summaries, predictions, intervals, and tests for emmGrid objects
pwpm

Pairwise P-value matrix (plus other statistics)
lsmeans

Wrappers for alternative naming of EMMs
xtable.emmGrid

Using xtable for EMMs