# Interaction analysis in emmeans

#### 2018-09-21

Models in which predictors interact seem to create a lot of confusion concerning what kinds of post hoc methods should be used. It is hoped that this vignette will be helpful in shedding some light on how to use the emmeans package effectively in such situations.

## Contents

Index of all vignette topics

## Interacting factors

As an example for this topic, consider the auto.noise dataset included with the package. This is a balanced 3x2x2 experiment with three replications. The response – noise level – is evaluated with different sizes of cars, types of anti-pollution filters, on each side of the car being measured.1

Let’s fit a model and obtain the ANOVA table:

noise.lm <- lm(noise ~ size * type * side, data = auto.noise)
anova(noise.lm)
## Analysis of Variance Table
##
## Response: noise
##                Df  Sum Sq Mean Sq  F value    Pr(>F)
## size            2 26051.4 13025.7 893.1905 < 2.2e-16
## type            1  1056.3  1056.3  72.4286 1.038e-08
## side            1     0.7     0.7   0.0476 0.8291042
## size:type       2   804.2   402.1  27.5714 6.048e-07
## size:side       2  1293.1   646.5  44.3333 8.730e-09
## type:side       1    17.4    17.4   1.1905 0.2860667
## size:type:side  2   301.4   150.7  10.3333 0.0005791
## Residuals      24   350.0    14.6

There are statistically strong 2- and 3-way interactions.

One mistake that a lot of people seem to make is to proceed too hastily to estimating marginal means (even in the face of all these interactions!). They would go straight to analyses like this:

emmeans(noise.lm, pairwise ~ size)
## NOTE: Results may be misleading due to involvement in interactions
## $emmeans ## size emmean SE df lower.CL upper.CL ## S 824.1667 1.102396 24 821.8914 826.4419 ## M 833.7500 1.102396 24 831.4748 836.0252 ## L 772.5000 1.102396 24 770.2248 774.7752 ## ## Results are averaged over the levels of: type, side ## Confidence level used: 0.95 ## ##$contrasts
##  contrast  estimate       SE df t.ratio p.value
##  S - M    -9.583333 1.559024 24  -6.147  <.0001
##  S - L    51.666667 1.559024 24  33.140  <.0001
##  M - L    61.250000 1.559024 24  39.287  <.0001
##
## Results are averaged over the levels of: type, side
## P value adjustment: tukey method for comparing a family of 3 estimates

The hasty analyst would thus conclude that the noise level is significantly higher for medium-sized cars than for small or large ones.

But as is seen in the message before the output, emmeans() valiantly tries to warn you that it may not be a good idea to average over factors that interact with the factor of interest. It isn’t always a bad idea to do this, but sometimes it definitely is.

What about this time? I think a good first step is always to try to visualize the nature of the interactions before doing any statistical comparisons. The following plot helps.

emmip(noise.lm, type ~ size | side)

Examining this plot, we see that the “medium” mean is not always higher; so the marginal means, and the way they compare, does not represent what is always the case. Moreover, what is evident in the plot is that the peak for medium-size cars occurs for only one of the two filter types. So it seems more useful to do the comparisons of size separately for each filter type. This is easily done, simply by conditioning on type:

emm_s.t <- emmeans(noise.lm, pairwise ~ size | type)
## NOTE: Results may be misleading due to involvement in interactions
emm_s.t
## $emmeans ## type = Std: ## size emmean SE df lower.CL upper.CL ## S 825.8333 1.559024 24 822.6157 829.0510 ## M 845.8333 1.559024 24 842.6157 849.0510 ## L 775.0000 1.559024 24 771.7823 778.2177 ## ## type = Octel: ## size emmean SE df lower.CL upper.CL ## S 822.5000 1.559024 24 819.2823 825.7177 ## M 821.6667 1.559024 24 818.4490 824.8843 ## L 770.0000 1.559024 24 766.7823 773.2177 ## ## Results are averaged over the levels of: side ## Confidence level used: 0.95 ## ##$contrasts
## type = Std:
##  contrast    estimate       SE df t.ratio p.value
##  S - M    -20.0000000 2.204793 24  -9.071  <.0001
##  S - L     50.8333333 2.204793 24  23.056  <.0001
##  M - L     70.8333333 2.204793 24  32.127  <.0001
##
## type = Octel:
##  contrast    estimate       SE df t.ratio p.value
##  S - M      0.8333333 2.204793 24   0.378  0.9245
##  S - L     52.5000000 2.204793 24  23.812  <.0001
##  M - L     51.6666667 2.204793 24  23.434  <.0001
##
## Results are averaged over the levels of: side
## P value adjustment: tukey method for comparing a family of 3 estimates

Not too surprisingly, the statistical comparisons are all different for standard filters, but with Octel filters, there isn’t much of a difference between small and medium size.

For comparing the levels of other factors, similar judgments must be made. It may help to construct other interaction plots with the factors in different roles. In my opinion, almost all meaningful statistical analysis should be grounded in evaluating both the statistical and practical significance of the estimated effects. Those who put all their attention on P values and asterisks (I call these people “* gazers”) are ignoring the fact that these don’t measure the sizes of the effects on a practical scale.2 An effect can be practically negligible but statistically significant, or vice versa, depending on sample size and error variance. Failure to describe what is actually going on in the data is a failure to do an adequate analysis. Use lots of plots, and think.

### Simple contrasts

An alternative way to specify conditional contrasts or comparisons is through the use of the simple argument to contrast() or pairs(), which amounts to specifying which factors are not used as by variables. For example, consider:

noise.emm <- emmeans(noise.lm, ~ size * side * type)

Then pairs(noise.emm, simple = "size") is the same as pairs(noise.emm, by = c("side", "type")).

One may specify a list for simple, in which case separate runs are made with each element of the list. Thus, pairs(noise.emm, simple = list("size", c("side", "type")) returns two sets of contrasts: comparisons of size for each combination of the other two factors; and comparisons of side*type combinations for each size.

A shortcut that generates all simple main-effect comparisons is to use simple = "each". In this example, the result is the same as obtained using simple = list("size", "side", "type").

Ordinarily, when simple is a list (or equal to "each"), a list of contrast sets is returned. However, if the additional argument combine is set to TRUE, they are all combined into one family:

contrast(noise.emm, "consec", simple = "each", combine = TRUE, adjust = "mvt")
##  side type  size contrast         estimate       SE df t.ratio p.value
##  L    Std   .    M - S        1.500000e+01 3.118048 24   4.811  0.0012
##  L    Std   .    L - M       -8.666667e+01 3.118048 24 -27.795  <.0001
##  R    Std   .    M - S        2.500000e+01 3.118048 24   8.018  <.0001
##  R    Std   .    L - M       -5.500000e+01 3.118048 24 -17.639  <.0001
##  L    Octel .    M - S       -3.333333e+00 3.118048 24  -1.069  0.9768
##  L    Octel .    L - M       -5.666667e+01 3.118048 24 -18.174  <.0001
##  R    Octel .    M - S        1.666667e+00 3.118048 24   0.535  0.9999
##  R    Octel .    L - M       -4.666667e+01 3.118048 24 -14.967  <.0001
##  .    Std   S    R - L       -1.833333e+01 3.118048 24  -5.880  0.0001
##  .    Std   M    R - L       -8.333333e+00 3.118048 24  -2.673  0.1715
##  .    Std   L    R - L        2.333333e+01 3.118048 24   7.483  <.0001
##  .    Octel S    R - L       -5.000000e+00 3.118048 24  -1.604  0.7746
##  .    Octel M    R - L       -4.385815e-15 3.118048 24   0.000  1.0000
##  .    Octel L    R - L        1.000000e+01 3.118048 24   3.207  0.0563
##  L    .     S    Octel - Std -1.000000e+01 3.118048 24  -3.207  0.0559
##  L    .     M    Octel - Std -2.833333e+01 3.118048 24  -9.087  <.0001
##  L    .     L    Octel - Std  1.666667e+00 3.118048 24   0.535  0.9999
##  R    .     S    Octel - Std  3.333333e+00 3.118048 24   1.069  0.9768
##  R    .     M    Octel - Std -2.000000e+01 3.118048 24  -6.414  <.0001
##  R    .     L    Octel - Std -1.166667e+01 3.118048 24  -3.742  0.0163
##
## P value adjustment: mvt method for 20 tests

The dots (.) in this result correspond to which simple effect is being displayed. If we re-run this same call with combine = FALSE or omitted, these twenty comparisons would be displayed in three broad sets of contrasts, each broken down further by combinations of by variables, each separately multiplicity-adjusted (a total of 16 different tables).

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## Interaction contrasts

An interaction contrast is a contrast of contrasts. For instance, in the auto-noise example, we may want to obtain the linear and quadratic contrasts of size separately for each type, and compare them. Here are estimates of those contrasts:

contrast(emm_s.t[[1]], "poly")   ## 'by = "type"' already in previous result 
## type = Std:
##  contrast   estimate       SE df t.ratio p.value
##  linear    -50.83333 2.204793 24 -23.056  <.0001
##  quadratic -90.83333 3.818813 24 -23.786  <.0001
##
## type = Octel:
##  contrast   estimate       SE df t.ratio p.value
##  linear    -52.50000 2.204793 24 -23.812  <.0001
##  quadratic -50.83333 3.818813 24 -13.311  <.0001
##
## Results are averaged over the levels of: side

The comparison of these contrasts may be done using the interaction argument in contrast() as follows:

IC_st <- contrast(emm_s.t[[1]], interaction = c("poly", "consec"))
IC_st
## type = Std:
##  size_poly  estimate       SE df t.ratio p.value
##  linear    -50.83333 2.204793 24 -23.056  <.0001
##  quadratic -90.83333 3.818813 24 -23.786  <.0001
##
## type = Octel:
##  size_poly  estimate       SE df t.ratio p.value
##  linear    -52.50000 2.204793 24 -23.812  <.0001
##  quadratic -50.83333 3.818813 24 -13.311  <.0001
##
## Results are averaged over the levels of: side

The practical meaning of this is that there isn’t a statistical difference in the linear trends, but the quadratic trend for Octel is greater than for standard filter types. (Both quadratic trends are negative, so in fact it is the standard filters that have more pronounced downward curvature, as is seen in the plot.) In case you need to understand more clearly what contrasts are being estimated, the coef() method helps:

coef(IC_st)
##   size  type c.1 c.2 c.3 c.4
## 1    S   Std  -1   1   0   0
## 2    M   Std   0  -2   0   0
## 3    L   Std   1   1   0   0
## 4    S Octel   0   0  -1   1
## 5    M Octel   0   0   0  -2
## 6    L Octel   0   0   1   1

Note that the 4th through 6th contrast coefficients are the negatives of the 1st through 3rd – thus a comparison of two contrasts.

By the way, “type III” tests of interaction effects can be obtained via interaction contrasts:

test(IC_st, joint = TRUE)
##  type  df1 df2 F.ratio p.value
##  Std     2  24 548.667  <.0001
##  Octel   2  24 372.095  <.0001

This result is exactly the same as the F test of size:type in the anova output.

The three-way interaction may be explored via interaction contrasts too:

contrast(emmeans(noise.lm, ~ size*type*side),
interaction = c("poly", "consec", "consec"))
##  size_poly type_consec side_consec  estimate        SE df t.ratio p.value
##  linear    Octel - Std R - L       -26.66667  6.236096 24  -4.276  0.0003
##  quadratic Octel - Std R - L       -16.66667 10.801234 24  -1.543  0.1359

One interpretation of this is that the comparison by type of the linear contrasts for size is different on the left side than on the right side; but the comparison of that comparison of the quadratic contrasts, not so much. Refer again to the plot, and this can be discerned as a comparison of the interaction in the left panel versus the interaction in the right panel.

Finally, emmeans provides a joint_tests() function that obtains and tests the interaction contrasts for all effects in the model and compiles them in one Type-III-ANOVA-like table:

joint_tests(noise.lm)
##  model term     df1 df2 F.ratio p.value
##  size             2  24 893.190  <.0001
##  type             1  24  72.429  <.0001
##  side             1  24   0.048  0.8291
##  size:type        2  24  27.571  <.0001
##  size:side        2  24  44.333  <.0001
##  type:side        1  24   1.190  0.2861
##  size:type:side   2  24  10.333  0.0006

You may even add by variable(s) to obtain separate ANOVA tables for the remaining factors:

joint_tests(noise.lm, by = "side")
## side = L:
##  model term df1 df2 F.ratio p.value
##  size         2  24 651.714  <.0001
##  type         1  24  46.095  <.0001
##  size:type    2  24  23.524  <.0001
##
## side = R:
##  model term df1 df2 F.ratio p.value
##  size         2  24 285.810  <.0001
##  type         1  24  27.524  <.0001
##  size:type    2  24  14.381  0.0001

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## Interactions with covariates

Consider the oranges dataset included with the package. These data concern the sales of two varieties of oranges. The prices (price1 and price2) were experimentally varied in different stores and different days, and the responses sales1 and sales2 were observed. Let’s consider three multivariate models for these data, with additive effects for days and stores, and different levels of fitting on the prices:

org.quad <- lm(cbind(sales1, sales2) ~ poly(price1, price2, degree = 2)
+ day + store, data = oranges)
org.int <- lm(cbind(sales1, sales2) ~ price1 * price2 + day + store, data = oranges)
org.add <- lm(cbind(sales1, sales2) ~ price1 + price2 + day + store, data = oranges)

Being a multivariate model, emmeans methods will distinguish the responses as if they were levels of a factor, which we will name “variety”. An interesting way to view these models is to look at how they predict sales of each variety at each observed values of the prices:

emmip(org.quad, price2 ~ price1 | variety, mult.name = "variety", cov.reduce = FALSE)

The trends portrayed here are quite sensible: In the left panel, as we increase the price of variety 1, sales of that variety will tend to decrease – and the decrease will be faster when the other variety of oranges is low-priced. In the right panel, as price of variety 1 increases, sales of variety 2 will increase when it is low-priced, but could decrease also at high prices because oranges in general are just too expensive. A plot like this for org.int will be similar but all the curves will be straight lines; and the one for plot.add will have all lines parallel. In all models, though, there are implied price1:variety and price2:variety interactions, because we have different regression coefficients for the two responses.

Which model should we use? They are nested models, so they can be compared by anova():

anova(org.quad, org.int, org.add)
## Analysis of Variance Table
##
## Model 1: cbind(sales1, sales2) ~ poly(price1, price2, degree = 2) + day +
##     store
## Model 2: cbind(sales1, sales2) ~ price1 * price2 + day + store
## Model 3: cbind(sales1, sales2) ~ price1 + price2 + day + store
##   Res.Df Df Gen.var.   Pillai approx F num Df den Df Pr(>F)
## 1     20      22.798
## 2     22  2   21.543 0.074438  0.38658      4     40 0.8169
## 3     23  1   23.133 0.218004  2.64840      2     19 0.0967

It seems like the full-quadratic model has little advantage over the interaction model. Strict .05-significance people would, I suppose, settle on the additive model. I like org.int, but what follows could be done with any of them.

To summarize and test the results compactly, it makes sense to obtain estimates of a representative trend in each of the left and right panels, and perhaps to compare them. In turn, that can be done by obtaining the slope of the curve (or line) at the average value of price2. The emtrends() function is designed for exactly this kind of purpose. It uses a difference quotient to estimate the slope of a line fitted to a given variable. It works just like emmeans() except for requiring the variable to use in the difference quotient. Using the org.int model:

emtrends(org.int, pairwise ~ variety, var = "price1", mult.name = "variety")
## $emtrends ## variety price1.trend SE df lower.CL upper.CL ## sales1 -0.7489343 0.1713333 22 -1.104258 -0.3936107 ## sales2 0.1376322 0.2140952 22 -0.306374 0.5816384 ## ## Results are averaged over the levels of: day, store ## Confidence level used: 0.95 ## ##$contrasts
##  contrast          estimate        SE df t.ratio p.value
##  sales1 - sales2 -0.8865665 0.2402569 22   -3.69  0.0013
##
## Results are averaged over the levels of: day, store

From this, we can say that, starting with price1 and price2 both at their average values, we expect sales1 to decrease by about .75 per unit increase in price1 (statistically significant since the confidence interval excludes zero); meanwhile, a slight increase (but not significant) of sales2 may occur. Marginally, the first variety has a .89 disadvantage relative to sales of the second variety.

Other analyses (not shown) with price2 set at a higher value will reduce these effects, while setting price2 lower will exaggerate all these effects. If the same analysis is done with the quadratic model, the the trends are curved, and so the results will depend somewhat on the setting for price1. The graph above gives an indication of the nature of those changes.

Similar results hold when we analyze the trends for price2:

emtrends(org.int, pairwise ~ variety, var = "price2", mult.name = "variety")
## $emtrends ## variety price2.trend SE df lower.CL upper.CL ## sales1 0.1718250 0.1023334 22 -0.04040137 0.3840514 ## sales2 -0.7447521 0.1278740 22 -1.00994656 -0.4795577 ## ## Results are averaged over the levels of: day, store ## Confidence level used: 0.95 ## ##$contrasts
##  contrast         estimate        SE df t.ratio p.value
##  sales1 - sales2 0.9165772 0.1434998 22   6.387  <.0001
##
## Results are averaged over the levels of: day, store

At the averages, increasing the price of variety 2 has the effect of decreasing sales of variety 2 while slightly increasing sales of variety 1 – a marginal difference of about .92.

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## Summary

Interaction, by nature, make things more complicated. One must resist pressures and inclinations to try to produce simple bottom-line conclusions. Interactions require more work and more patience; they require presenting more cases – more than are presented in the examples in this vignette – in order to provide a complete picture.

Index of all vignette topics

1. I sure wish I could ask some questions about how how these data were collected; for example, are these independent experimental runs, or are some cars measured more than once? The model is based on the independence assumption, but I have my doubts.

2. You may have noticed that there are no asterisks in the ANOVA table in this vignette. I habitually opt out of star-gazing via options(show.signif.stars = FALSE)