[R] Effect size in mixed models

Dave Atkins datkins at fuller.edu
Fri Jun 23 18:41:11 CEST 2006


Spencer & Bruno--

You might to take a look at a paper by Kyle Roberts at:

http://www.hlm-online.com/papers/

Kyle has been working on the issue of effect-sizes in mixed-effects (aka 
multilevel aka HLM) for a couple years.  I haven't had a chance to compare what 
Spencer has suggested with Kyle's approach.  [Though, it would be *lovely* if 
there were an agreed upon method for estimating effect-sizes in mixed-effects 
models; in psychology, reviewers will bludgeon you for an effect-size...]

cheers, Dave
-- 
Dave Atkins, PhD
Assistant Professor in Clinical Psychology
Fuller Graduate School of Psychology
Email: datkins at fuller.edu



Spencer wrote:

   I just learned that my earlier suggestion was wrong.  It's better to
compute the variance of the predicted or fitted values and compare those
with the estimated variance components.

	  To see how to do this, consider the following minor modification of
an example in the "lme" documentation:

fm1. <- lme(distance ~ age, data = Orthodont, random=~1)
fm2. <- lme(distance ~ age + Sex, data = Orthodont, random = ~ 1)

# str(fm1.) suggested the following:
  > var(fm2.$fitted[, "fixed"]-fm1.$fitted[, "fixed"])
[1] 1.312756
  > VarCorr(fm1.)[, 1]
(Intercept)    Residual
   "4.472056"  "2.049456"
  > VarCorr(fm2.)[, 1]
(Intercept)    Residual
   "3.266784"  "2.049456"

	  In this example, the subject variance without considering "Sex" was
4.47 but with "Sex" in the model, it dropped to 3.27, while the Residual
variance remained unchanged at 2.05.  The difference between
fm2.$fitted[, "fixed"] and fm1.$fitted[, "fixed"] is the change in the
predictions generated by the addition of "Sex" to the model.  The
variance of that difference was 1.31.  Note that 3.27 + 1.31 = 4.58,
which is moderately close to 4.47.

	  In sum, I think we can get a reasonable estimate of the size of an
effect from the variance of the differences in the "fixed" portion of
the fitted model.

	  Comments?
	  Hope this helps.
	  Spencer Graves

Spencer Graves wrote:
 >       You have asked a great question:  It would indeed be useful to
 > compare the relative magnitude of fixed and random effects, e.g. to
 > prioritize efforts to better understand and possibly manage processes
 > being studied.  I will offer some thoughts on this, and I hope if there
 > are errors in my logic or if someone else has a better idea, we will
 > both benefit from their comments.
 >
 >       The ideal might be an estimate of something like a mean square for
 > a particular effect to compare with an estimated variance component.
 > Such mean squares were a mandatory component of any analysis of variance
 > table prior to the (a) popularization of generalized linear models and
 > (b) availability of software that made it feasible to compute maximum
 > likelihood estimates routinely for unbalanced, mixed-effects models.
 > However, anova(lme(...)) such mean squares are for most purposes
 > unnecessary cluster in a modern anova table.
 >
 >       To estimate a mean square for a fixed effect, consider the
 > following log(likelihood) for a mixed-effects model:
 >
 >       lglk = (-0.5)*(n*log(2*pi*var.e)-log(det(W)) +
 > t(y-X%*%b)%*%W%*%(y-X%*%b)/var.e),
 >
 > where n = the number of observations,
 >
 >       b = the fixed-effect parameter variance,
 >
 > and the covariance matrix of the residuals, after integrating out the
 > random effects is var.e*solve(W).  In this formulation, the matrix "W"
 > is a function of the variance components.  Since they are not needed to
 > compute the desired mean squares, they are suppressed in the notation here.
 >
 >       Then, the maximum likelihood estimate of
 >
 >       var.e = SSR/n,
 >
 > where SSR = t(y-X%*%b)%*%W%*%(y-X%*%b).
 >
 >       Then
 >
 >       mle.lglk = (-0.5)*(n*(log(2*pi*SSR/n)-1)-log(det(W))).
 >
 >       Now let
 >
 >       SSR0 = this generalized sum of squares of residuals (SSR) without
 > effect "1",
 >
 > and
 >
 >       SSR1 = this generalized SSR with this effect "1".
 >
 >       If I've done my math correctly, then
 >
 >       D = deviance = 2*log(likelihood ratio)
 >         = (n*log(SSR0/SSR1)+log(det(W1)/det(W0)))
 >
 >       For roughly half a century, a major part of "the analysis of
 > variance" was the Pythagorean idea that the sum of squares under H0 was
 > the sum of squares under H1 plus the sum of squares for effect "1":
 >
 >       SSR0 = SS1 + SSR1.
 >
 >       Whence,
 >
 >       exp((D/n)-log(det(W1)/det(W0))) = 1+SS1/SSR1.
 >
 > Thus,
 >
 >       SS1 = SSR1*(exp((D/n)-log(det(W1)/det(W0)))-1).
 >
 >       If the difference between deg(W1) and det(W0) can be ignored, we get:
 >
 >       SS1 = SSR1*(exp((D/n)-1).
 >
 >       Now compute MS1 = SS1/df1, and compare with the variance components.
 >
 >       If there is a flaw in this logic, I hope someone will disabuse me
 > of it.
 >
 >       If this seems too terse or convoluted to follow, please provide a
 > simple, self-contained example, as suggested in the posting guide!
 > "www.R-project.org/posting-guide.html".  You asked a theoretical
 > question, you got a theoretical answer.  If you want a concrete answer,
 > it might help to pose a more concrete question.
 >
 >       Hope this helps.
 >       Spencer Graves
 >
 > Bruno L. Giordano wrote:
 >> Hello,
 >> Is there a way to compare the relative relevance of fixed and random
 >> effects in mixed models? I have in mind measures of effect size in
 >> ANOVAs, and would like to obtain similar information with mixed models.
 >>
 >> Are there information criteria that allow to compare the relevance of
 >> each of the effects in a mixed model to the overall fit?
 >>
 >> Thank you,
 >>     Bruno
 >>
 >> ______________________________________________
 >> R-help at stat.math.ethz.ch mailing list
 >> https://stat.ethz.ch/mailman/listinfo/r-help
 >> PLEASE do read the posting guide!
 >> http://www.R-project.org/posting-guide.html
 >



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