8

For simple glm objects, I can use predict(fit, type = "terms") to retrieve a matrix with fitted values for each term.

What is the equivalent for lmer resp. glmer fitted models? As far as I can see, the predict.merMod function does not support type = terms.

1

What is the equivalent for lmer resp. glmer fitted models?

I do not think there is one. Though, you can easily make one as follows

#####
# fit model with one terms which is a matrix
library(lme4)
fit <- lmer(Reaction ~ cbind(Days, (Days > 3) * Days) + (Days | Subject), 
            sleepstudy)

#####
# very similar code to `predict.lm`
pred_terms_merMod <- function(fit, newdata){
  tt <- terms(fit)
  beta <- fixef(fit)

  mm <- model.matrix(tt, newdata)
  aa <- attr(mm, "assign")
  ll <- attr(tt, "term.labels")
  hasintercept <- attr(tt, "intercept") > 0L
  if (hasintercept) 
    ll <- c("(Intercept)", ll)
  aaa <- factor(aa, labels = ll)
  asgn <- split(order(aa), aaa)
  if (hasintercept) {
    asgn$"(Intercept)" <- NULL
    avx <- colMeans(mm)
    termsconst <- sum(avx * beta)
  }
  nterms <- length(asgn)
  if (nterms > 0) {
    predictor <- matrix(ncol = nterms, nrow = NROW(mm))
    dimnames(predictor) <- list(rownames(mm), names(asgn))
    if (hasintercept) 
      mm <- sweep(mm, 2L, avx, check.margin = FALSE)
    for (i in seq.int(1L, nterms, length.out = nterms)) {
      idx <- asgn[[i]]
      predictor[, i] <- mm[, idx, drop = FALSE] %*% beta[idx]
    }
  } else {
    predictor <- ip <- matrix(0, n, 0L)
  }
  attr(predictor, "constant") <- if (hasintercept) termsconst else 0
  predictor
}

# use the function
newdata <- data.frame(Days = c(1, 5), Reaction = c(0, 0))
(out <- pred_terms_merMod(fit, newdata))
#R>   cbind(Days, (Days > 3) * Days)
#R> 1                        -21.173
#R> 2                         21.173
#R> attr(,"constant")
#R> [1] 283.24

#####
# confirm results
beta. <-  fixef(fit)
beta.[1] + beta.[2]
#R> (Intercept) 
#R>      262.07 
out[1] + attr(out, "constant")
#R> [1] 262.07

beta.[1] + (beta.[2] + beta.[3]) * 5
#R> (Intercept) 
#R>      304.41 
out[2] + attr(out, "constant")
#R> [1] 304.41

Extending the above to also include standard errors should be straightforward as far as I gather.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.