Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a list like:

mylist <- list(a = 1, b = list(A = 1, B = 2), c = list(C = 1, D = 3))

is there an (loop-free) way to identify the positions of the elements, e.g. if I want to replace a values of "C" with 5, and it does not matter where the element "C" is found, can I do something like:

Aindex <- find_index("A", mylist)
mylist[Aindex] <- 5

I have tried grepl, and in the current example, the following will work:

mylist[grepl("C", mylist)][[1]][["C"]]

but this requires an assumption of the nesting level.

The reason that I ask is that I have a deep list of parameter values, and a named vector of replacement values, and I want to do something like

 replacements <- c(a = 1, C = 5)
 for(i in names(replacements)){ 
    indx <- find_index(i, mylist)
    mylist[indx] <-  replacements[i]
  }

this is an adaptation to my previous question, update a node (of unknown depth) using xpath in R?, using R lists instead of XML

share|improve this question
add comment

1 Answer

One method is to use unlist and relist.

mylist <- list(a = 1, b = list(A = 1, B = 2), c = list(C = 1, D = 3))
tmp <- as.relistable(mylist)
tmp <- unlist(tmp)
tmp[grep("(^|.)C$",names(tmp))] <- 5
tmp <- relist(tmp)

Because list names from unlist are concatenated with a ., you'll need to be careful with grep and how your parameters are named. If there is not a . in any of your list names, this should be fine. Otherwise, names like list(.C = 1) will fall into the pattern and be replaced.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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