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Problem:

I'm working within an R workspace, and have gotten into a situation where I've got some randomly generated data with associated variables that I need to keep.

But there are a few buggy derived calculations that I need to remove so that I can cleanly test the fix on the same data.

In hindsight, I ought have used a fixed seed so I could just clear everything and re-generate the test with the fixed functions... however that's unfortunately not the situation.

So for the moment, I now need to remove the buggy variables and functions that I've defined, while keeping the correct ones.

Not Quite:

  • I don't want to use rm(list=ls()) as it will clobber the entire workspace.

  • And using remove('name1', 'name2', ...) involves too much typing when the number of variables to be removed is a dozen or more.

  • Ideally, I'd like to be able to inspect the definitions using ls() and pick out the indices of the ones I want to remove.

Something like the following would be perfect:

ls()                        # inspect definitions
delme <- c(3,5,7:9,11,13)   # names selected for removal
remove(ls()[delme])         # DESIRED SOLUTION -- doesn't quite work this way

Is there is way to do this?

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4  
Why doesn't rm(list=ls()[delme]) not work? – BrodieG Feb 10 '14 at 13:11
    
if you use the gdata package and then keep(ls()[-delme], sure = TRUE) what happens? – Mehdi Nellen Feb 10 '14 at 13:17
    
@BrodieG: Great that works! --- the key was list=. Just for information, why is the assignment to list required? (PS if you want to put it in an answer, I'm happy to accept it!) – Assad Ebrahim Feb 10 '14 at 13:19
2  
@AssadEbrahim, because if you don't do that it rm thinks that the first argument is the actual object to remove, as opposed to a list of the names of objects to remove (compare rm(a, b) vs rm(list=c("a", "b"))) – BrodieG Feb 10 '14 at 13:21
    
@BrodieG: Ok, that makes sense. Cheers! – Assad Ebrahim Feb 10 '14 at 13:23
up vote 2 down vote accepted

Assad, while I think the actual answer to the question is in the comments, let me suggest this pattern as a broader solution:

rm(list=
  Filter(
    Negate(is.na),                                  # filter entries corresponding to objects that don't meet function criteria   
    sapply(
      ls(pattern="^a"),                             # only objects that start with "a"
      function(x) if(is.matrix(get(x))) x else NA   # return names of matrix objects
) ) )

In this case, I'm removing all matrix object that start with "a". By modifying the pattern argument and the function used by sapply here, you can get pretty fine control over what you delete, without having to specify many names.

If you are concerned that this could delete something you don't want to delete, you can store the result of the Filter(... operation in a variable, review the contents, and then execute the rm(list=...) command.

share|improve this answer
    
Great addition -- I can see the power of this as a general pattern, including how to select using regular expressions (+1) (Though it's no longer a simple tool as you say.) – Assad Ebrahim Feb 10 '14 at 13:28

Try

eval(parse(text=paste("rm(",paste(ls()[delme],sep=","),")")))

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4  
Except in very specific circumstances (i.e., if you must evaluate arbitrary user input), you should never use eval(parse(...)). – Roland Feb 10 '14 at 13:34
    
@Roland: Why not? – Rufo Feb 10 '14 at 14:40
3  
Because it usually results in code that is impossible to read and maintain and there are always better alternatives. – Roland Feb 10 '14 at 15:25

I had a similar requirement. I pulled all the elements I needed to a list:

varsToPurge = as.list(ls())

I then reassign the few values I wish to keep with new variable names which will not be in the variable varsToPurge. After that I looped through the elements

for (j in 1:length(varsToPurge)){
  rm(list = as.character(varsToPurge[j]))
}

Do a little garbage collecting, and you maintain a clean environment as you go through your code.

gc()

You can also use a vector of row numbers you wish to keep instead and run through the vector in the loop but it won't be as dynamic if you add rough work you wish to remove.

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