I have a list like this:

mylist <- list(PP = c("PP 1", "OMITTED"),
           IN01 = c("DID NOT PARTICIPATE", "PARTICIPATED", "OMITTED"),                     
           RD1 = c("YES", "NO", "NOT REACHED", "INVALID", "OMITTED"),
           RD2 = c("YES", "NO", "NOT REACHED", "NOT AN OPTION", "OMITTED"),
           LOS = c("LESS THAN 3", "3 TO 100", "100 TO 500", "MORE THAN 500", "LOGICALLY NOT APPLICABLE", "OMITTED"),
           COM = c("BAN", "SBAN", "RAL"), 
           VR1 = c("WITHIN 30", "WITHIN 200", "NOT AVAILABLE", "OMITTED"),                         
           INF = c("A LOT", "SOME", "LITTLE OR NO", "NOT APPLICABLE", "OMITTED"),               
           IST = c("FULL-TIME", "PART-TIME", "FULL STAFFED", "NOT STAFFED", "LOGICALLY NOT APPLICABLE", "OMITTED"),
           CMP = c("ALL", "MOST", "SOME", "NONE", "LOGICALLY NOT APPLICABLE", "OMITTED"))

I have another list like this:

matchlist <- list("INVALID", c("INVALID", "OMITTED OR INVALID"),
c("INVALID", "OMITTED"), "OMITTED", c("NOT REACHED", "INVALID", "OMITTED"),
c("LOGICALLY NOT APPLICABLE", "INVALID", "OMITTED"),
c("LOGICALLY NOT APPLICABLE", "INVALID", "OMITTED OR INVALID"),
c("Not applicable", "Not stated"), c("Not reached", "Not administered/missing by design", "Presented but not answered/invalid"),
c("Not administered/missing by design", "Presented but not answered/invalid"),
"OMITTED OR INVALID",
c("LOGICALLY NOT APPLICABLE", "OMITTED OR INVALID"),
c("NOT REACHED", "OMITTED"),
c("NOT APPLICABLE", "OMITTED"), 
c("LOGICALLY NOT APPLICABLE", "OMITTED"),
c("LOGICALLY NOT APPLICABLE", "NOT REACHED", "OMITTED"),
"NOT EXCLUDED", c("Default", "Not applicable", "Not stated"), c("Valid Skip", "Not Reached", "Not Applicable", "Invalid", "No Response"),
c("Not administered", "Omitted"),
c("NOT REACHED", "INVALID RESPONSE", "OMITTED"),
c("INVALID RESPONSE", "OMITTED"))

As you can see, some of the vectors in matchlist partially match vectors in mylist. In some cases the vectors in matchlist have exact match with part of vectors in mylist. For example, the last values of RD1 in mylist match the vector in the fifth component of matchlist, but RD2 does not match it, although common values are present. The values in RD2 in mylist ("NOT REACHED", "NOT AN OPTION", "OMITTED") together and in this order do not have a match in any of the vectors in matchlist. It is the same for the values of COM in mylist.

What I am trying to achieve is to compare the elements in each vector in mylist against each vector in matchlist, extract the values that are common and match the values in matchlist in the same order, and store them in another list. The desired result shall look like this:

$PP
[1] "OMITTED"

$IN01
[1] "OMITTED"

$RD1
[1] "NOT REACHED" "INVALID" "OMITTED"

$RD2
character(0)

$LOS
[1] "LOGICALLY NOT APPLICABLE" "OMITTED"

$COM
character(0)

$VR1
[1] "OMITTED"

$INF
[1] "NOT APPLICABLE" "OMITTED"

$IST
[1] "LOGICALLY NOT APPLICABLE" "OMITTED"

$CMP
[1] "LOGICALLY NOT APPLICABLE" "OMITTED"

What I tried so far:

Using intersect

lapply(mylist, function(i) {
  intersect(i, lapply(matchlist, function(i) {i}))
})

It returns only the last value in each vector of matchlist ("OMITTED").

Using match through %in%:

lapply(mylist, function(i) {
  i[which(i %in% matchlist)]
})

Returns the desired result only for RD1 ("INVALID", "OMITTED"), for the rest it returns just the last value ("OMITTED"), except for COM which is correct.

Using mapply and intersect:

mapply(intersect, mylist, matchlist)

Returns a long list with mixture of pretty much everything, including combinations that should not be there, plus a warning for the unequal lengths.

Can someone help, please?

  • 1
    With RD1 as an example, what are your expectations when you have multiple matches, the longest one (by vector length)? mapply is not what you want here, it does intersect(mylist[[1]], matchlist[[1]]), then intersect(mylist[[2]], matchlist[[2]]), etc. – r2evans Mar 14 at 15:41
  • @r2evans - not sure I understand, but the strings in mylist should match entire vector in matchlist. That is, values in RD1 should match the fifth vector in mylist only (c("NOT REACHED", "INVALID", "OMITTED")) and nothing else. – panman Mar 14 at 15:55
  • 1
    RD1 matches one word each from matchlist indices 1, 2, 4, 7, 14, 15, and 22; it matches two words each from 3, 6, 13, 16, and 21; and three words from 5. It "seems obvious" that you want the longest of those, is that true? – r2evans Mar 14 at 16:55
up vote 1 down vote accepted

There are some really simple/good answers, but they all seem to rely on unlist. I'm assuming that you need to preserve the grouping within matchlist, so unlisting them does not make sense. Here's a solution that works without that, using a double-lapply loop as you started to do:

out <- lapply(mylist, function(this) {
  mtch <- lapply(matchlist, intersect, this)
  wh <- which.max(lengths(mtch))
  if (length(wh)) mtch[[wh]] else character(0)
})
str(out)
# List of 9
#  $ PP  : chr "OMITTED"
#  $ IN01: chr "OMITTED"
#  $ RD1 : chr [1:3] "NOT REACHED" "INVALID" "OMITTED"
#  $ LOS : chr [1:2] "LOGICALLY NOT APPLICABLE" "OMITTED"
#  $ COM : chr(0) 
#  $ VR1 : chr "OMITTED"
#  $ INF : chr [1:2] "NOT APPLICABLE" "OMITTED"
#  $ IST : chr [1:2] "LOGICALLY NOT APPLICABLE" "OMITTED"
#  $ CMP : chr [1:2] "LOGICALLY NOT APPLICABLE" "OMITTED"

It always returns a vector with the most number of matches, but if there are (somehow) more than one, I think it will preserve the natural order and return the first of said long-matches. (The question there is: "does which.max preserve natural order?" I think it does but have not verified.)

UPDATE

The constraint was added that not only the presence and order of the matchlist vectors was required, but also that there are no interloping words. For instance, if as suggested in the comments, mylist$RD1 has "BLAH", then it will not longer match with matchlist[[5]].

Checking for a perfectly-ordered subset of one vector to another is a bit more problematic (and therefore not a code-golf champion), and often scales poorly because we don't have easy subset determination. With that caveat, this implementation does some nested *apply functions ...

(NB: it was suggested in a comment that $RD1 should return character(0), but it does have "INVALID" which matches one of the single-length components of matchlist, so it should match, just not the longer one.)

out <- lapply(mylist, function(this) {
  ind <- lapply(matchlist, function(a) which(this == a[1]))
  perfectmatches <- mapply(function(ml, allis, this) {
    length(ml) * any(sapply(allis, function(i) all(ml == this[ i + seq_along(ml) - 1 ])))
  }, matchlist, ind, MoreArgs = list(this=this))
  if (any(perfectmatches) > 0) {
    wh <- which.max(perfectmatches)
    return(matchlist[[wh]])
  } else return(character(0))
})
str(out)
# List of 9
#  $ PP  : chr "OMITTED"
#  $ IN01: chr "OMITTED"
#  $ RD1 : chr "INVALID"
#  $ LOS : chr [1:2] "LOGICALLY NOT APPLICABLE" "OMITTED"
#  $ COM : chr(0) 
#  $ VR1 : chr "OMITTED"
#  $ INF : chr [1:2] "NOT APPLICABLE" "OMITTED"
#  $ IST : chr [1:2] "LOGICALLY NOT APPLICABLE" "OMITTED"
#  $ CMP : chr [1:2] "LOGICALLY NOT APPLICABLE" "OMITTED"
  • Try mylist <- list(A = 1:3); matchlist <- list(1, 2:3); then out gives only 2 3. I doubt that that's the expected output. – Julius Vainora Mar 14 at 17:27
  • 1
    That's one way my interpretation of the question differs from yours, and it's an intentional difference. Ultimately I do not know, perhaps panman will come back with some clarification. – r2evans Mar 14 at 19:00
  • Sorry, was out of the office. Actually I owe an apology to everyone, the question was probably not formulated well. Try to change RD1 in mylist to c("YES", "NO", "NOT REACHED", "BLAH", "INVALID", "OMITTED"). Then the result should return character(0) because it has no match of its values in the same order in any of the vectors in matchlist, as the question states. Sorry for the confusion. – panman Mar 22 at 21:54
  • 1
    Yeah, you're going to need to edit your question and add that constraint, as I feel it is easy to assume the presence of interlopers ("BLAH") are not problematic. – r2evans Mar 22 at 22:02
  • 1
    panman, see my edits ... – r2evans Mar 29 at 22:38

Here is a simple solution using unlist with matchlist:

lapply(mylist, function(x) x[x %in% unlist(matchlist)])

Output (new list):

$PP
[1] "OMITTED"

$IN01
[1] "OMITTED"

$RD1
[1] "NOT REACHED" "INVALID"     "OMITTED"    

$LOS
[1] "LOGICALLY NOT APPLICABLE" "OMITTED"                 

$COM
character(0)

$VR1
[1] "OMITTED"

$INF
[1] "NOT APPLICABLE" "OMITTED"       

$IST
[1] "LOGICALLY NOT APPLICABLE" "OMITTED"                 

$CMP
[1] "LOGICALLY NOT APPLICABLE" "OMITTED"                 
  • Excellent! Thank you very much! Can you please explain why unlisting matchlist works in this case, I am not sure I understand it, it produces a single vector from matchlist. – panman Mar 14 at 16:00
  • Using ?unlist should help! Given a list, it will return a single vector with all individual components on the list. You can then apply %in% that returns a logic vector indicating which components of the first vector are in the second (which is the unlisted list). – Carles Mitjans Mar 14 at 16:03
  • Thank you for the explanation too. – panman Mar 14 at 16:06

Writing simply

lapply(mylist, intersect, unlist(matchlist))

also works.

  • wow, that really took the OPs ideas to a working and short solution. – Andre Elrico Mar 14 at 15:57
  • Thanks a lot! As I already asked Carles Mitjans, can you please explain why unlisting matchlist works in this case, I am not sure I understand it, it produces a single vector from matchlist. – panman Mar 14 at 16:03
  • As Charles told you: type ?unlist into R console. Read it. Then do the Examples at the end of the Info. Reading and understanding the manual is how you get a pro in R. – Andre Elrico Mar 14 at 16:07
  • Thank you very much! – panman Mar 14 at 16:14
  • To add to that, @panman, I think that, given the expected output, your problem currently is described in a slightly confusing manner and could be stated differently, showing clearly why unlist is the way to go. You only care which elements in mylist[[i]] exist somewhere in matchlist, meaning that there is no need to count the number of occurrences (hence intersect) or keep track of their place in matchlist (hence unlist). The order is also preserved by intersect. – Julius Vainora Mar 14 at 16:17
lapply(mylist, function(i) {
  unlist(sapply(i,function(x){if(any(grepl(paste0("^",x,"$"),matchlist))){x}}))
})

I added the "\b" before and after the string because of the "NO" that can lead to finding "NOT". Using grepl is surely not the best way as the other answer show :)

  • Thanks a lot! This is an interesting solution. – panman Mar 14 at 16:02
  • adding \\b is not good enough. You should add ^ and $ arround. (Besides the fact this solution is impressive but inferior to the others.) – Andre Elrico Mar 14 at 16:12
  • @AndreElrico thank you, indeed I should add these two. And yes clearly inferior, but still i though it was worth it – denis Mar 14 at 16:18
  • It's absolutely worth it! \\b should be REPLACED by ^ and $ respectively. Otherwise "\\bNO\\b" would match "RAND NO RAND". – Andre Elrico Mar 14 at 16:22

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