4

I have an array of strings of characters made up of all the possible combinations of the 4 letters J, K, Q, Z. The entries in the array are made up of at least two letters and at most 4. For example: data<-c("QK", "KQ", "JKQZ", "KJZ").

I would like to count the number of times each entry in the array occurs but without differentiating between strings that are made up of the same letters but in different order. I know table(data) doesn't do this since it doesn't think of QK and KQ as the same and returns

data
JKQZ  KJZ   KQ   QK 
   1    1    1    1 

I have been looking at pmatch or charmatch but that doesn't seem to do what I want.

EDIT: I should clarify that there are no entries in which a letter is repeated. In essence, I cannot have an entry ZZ or KZK

5
  • 3
    Here's an awkword possible solution table(sapply(strsplit(data, ""), function(x) paste(sort(x), collapse = ""))) Commented May 27, 2015 at 20:42
  • So, basically, it rewrites each entry in alphabetical order and then uses table(), correct?
    – g_puffo
    Commented May 27, 2015 at 20:49
  • Yeah, something like that... Commented May 27, 2015 at 20:49
  • Would "QQQ" go in it's own bucket, or aggregated with "Q" ?
    – Neal Fultz
    Commented May 27, 2015 at 21:23
  • I should clarify that repetitions of letters in the same entry are not allowed.
    – g_puffo
    Commented May 27, 2015 at 21:24

2 Answers 2

2

Here's a longer variation on David's comment/answer:

vals    <- sort(unique(unlist(strsplit(data,''))))
combos  <- unlist(sapply(seq_along(vals),function(i)combn(vals,i,paste0,collapse="")))
newdata <- factor(sapply(strsplit(data,""),function(x)paste0(sort(x),collapse="")),
             levels=combos)
tab <- table(newdata)
# newdata
#    J    K    Q    Z   JK   JQ   JZ   KQ   KZ   QZ  JKQ  JKZ  JQZ  KQZ JKQZ 
#    0    0    0    0    0    0    0    2    0    0    0    1    0    0    1 
tab[tab>0] # alternately
#   KQ  JKZ JKQZ 
#    2    1    1 
1

I would first make a table per observation (set as a factor to get the zero cells), then hash each table and count that:

require(magrittr)
require(digest)
data<-c("QK", "KQ", "JKQZ", "KJZ")
tbl <- strsplit(data, "") %>% lapply(factor,levels=c("K","Q", "J", "Z")) %>%
lapply(table) %>%  do.call(what=rbind)
tbl

which gives this:

     K Q J Z
[1,] 1 1 0 0
[2,] 1 1 0 0
[3,] 1 1 1 1
[4,] 1 0 1 1

Then hash and count:

h <- apply(tbl, 1, digest)
tbl <- cbind(tbl, count=as.vector(table(h)[h]))
tbl <- tbl[!duplicated(h), ]

Here's the result:

     K Q J Z count
[1,] 1 1 0 0     2
[2,] 1 1 1 1     1
[3,] 1 0 1 1     1
0

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service and acknowledge you have read our privacy policy.

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