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.

struggling with this one :
Sample data :

    foo <- structure(c("1", "1", "1", "1", "1", "1", "2", "2", "2", "2",
"2", "2", "2", "2", "2", "C", "C", "C", NA, NA, NA, NA, "C",
NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, "C",
"C", NA, NA, NA, NA, NA, "C", "C", "C", "C", "C", "C", "C", "C",
"C", "C", "C", NA, NA, NA, NA, "C", "C", "C", "C", "C", "C",
"C", "C", NA, NA, NA, NA, NA, NA, NA, NA, "C", "C", "C", NA,
NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, "C", "C", "C", NA, NA,
NA, NA, NA, "C", "C", NA, NA, NA, NA, NA, "C", "C", "C", NA,
NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, "C", "C", NA, NA,
NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, NA, "C", "C", "C", "C",
"C", "C", "C", "C", "C", "C", "C", "C", "C", "C", "C", "C", "C",
"C", NA, NA, "C", "C", "C", "C", "C", NA, "C", "C", "C", "C",
"C", "C", "C", "C", "C", "C", "C", "C", "C", "C", "C", "C", "C",
"C", "C", NA, NA, "C", "C", NA, NA, NA, NA, NA, NA, NA, NA, NA,
NA, NA), .Dim = c(15L, 13L), .Dimnames = list(NULL, c("weeks",
"vv", "rv", "ja", "aa", "bv", "aj", "vb", "rj", "rr", "vr", "bb",
"jr")))

How to group theses datas by weeks and apply rle function ? Expected output would be :

out <- structure(c("weeks", "1", "2", "vv", "1", "1", "rv", "0", "1",
"ja", "1", "1", "aa", "1", "1", "bv", "1", "0", "aj", "1", "1",
"vb", "1", "0", "rj", "1", "0", "rr", "1", "1", "vr", "2", "2",
"bb", "1", "1", "jr", "1", "0"), .Dim = c(3L, 13L), .Dimnames = list(
    NULL, NULL))

Tried so far :

test <- aggregate(foo, by=data.frame(foo[,1]), function(x,na.rm=T) rle(as.numeric(x))$values)

Gives me a list (as expected with rle) which I could then compute and try to get the expected output. But I'm sure there is a cleaner way to accomplish that... Any ideas ?

Thanks for looking !

share|improve this question
    
do you really have a matrix input and want a matrix output? How are you determining the output values? I don't see how the 11h column (vr) in out isn't both 2 (or both 1...) You're looking for the number of runs in each week? –  Justin Oct 18 '12 at 16:15
    
Yes, matrix as input and as output. The output values are the numbers of runs in each weeks. Yes vr in out should be both 2, question edited. –  Chargaff Oct 18 '12 at 16:19
    
Almost... Great idea. Didn't know I could use condition within rle. If I understand your code, you "omit" NA values by specifying lengths > 1 ? Is that right ? The problem is that I need to sum those runs that are of length 1 too... –  Chargaff Oct 18 '12 at 16:58

2 Answers 2

up vote 4 down vote accepted

Apparently a bunch of ways to process the rle output; here's another.

d <- data.frame(foo)
aggregate(!is.na(d[,-1]), d[,1,drop=FALSE], function(x) sum(rle(x)$values))
#   weeks vv rv ja aa bv aj vb rj rr vr bb jr
# 1     1  1  0  1  1  1  1  1  1  1  2  1  1
# 2     2  1  1  1  1  0  1  0  0  1  2  1  0
share|improve this answer
1  
You can avoid first converting to a data.frame as follows: aggregate(!is.na(foo[, -1]), list(weeks = foo[, 1, drop=FALSE]), function(x) sum(rle(x)$values)). +1 –  Ananda Mahto Oct 18 '12 at 16:56
    
Works great on my actual data set. The idea was to !is.na. Why the drop=FALSE ? –  Chargaff Oct 18 '12 at 17:05
    
drop=FALSE keeps it as a data frame (which is a kind of list) so you don't need to wrap the second eargument in a call to list, as @mrdwab suggests. Either way works just fine, it's just personal preference as to which to use. –  Aaron Oct 18 '12 at 17:42

I wound up with something very similar... not sure which answer you're looking for:

aggregate(list(foo[, -1]), list(weeks = foo[, 1]), 
          function(x) length(na.omit(rle(x)$values)))

  weeks vv rv ja aa bv aj vb rj rr vr bb jr
1     1  1  0  1  1  1  1  1  1  1  2  1  1
2     2  1  1  1  1  0  1  0  0  1  2  1  0
share|improve this answer
    
+1 I didn't see the OP's updated "out". I think this is what they're looking for. If it is, I'll delete my answer to keep things tidy. By the way, were you able to get this output as is? I have to use rle(as.character(x)). –  Ananda Mahto Oct 18 '12 at 16:52
    
No, I couldn't get output as is, need as.character –  Chargaff Oct 18 '12 at 17:03
    
Oh, I have "options(stringsAsFactors=FALSE)` in my .Rprofile... always forget that its not default! –  Justin Oct 18 '12 at 17:05
    
Ahhh, that's why I couldn't use your code as is... Thank's ! –  Chargaff Oct 18 '12 at 17:09

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.