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Here's a sample column of my data frame, RR is a header :

RR
Cvv  
Cvv  
Caa 

What I need is to "invert" the datas, so to get substrings vv and aa as headers, and RR in the data frame. The resulting matrix would be :

vv  | aa  
CRR |  
CRR |  
    | CRR  

So we get the same relationships in both matrix. On the first and second row, vv is coupled with RR. On the third row, aa is coupled with RR.

Is this achievable with R ? Any ideas ?

Thanks for looking !

I oversimplified my datas in the example above. So here's a sample of my actual dataset :

> dput(head(A1F[4:15],n=20))
structure(list(RR = structure(c(15L, 15L, 15L, 27L, 1L, 1L, 1L, 
1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L), .Label = c("", 
" ", "Caa", "Caj", "Cbb", "Cbb ", "Cbv", "Cja", "Cjr", "Crj", 
"Crr", "Crv", "Cvb", "Cvr", "Cvv", "Gaa", "Gaj", "Gbb", "Gbv", 
"Gja", "Gjr", "Grj", "Grr", "Grv", "Gvb", "Gvr", "Gvv"), class = "factor"), 
    AA = structure(c(13L, 13L, 13L, 1L, 1L, 1L, 1L, 15L, 27L, 
    27L, 27L, 27L, 27L, 27L, 27L, 27L, 27L, 27L, 27L, 1L), .Label = c("", 
    "Caa", "Caj", "Car", "Cbb", "Cbv", "Cja", "Cjr", "Cjr ", 
    "Crj", "Crr", "Crv", "Cvb", "Cvr", "Cvv", "Gaa", "Gaj", "Gbb", 
    "Gbv", "Gja", "Gjr", "Grj", "Grr", "Grv", "Gvb", "Gvr", "Gvv"
    ), class = "factor"), BB = structure(c(9L, 9L, 9L, 9L, 9L, 
    9L, 9L, 9L, 9L, 9L, 9L, 9L, 9L, 9L, 9L, 9L, 9L, 9L, 9L, 9L
    ), .Label = c("", "?", "Caa", "Caj", "Cbv", "Cja", "Cjr", 
    "Crj", "Crr", "Crv", "Cvb", "Cvr", "Cvv", "Gaa", "Gaj", "Gbv", 
    "Gja", "Gjr", "Grj", "Grr", "Grv", "Gvb", "Gvr", "Gvv"), class = "factor"), 
    VV = structure(c(8L, 8L, 8L, 8L, 8L, 8L, 8L, 8L, 8L, 8L, 
    8L, 1L, 1L, 16L, 16L, 16L, 16L, 16L, 16L, 16L), .Label = c("", 
    " ", "Caa", "Caj", "Caj+", "Cbb", "Cbv", "Cja", "Cjr", "Crv", 
    "Cvb", "Cvr", "Cvv", "Gaa", "Gbb", "Gja", "Gjr", "Grv", "Gvb", 
    "Gvr"), class = "factor"), RJ = structure(c(8L, 3L, 3L, 1L, 
    1L, 12L, 12L, 12L, 12L, 12L, 1L, 12L, 12L, 12L, 12L, 12L, 
    12L, 12L, 12L, 12L), .Label = c("", "Caa", "Caj", "Cbv", 
    "Ccrj", "Cja", "Cjr", "Crj", "Crj ", "Crr", "Crv", "Cvr", 
    "Cvv", "Gaa", "Gaj", "Gbv", "Gja", "Gjr", "Grj", "Grr", "Grv", 
    "Gvr", "Gvv"), class = "factor"), JR = structure(c(7L, 7L, 
    18L, 18L, 18L, 18L, 18L, 18L, 18L, 18L, 18L, 18L, 18L, 18L, 
    18L, 18L, 18L, 18L, 18L, 18L), .Label = c("", "Caa", "Caj", 
    "Cbv", "Cja", "Cjr", "Crj", "Crr", "Crv", "Cvb", "Cvr", "Cvv", 
    "Gaa", "Gaj", "Gbv", "Gja", "Gjr", "Grj", "Grr", "Grv", "Grv ", 
    "Gvb", "Gvb ", "Gvr", "Gvv"), class = "factor"), BV = structure(c(4L, 
    4L, 4L, 4L, 4L, 4L, 4L, 4L, 4L, 4L, 4L, 4L, 4L, 4L, 4L, 4L, 
    4L, 4L, 4L, 4L), .Label = c("", "Caa", "Caj", "Cbb", "Cbv", 
    "Cja", "Cjr", "Crj", "Crr", "Crv", "Cvb", "Cvr", "Cvv", "Gaa", 
    "Gaj", "Gbb", "Gbv", "Gja", "Gjr", "Grj", "Grv", "Gvb", "Gvr", 
    "Gvv", "R"), class = "factor"), VB = structure(c(1L, 1L, 
7L, 7L, 18L, 18L, 1L, 1L, 10L, 10L, 21L, 21L, 21L, 1L, 21L, 
21L, 21L, 21L, 21L, 1L), .Label = c("", "Caa", "Caj", "Cbb", 
"Cbv", "Cja", "Cjr", "Crj", "Crr", "Crv", "Cvb", "Cvv", "Gaa", 
"Gaj", "Gbb", "Gbv", "Gja", "Gjr", "Grj", "Grr", "Grv", "Gvb", 
"Gvr", "Gvv"), class = "factor"), AJ = structure(c(2L, 2L, 
2L, 2L, 2L, 2L, 2L, 2L, 1L, 4L, 1L, 1L, 1L, 1L, 1L, 1L, 10L, 
1L, 10L, 10L), .Label = c("", "Caa", "Caj", "Cbb", "Cbv", 
"Cja", "Cjr", "Crj", "Crv", "Cvb", "Cvr", "Cvv", "Gaa", "Gaj", 
"Gbb", "Gbv", "Gja", "Gjr", "Grj", "Grj ", "Grr", "Grv", 
"Gvb", "Gvr", "Gvv"), class = "factor"), JA = structure(c(10L, 
10L, 10L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 
1L, 6L, 6L, 6L, 6L), .Label = c("", "Caa", "Caj", "Cbv", 
"Cja", "Cjr", "Crr", "Crv", "Cvb", "Cvr", "Cvv", "Gaa", "Gaj", 
"Gbv", "Gja", "Gjr", "Grr", "Grv", "Gvb", "Gvv"), class = "factor"), 
VR = structure(c(1L, 5L, 5L, 5L, 16L, 16L, 16L, 16L, 16L, 
16L, 16L, 16L, 16L, 16L, 16L, 16L, 16L, 16L, 16L, 16L), .Label = c("", 
"Caa", "Caj", "Caj ", "Cbv", "Cja", "Cjr", "Crj", "Crr", 
"Crv", "Cvb", "Cvr", "Cvv", "Gaa", "Gaj", "Gbv", "Gja", "Gjr", 
"Grj", "Grr", "Grv", "Gvb", "Gvr", "Gvv"), class = "factor"), 
RV = structure(c(1L, 1L, 1L, 1L, 1L, 1L, 1L, 1L, 3L, 3L, 
15L, 15L, 15L, 15L, 15L, 15L, 15L, 15L, 1L, 1L), .Label = c("", 
"Caa", "Caj", "Cbb", "Cbv", "Cja", "Cjr", "Crj", "Crr", "Crv", 
"Cvr", "Cvv", "Cvv ", "Gaa", "Gaj", "Gbb", "Gbv", "Gja", 
"Gjr", "Grj", "Grr", "Grv", "Gvr", "Gvv"), class = "factor")), .Names = c("RR", 
"AA", "BB", "VV", "RJ", "JR", "BV", "VB", "AJ", "JA", "VR", "RV"
), row.names = c(NA, 20L), class = "data.frame")

The desired matrix would keep the relationships and row order, as stated above. GSee provided an answer that I could apply, but only to one column of my matrix, as [[ select for just specific entry and selecting multiple entry's with [ doesn't work. I'm not sure if I'm heading in the right direction with this...

Here's what the desired output (the first three rows) would look like, based on the actual dataset (as above):

structure(list(vv = structure(c(1L, 1L, 1L), .Label = "CRR", class = "factor"), 
    rv = c(NA, NA, NA), ja = structure(c(1L, 1L, 1L), .Label = "CVV", class = "factor"), 
    aa = structure(c(1L, 1L, 1L), .Label = "CAJ", class = "factor"), 
    bv = structure(c(1L, 2L, 2L), .Label = c("", "CVR"), class = "factor"), 
    aj = structure(c(1L, 2L, 2L), .Label = c("", "CRJ"), class = "factor"), 
    vb = structure(c(1L, 1L, 1L), .Label = "CAA", class = "factor"), 
    rj = structure(c(2L, 1L, 1L), .Label = c("", "CRJ"), class = "factor"), 
    rr = structure(c(1L, 1L, 1L), .Label = "CBB", class = "factor"), 
    vr = structure(c(1L, 1L, 1L), .Label = "CJA", class = "factor"), 
    bb = structure(c(1L, 1L, 1L), .Label = "CBV", class = "factor"), 
    jr = c(NA, NA, NA)), .Names = c("vv", "rv", "ja", "aa", "bv", 
"aj", "vb", "rj", "rr", "vr", "bb", "jr"), class = "data.frame", row.names = c(NA, 
-3L))

I hope this make more sense.

share|improve this question
1  
Is the header always going to be two letters and are the values always "C" then two letters? –  Jared Jun 16 '12 at 21:42
    
The headers are always going to be two letters but the values before the two letters will vary "C","G" or "R" –  Chargaff Jun 16 '12 at 21:46
1  
If you're going to ask a gimme teh codez question, I really don't think it is too much to ask that you provide a sample of the input data you're using (without errors), and the full output you expect from the same data –  GSee Jun 18 '12 at 2:49
    
@GSee Yes, I agree. I usually try to avoid, the best I can, theses questions. I also should have asked it in a better way. I thank you for taking the time to understand my query and to provide explanation with your code. It's very appreciated, I'll learn from this... –  Chargaff Jun 18 '12 at 21:41

2 Answers 2

up vote 3 down vote accepted

Alright. i haz teh codez 4 u.

#dat is the data.frame that was created from the `dput` output in the question
m <- as.matrix(dat) #convert to matrix
m[10, "AJ"] <- "" # Fix the typo/error in your data

Find the names of the output matrix, and make the matrix (filled with NA for now)

ocn <- unique(substr(paste(m[m!=""]), 2, 3)) #out column names
out <- matrix(NA, nrow(m), length(ocn))
colnames(out) <- ocn

loop through each row of each column

for (i in seq_len(NCOL(m))) { #for each column
  cn <- colnames(m)[i] #this will become the second 2 characters of new value
  for (j in seq_along(m[, i])) { # for each row of this column
    if (nzchar(m[j, i])) { # if there is something there (i.e. it is not "")
      # do the substitution
      out[j, substr(m[j, i], 2, 3)] <- paste0(substr(m[j, i], 1, 1), cn)   
    }
  }
}
out
#      vv    vb    rr    ja    rj    aj    vr    bb    jr    rv    aa    bv   
# [1,] "CRR" "CAA" "CBB" "CVV" "CJR" NA    "CJA" "CBV" NA    NA    "CAJ" NA   
# [2,] "CRR" "CAA" "CBB" "CVV" "CJR" "CRJ" "CJA" "CBV" NA    NA    "CAJ" "CVR"
# [3,] "CRR" "CAA" "CBB" "CVV" "GJR" "CRJ" "CJA" "CBV" "CVB" NA    "CAJ" "CVR"
# [4,] "GRR" NA    "CBB" "CVV" "GJR" NA    NA    "CBV" "CVB" NA    "CAJ" "CVR"
# [5,] NA    NA    "CBB" "CVV" "GJR" NA    NA    "CBV" "GVB" NA    "CAJ" "GVR"
# [6,] NA    NA    "CBB" "CVV" "GJR" NA    "CRJ" "CBV" "GVB" NA    "CAJ" "GVR"
# [7,] NA    NA    "CBB" "CVV" "GJR" NA    "CRJ" "CBV" NA    NA    "CAJ" "GVR"
# [8,] "CAA" NA    "CBB" "CVV" "GJR" NA    "CRJ" "CBV" NA    NA    "CAJ" "GVR"
# [9,] "GAA" NA    "CBB" "CVV" "GJR" "CRV" "CRJ" "CBV" NA    "CVB" NA    "GVR"
# [10,] "GAA" NA    "CBB" "CVV" "GJR" "CRV" "CRJ" "CBV" NA    "CVB" NA    "GVR"
# [11,] "GAA" NA    "CBB" "CVV" "GJR" "GRV" NA    "CBV" NA    "GVB" NA    "GVR"
# [12,] "GAA" NA    "CBB" NA    "GJR" "GRV" "CRJ" "CBV" NA    "GVB" NA    "GVR"
# [13,] "GAA" NA    "CBB" NA    "GJR" "GRV" "CRJ" "CBV" NA    "GVB" NA    "GVR"
# [14,] "GAA" NA    "CBB" "GVV" "GJR" "GRV" "CRJ" "CBV" NA    NA    NA    "GVR"
# [15,] "GAA" NA    "CBB" "GVV" "GJR" "GRV" "CRJ" "CBV" NA    "GVB" NA    "GVR"
# [16,] "GAA" NA    "CBB" "GVV" "GJR" "GRV" "CRJ" "CBV" NA    "GVB" NA    "GVR"
# [17,] "GAA" "CAJ" "CBB" "GVV" "GJR" "GRV" "CRJ" "CBV" "CJA" "GVB" NA    "GVR"
# [18,] "GAA" NA    "CBB" "GVV" "GJR" "GRV" "CRJ" "CBV" "CJA" "GVB" NA    "GVR"
# [19,] "GAA" "CAJ" "CBB" "GVV" "GJR" NA    "CRJ" "CBV" "CJA" "GVB" NA    "GVR"
# [20,] NA    "CAJ" "CBB" "GVV" "GJR" NA    "CRJ" "CBV" "CJA" NA    NA    "GVR"
share|improve this answer
    
Thanks for your answer and explanation ! I managed to apply your solution to my datas and it's working fine for a single column of my matrix. I am now looking into applying this to my whole matrix. The [[ are selecting for a single value and that is causing me problems as I have 12 values in cn. Is there a simple way around this ? If not I will look ahead to post another question specifying the details. –  Chargaff Jun 17 '12 at 17:45
    
@Chargaff If you had provided some input data with more than 1 column, I would have created a solution for that. Instead I had to guess what another column might look like. Also, it's not clear exactly what you want your output to look like (1 matrix or several, matrix or data.frame, using stringsAsFactors or not etc.). Hope it's useful. –  GSee Jun 17 '12 at 20:24
    
Yes, sorry for not providing enough material. I edited my question and provided a sample of my actual dataset. I'm looking for one matrix or dataframe as the final output, idealy. –  Chargaff Jun 17 '12 at 20:28
    
Then please add your desired output to your question. It's not clear to me how you want to combine everything together into a single object. And, which do you want -- matrix or data.frame? –  GSee Jun 17 '12 at 20:35
    
Thanks for helping GSee. I provided the desired output. –  Chargaff Jun 17 '12 at 20:48

This is hard coded a bit, but the idea is there.

require(stringr)
require(plyr)
vect <- data.frame(RR=c("Cvv", "Cvv", "Caa"))
theMat <- t(adply(levels(vect$RR), .margins=1, .fun=function(x){str_extract(string=vect$RR, pattern=x)}))[-1 ,]
colnames(theMat) <- levels(vect$RR)
colnames(theMat) <- str_sub(colnames(theMat), start=2, end=3)
theMat <- str_replace(string=theMat, pattern=paste(colnames(theMat), collapse="|"), replacement="RR")
share|improve this answer
    
Wow, lots to learn from this answer ! I think I understand the basic idea. I'll try to apply that to my actual datas. Thank's a lot, that's a start ! –  Chargaff Jun 16 '12 at 23:45

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