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I have a file where a data structure containing 6 columns is stored side by side. That means I have n times 6 columns stored in a flat file.
Basically, I want to rearrange the data in a form that I only have a data.frame containing 6 columns but appending all the data from the file to the end of the first 6 columns.

Row 1V1 1V2 1V3 1V4 1V5 1V6 2V1 2V2 2V3 2V4 2V5 2V6 3V1...  
1  
2

The result should look like that moving data from 2V1-2V6 to the end of 1V1-1V6

Row V1 V2 V3 V4 V5 V6   
1-1  
1-2  
2-1  
2-2

I looked up some code snippets and could load the data into a data frame with all the vectors. Then I tried to create n dataframes containing always the repeating data structures. Then I tried to combine the single dataframes to a final one but it does not work.

df<-read.table("test.txt",header = FALSE, sep = ";", skip = 2)
columnmax=as.integer(ncol(df)/6)
dfnew <- vector(mode="list",length=columnmax)
for ( i in 1:columnmax) {
 start<-((i-1)*6+1)
 end<-(i*6)
 dfnew[[i]]<-df[,start:end]
}
y <- do.call(rbind, dfnew)

RESULT:

Error in match.names(clabs, names(xi)) : 
  names do not match previous names

I used the list mode because I didnt get it working to separate the dataframe otherwise. But it seems now to me that it makes the rbind to a problem because the "columnnames" are not identically. I havent not even an idea how to change the column names because its not a matrix in R termini but a list. I am sure there must be a much simpler way to do what I want but I am just beginning in R and not familiar with the many different concepts of data types.

EDIT: DATA

structure(list(V1 = NA, V2 = NA, V3 = NA, V4 = NA, V5 = NA, V6 = NA, 
    V7 = NA, V8 = NA, V9 = NA, V10 = NA, V11 = NA, V12 = NA, 
    V13 = structure(1L, .Label = "1,20101E+27", class = "factor"), 
    V14 = structure(1L, .Label = "05.07.2010 14:50", class = "factor"), 
    V15 = structure(1L, .Label = "ADMINISTRATOR", class = "factor"), 
    V16 = 1L, V17 = NA, V18 = NA, V19 = structure(1L, .Label = "1,20101E+27", class = "factor"), 
    V20 = structure(1L, .Label = "05.07.2010 14:50", class = "factor"), 
    V21 = structure(1L, .Label = "ADMINISTRATOR", class = "factor"), 
    V22 = 1L, V23 = NA, V24 = NA, V25 = structure(1L, .Label = "1,20101E+27", class = "factor"), 
    V26 = structure(1L, .Label = "05.07.2010 14:50", class = "factor"), 
    V27 = structure(1L, .Label = "ADMINISTRATOR", class = "factor"), 
    V28 = 1L, V29 = NA, V30 = NA, V31 = structure(1L, .Label = "1,20101E+27", class = "factor"), 
    V32 = structure(1L, .Label = "05.07.2010 14:50", class = "factor"), 
    V33 = structure(1L, .Label = "ADMINISTRATOR", class = "factor"), 
    V34 = 1L, V35 = NA, V36 = NA, V37 = NA, V38 = NA, V39 = NA, 
    V40 = NA, V41 = NA, V42 = NA, V43 = NA, V44 = NA, V45 = NA, 
    V46 = NA, V47 = NA, V48 = NA, V49 = NA, V50 = NA, V51 = NA, 
    V52 = NA, V53 = NA, V54 = NA, V55 = NA, V56 = NA), .Names = c("V1", 
"V2", "V3", "V4", "V5", "V6", "V7", "V8", "V9", "V10", "V11", 
"V12", "V13", "V14", "V15", "V16", "V17", "V18", "V19", "V20", 
"V21", "V22", "V23", "V24", "V25", "V26", "V27", "V28", "V29", 
"V30", "V31", "V32", "V33", "V34", "V35", "V36", "V37", "V38", 
"V39", "V40", "V41", "V42", "V43", "V44", "V45", "V46", "V47", 
"V48", "V49", "V50", "V51", "V52", "V53", "V54", "V55", "V56"
), row.names = 1L, class = "data.frame")
share|improve this question
1  
SebM, could you update your post with loadable data? Try posting the results of this: dput(head(df,5)) –  Brandon Bertelsen Oct 5 '10 at 15:42
    
I guess its not necessary anymore but I try do do it tomorrow. Just to make the post complete and for me to get used to Forumsystem here. Thanks for your help. –  Sebastian Oct 5 '10 at 16:33
    
I literally had your exact problem yesterday. 'dput()' gets you quicker answers, either that or generate example data for your solvers. :) –  Brandon Bertelsen Oct 5 '10 at 16:36

2 Answers 2

up vote 4 down vote accepted

Try:

x1 <- seq(from=1, to=ncol(df)-1, by=6)
x2 <- seq(from=6, to=ncol(df), by=6)

dfnew <- data.frame("V1"=0,"V2"=0,"V3"=0,"V4"=0,"V5"=0,"V6"=0)

for(x in 1:(ncol(df)/6)) {
tmpdf <- df[x1[x]:x2[x]]
colnames(tmpdf) <- colnames(dfnew)
dfnew <- rbind(dfnew,tmpdf)
}
share|improve this answer
    
yes, this works great. Well I tried it for the entire day already. Great Help Thanks. –  Sebastian Oct 5 '10 at 16:32

Here's a simple loop to do the work for you:

First, dummy data

> set.seed(123)
> DF <- data.frame(matrix(rnorm(5*6*6), ncol = 36))
> names(DF) <- paste(rep(1:6, each = 6), "V", rep(1:6, times = 6), sep = "")
> names(DF)
 [1] "1V1" "1V2" "1V3" "1V4" "1V5" "1V6" "2V1" "2V2" "2V3" "2V4" "2V5" "2V6"
[13] "3V1" "3V2" "3V3" "3V4" "3V5" "3V6" "4V1" "4V2" "4V3" "4V4" "4V5" "4V6"
[25] "5V1" "5V2" "5V3" "5V4" "5V5" "5V6" "6V1" "6V2" "6V3" "6V4" "6V5" "6V6"

Now set up the loop so that at each stage we take the i, i+6, i+(2*6), ... cols of the data frame and stack them in a vector into the new data frame DF2

> n <- 6 ## number of groups of 6
> DF2 <- data.frame(matrix(NA, ncol = 6, nrow = 6 * nrow(DF)))
> for(i in seq_len(n)) {
+     DF2[[i]] <- unlist(DF[, seq(i, n*6, by = 6)])
+ }
> names(DF2) <- paste("V", seq_len(n), sep = "")
> head(DF2)
           V1         V2         V3         V4         V5         V6
1 -0.56047565  1.7150650  1.2240818  1.7869131 -1.0678237 -1.6866933
2 -0.23017749  0.4609162  0.3598138  0.4978505 -0.2179749  0.8377870
3  1.55870831 -1.2650612  0.4007715 -1.9666172 -1.0260044  0.1533731
4  0.07050839 -0.6868529  0.1106827  0.7013559 -0.7288912 -1.1381369
5  0.12928774 -0.4456620 -0.5558411 -0.4727914 -0.6250393  1.2538149
6  0.42646422  0.6886403 -0.6947070 -1.1231086  0.2533185  1.5164706

This presumes that there are only ever 6 variables, but n controls the number of sets of 6 you have.

share|improve this answer
    
Not sure if I am right but I assume it must be ncol(DF) instead of nrow(DF) in DF2 <- data.frame(matrix(NA, ncol = 6, nrow = 6 * ncol(DF))). With the provided sample matirx it works but with my data it does not since there is also non numeric content. –  Sebastian Oct 6 '10 at 13:11
    
@SebM: No, it needs to be 6 * nrow(DF). In your example, if I understood it properly, then if you have 5 rows in the original structure, and n == 6 is the number of 'sets' of data (or number of variables) then you have 6 * 5 rows in the data structure you want. I suspect it is failing because of the non-numeric content, but as you didn't mention this in your post nor give us example data it is a bit difficult second guessing your needs. –  Gavin Simpson Oct 6 '10 at 13:25
    
@SebM: If the non-numeric stuff is not needed (i.e. not part of the V1, V2 etc) then why not exclude it first? oldDF <- DF followed by DF <- DF[, -cols] where cols contains the indices of the non-numeric columns. Then run through the loop. –  Gavin Simpson Oct 6 '10 at 13:26
    
Yes you are right, now I got it. Actually, I have much more lines ;) but its easy to read it out of the data frame. Well I think its a good solution too. Unfortunately, I need the non numeric data for further analysis as well. @UCFAGLS Could you try to explain me how lists work? I mean obviously the dataframe is split up into several list elements DF[[i]]. Why are these elements list elements and not vector type data? it seems to me that with lists you can not work in the same way as with indexed vectors (see unlist command - how is the order of the unlisted elements then in DF?) –  Sebastian Oct 7 '10 at 8:49
    
@SebM; Do you want me to explain how my solution works or the more general query? Note that DF[[i]] is a vector but DF[i] is a list of one component, if DF is data frame. The order of elements in the unlist-ed is as if we took the selected columns in turn and concatenated them =, from first to last. Try this to see what I mean: unlist(data.frame(matrix(1:9, ncol = 3))). So my solution creates the stacked cols from DF that represent a single variable, and inserts them into DF2 as a vector (as [[ extracts/replaces the vector in DF2 not a list containing a single vector. –  Gavin Simpson Oct 7 '10 at 11:56

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