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UPDATE: results from dput( ldf[[1]] )

no prob. Here it is: "A 04/18/2013 06:34:58 3D9.1C2D9F22C2", "A 04/18/2013 06:34:58 3D9.1C2D9F22C2", "A 04/18/2013 06:38:24 3D9.1C2DDAE977", "A 04/18/2013 06:42:38 3D9.1C2DA0E0B5", "A 04/18/2013 06:42:38 3D9.1C2DA0E0B5", "A 04/18/2013 07:07:49 3D9.1C2DD9D3CF", "A 04/18/2013 07:07:49 3D9.1C2DD9D3CF")

  • the problem may lie in some lines not being complete with these 4 variables. *-----------------------------------------------------------------------------

I have gotten many pieces of this puzzle from this forum but I am still stuck. I am trying to loop through a list of 30 dataframes, the data of which have been read in from text files. I keep getting an error message and an empty destination dataframe at the end of the loop. Can anyone see where the problem lies?

Here is some sample data:

[73] "E 04/21/2013 14:05:01 3D9.1C2DF6F22D" "E 04/21/2013 14:05:01 3D9.1C2DF6F22D"
[75] "E 04/21/2013 14:47:54 3D9.1C2DF6F22D" "E 04/21/2013 14:47:54 3D9.1C2DF6F22D"

[[26]]
[1] "E 04/22/2013 17:07:02 3D9.1C2DDAC745" "E 04/22/2013 17:07:02 3D9.1C2DDAC745"
[3] "E 04/22/2013 17:07:02 3D9.1C2DDAC745"

[[27]]
[1] "F 04/17/2013 15:14:39 3D9.1C2D1DB26E" "F 04/17/2013 15:14:43 3D9.1C2D1DB26E"
[3] "F 04/17/2013 15:14:43 3D9.1C2D1DB26E" "F 04/17/2013 15:14:43 3D9.1C2D1DB26E"

Here is my loop code:

new <- data.frame()

for (i in 1:length(ldf)) {
 a[i] <- as.data.frame(ldf[i])
 a[i] <- as.data.frame(a[i][-1,])
 names(a[i]) <- "id"
 c[i] <- strsplit(as.character(a[i]$id)," ")
 reader[i] = sapply(c[i],function(x)x[1])
 date[i] = sapply(c[i],function(x)x[2])
 time[i] = sapply(c[i],function(x)x[3])
 code[i] = sapply(c[i],function(x)x[4])
 out[i] <- as.data.frame(cbind(reader[i],date[i],time[i],code[i]))

new <- rbind(new, out[i])
}

This is the error message I recieve:

Error in [<-.data.frame(`*tmp*`, i, 
value = list(c..A.04.17.2013.12.24.07.3D9.1C2D1DB26E....A.04.17.2013.12.24.07.3D9.1C2D1DB26E... = c(1L,  
: replacement element 1 has 337 rows, need 394

Thank you!

share|improve this question
    
Try change a[i] <- as.data.frame(ldf[i]) to a[i] <- as.data.frame(ldf[[i]]). –  Rcoster Apr 25 '13 at 14:49
    
And why you are saving each step in the variables a, c, out ... ? If you don't use them, remove the index [i] too. –  Rcoster Apr 25 '13 at 14:51
1  
better you tell us what you expect from this. Amongst other things you shouldn't need to be using sapply in a loop, sapply is a looping construct in itself. If you tell us the expexcted output someone might be able to generate a more R oriented solution. –  Simon O'Hanlon Apr 25 '13 at 14:58
    
I'm looking to process each dataframe in the list ldf and append the results into one dataframe. Right now each dataframe has one long string of my 4 variables. I want to parse each variable out into new variables for each row, and then append the results together so I end up with one clean dataframe as opposed to a list of 30 dataframes. Does that make sense? –  yakamafish Apr 25 '13 at 15:22

2 Answers 2

If I understand correctly you want this:

ldf <- list(c("E 04/21/2013 14:05:01 3D9.1C2DF6F22D","E 04/21/2013 14:05:01 3D9.1C2DF6F22D","E 04/21/2013 14:47:54 3D9.1C2DF6F22D","E 04/21/2013 14:47:54 3D9.1C2DF6F22D"),
c("E 04/22/2013 17:07:02 3D9.1C2DDAC745","E 04/22/2013 17:07:02 3D9.1C2DDAC745","E 04/22/2013 17:07:02 3D9.1C2DDAC745"),
c("F 04/17/2013 15:14:39 3D9.1C2D1DB26E","F 04/17/2013 15:14:43 3D9.1C2D1DB26E","F 04/17/2013 15:14:43 3D9.1C2D1DB26E","F 04/17/2013 15:14:43 3D9.1C2D1DB26E"))

do.call(rbind,lapply(ldf,function(x) data.frame(do.call(rbind,strsplit(x," ")))))
   X1         X2       X3             X4
1   E 04/21/2013 14:05:01 3D9.1C2DF6F22D
2   E 04/21/2013 14:05:01 3D9.1C2DF6F22D
3   E 04/21/2013 14:47:54 3D9.1C2DF6F22D
4   E 04/21/2013 14:47:54 3D9.1C2DF6F22D
5   E 04/22/2013 17:07:02 3D9.1C2DDAC745
6   E 04/22/2013 17:07:02 3D9.1C2DDAC745
7   E 04/22/2013 17:07:02 3D9.1C2DDAC745
8   F 04/17/2013 15:14:39 3D9.1C2D1DB26E
9   F 04/17/2013 15:14:43 3D9.1C2D1DB26E
10  F 04/17/2013 15:14:43 3D9.1C2D1DB26E
11  F 04/17/2013 15:14:43 3D9.1C2D1DB26E

Note that all columns are of class factor.

share|improve this answer
    
+1 as I think this is what the OP wants as output, but they also claim their data is a list of dataframes, so you may have to update this to do something like run apply across each dataframe (as you can't pass a dataframe to strsplit) –  Simon O'Hanlon Apr 25 '13 at 15:20
    
@SimonO101 Ah, I think they are 1 column data.frames so replacing x with x[[1]] in the strsplit should suffice. –  James Apr 25 '13 at 15:23
    
Ah ok! Just thought I'd mention it incase. :-) –  Simon O'Hanlon Apr 25 '13 at 15:24
    
Thank you for these suggestions. I'm trying to sort this out. I tried SimonO101's suggestions but received a long error message. And yes, James, as you say they are 1 column dataframes. I'm confused as to where I replace x with x[[1]] at. In each new variable that I create? I know some comments above indicate I should refrain from using sapply wihtin a loop. Do you agree? Thanks again!! –  yakamafish Apr 25 '13 at 16:11
    
@yakamafish Replace it in the first argument to strsplit. You can still use sapply in a loop, but more often than not there will be a better way to approach the problem. In this case do.call(rbind,c[[i]]) would do the trick I believe. –  James Apr 25 '13 at 16:16

Is ldf your list of dataframes? If so you are not indexing them properly. You are trying to operate on an object of class list still. Look at this toy example:

L <- list( x=matrix(1:4,nrow=2) , y=matrix(1:4,nrow=2) )
L
#$x
#    [,1] [,2]
#[1,]    1    3
#[2,]    2    4

#$y
#    [,1] [,2]
#[1,]    1    3
#[2,]    2    4

class(L[1])
[1] "list"
class(L[[1]])
[1] "matrix"

You are using a lot of looping constructs within a loop which doesn't make much sense, because they are supplied as convenience functions such that you don't have to use a loop. Using a subset of your data you can get what I believe are your desired results using an lapply to access each data.frame in your list, and then useapply across the columns of each dataframe to run strplit on them like this:

# Make a list of two data.frames using some of your data
dat1 <- data.frame( x = c("E 04/21/2013 14:05:01 3D9.1C2DF6F22D" , "E 04/21/2013 14:05:01 3D9.1C2DF6F22D") , y = c( "E 04/22/2013 17:07:02 3D9.1C2DDAC745" , "E 04/22/2013 17:07:02 3D9.1C2DDAC745") )
dat2 <- data.frame( x = c("F 04/17/2013 15:14:39 3D9.1C2D1DB26E" , "F 04/17/2013 15:14:43 3D9.1C2D1DB26E") , y = c( "F 04/17/2013 15:14:43 3D9.1C2D1DB26E" , "F 04/17/2013 15:14:43 3D9.1C2D1DB26E") )
dat <- list( dat1 , dat2 )


res <- data.frame( t( data.frame( lapply( dat , function(x) apply( x , 2 , strsplit , " " ) ) ) ) )
names(res) <- c( "Reader" , "Date" , "Time" , "Code" )
rownames(res) <- seq_len( nrow( res ) )
#  Reader       Date     Time           Code
#1      E 04/21/2013 14:05:01 3D9.1C2DF6F22D
#2      E 04/21/2013 14:05:01 3D9.1C2DF6F22D
#3      E 04/22/2013 17:07:02 3D9.1C2DDAC745
#4      E 04/22/2013 17:07:02 3D9.1C2DDAC745
#5      F 04/17/2013 15:14:39 3D9.1C2D1DB26E
#6      F 04/17/2013 15:14:43 3D9.1C2D1DB26E
#7      F 04/17/2013 15:14:43 3D9.1C2D1DB26E
#8      F 04/17/2013 15:14:43 3D9.1C2D1DB26E
share|improve this answer
    
Thank you. I tried this command: res <- data.frame( t( data.frame( lapply( ldf , function(x) apply( x , 2 , strsplit , " " ) ) ) ) ) but I received an error saying: Error in apply(x, 2, strsplit, " ") : dim(X) must have a positive length –  yakamafish Apr 25 '13 at 16:13
    
@yakamafish did it work? if not, I made a tiny edit which should take care of the fact that your dataframes are only 1 column big (this would confuse the apply function!) –  Simon O'Hanlon Apr 25 '13 at 16:13
    
no it didn't work. Is that edit above? –  yakamafish Apr 25 '13 at 16:17
    
yes it is now above apply(x[1].... was the change. it should work on a 1 column dataframe now. –  Simon O'Hanlon Apr 25 '13 at 16:18
    
still getting this error: Error in apply(x[1], 2, strsplit, " ") : dim(X) must have a positive length –  yakamafish Apr 25 '13 at 16:21

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