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I have data frame "x" like this :

        meme   webId  timeStamp
        2501   68814  281322.1 
        2501    2679  305813.0
        2501     948  306025.6 

I want to use "meme" and "webId" as row and column names and timeStamp as element in "mat" data frame. I wrote this:

cols<-unique(x[,"webId"])

rows<-unique(x[,"meme"])

mat<-data.frame(matrix(data=9999999,nrow=length(rows),ncol=length(cols)))

colnames(mat)<-c(cols)

rownames(mat)<-c(rows)

for(i in 1:length(x))
        mat[rownames(mat)==x[i,"meme"],colnames(mat)==x[i,"webId"]]<-x[i,"timeStamp"]

but nothing changed. what is the problem? please help me!!!

  • You don't need a loop. Try mat[match(rownames(mat), x$meme), match(colnames(mat), x$webId)] <- x$timeStamp – akrun May 24 '15 at 13:03
  • @akrun the error is something like this: Error in [<-.data.frame(*tmp*, match(rownames(mat), x$meme), match(colnames(mat), : new columns would leave holes after existing columns – Zahra Aminolroaya May 24 '15 at 13:07
  • Is it based on the same example you posted? It is not giving me any errors – akrun May 24 '15 at 13:08
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    @ZahraAminolroaya Using your code, the output of "mat" looks correct. Do you want x to change? – Nadine May 24 '15 at 13:29
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    @ZahraAminolroaya Please update the new data in your post. It is not easy to understand the data from the comments due to the formatting. Also, if you can use dput to show the data, it would be great – akrun May 24 '15 at 13:38
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In the for loop, it seems that you mean to iterate over all the rows in x, and fill all the values into mat one by one. Instead you only iterate over 3 rows. length(x) gives the number of columns not the number of rows. This is the correct code for iterating over all rows:

for(i in 1:nrow(x))
        mat[rownames(mat)==x[i,"meme"],colnames(mat)==x[i,"webId"]]<-x[i,"timeStamp"]

I suspect that the x dataframe contains more values than the ones you posted. In your example, the number of rows equals the number of columns, that's why the commenters couldn't find a problem with it. The problem is not evident in your example.

  • Glad to help :) Please don't forget to accept the answer – Nadine May 24 '15 at 14:19
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You could get the 'row/column' index by using match, cbind it and assign the 'timeStamp' elements to the positions specified by the index in 'mat'.

 mat[cbind(match(x$meme, rownames(mat)),
             match(x$webId, colnames(mat)))] <- x$timeStamp

 mat
 #     428 2679 68814 948
 #2505  13   11     8   3
 #2510  16    6    14   1
 #2501   7    4     5  10
 #2508  12    2     9  15

Checking with the results from the for loop

 for(i in 1:nrow(x))
    mat1[rownames(mat1)==x[i,"meme"],
             colnames(mat1)==x[i,"webId"]]<-x[i,"timeStamp"]

 mat1
 #     428 2679 68814 948
 #2505  13   11     8   3
 #2510  16    6    14   1
 #2501   7    4     5  10
 #2508  12    2     9  15

Benchmarks

set.seed(21)
x1 <- data.frame(meme= rep(sample(1000), each=200), 
   webId= rep(sample(35000, 200, replace=FALSE), 1000), 
      timeStamp=rnorm(1000*200))
set.seed(324)
mat2 <- matrix(, 1000, 200, 
    dimnames=list(sample(unique(x1$meme)),sample(unique(x1$webId))))
mat3 <- mat2

system.time({
  mat2[cbind(match(x1$meme, rownames(mat2)),
         match(x1$webId, colnames(mat2)))] <- x1$timeStamp
     })
 # user  system elapsed 
 #  0.181   0.001   0.181 

system.time({

 for(i in 1:nrow(x1))
    mat3[rownames(mat3)==x1[i,"meme"],
            colnames(mat3)==x1[i,"webId"]]<-x1[i,"timeStamp"]

 })
# user  system elapsed 
#172.588  10.445 183.062 

 identical(mat2, mat3)
 #[1] TRUE

data

set.seed(24)
x <- data.frame(meme=rep(c(2501, 2505, 2508, 2510), each=4),
    webId= rep(c(68814, 2679, 948, 428), 4), timeStamp= sample(16))
set.seed(33)
mat <- matrix(, 4, 4, dimnames=list(sample(unique(x$meme)),
    sample(unique(x$webId))))
mat1 <- mat
  • @ZahraAminolroaya Added some benchmarks. The for loop in the current state is very slow compared to the match. It may be possible to improve the timings in for loop. But, I think the vectorized approach would be better here. – akrun May 24 '15 at 14:58

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