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If I have a matrix in R that looks like the below:

1,3
7,1
8,2

How would I write code that creates a matrix like this:

1,3
1,3
1,3
7,1
8,2
8,2

Where it repeats the row based on the right .column value? Keep in mind I have a matrix that actually has a lot more rows than 2

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8  
FYI: Your question is attracting down votes because you have simply asked for people to provide code (i.e. a solution) for you without demonstrating that you have tried or researched any solutions yourself. –  joran Feb 28 '13 at 19:22
    
Do you know how to use the rep function? –  Señor O Feb 28 '13 at 19:37
    
yes, i tried using the rep function and it works fine when i input 3,1,2 as the arguments, but I don't know how to do it without a loop. From my research, I've been trying to use the lapply function without success –  user2120963 Feb 28 '13 at 19:40
    
What have you tired so far? –  Joe W Feb 28 '13 at 19:43
    
I've read in my matrix which is 1500 by 2 and I found a code online which creates a custom function rep.row<-function(x,n){matrix(rep(x,each=n),nrow=n)}. Then I try to use it and do matrix(rep(x,x)) –  user2120963 Feb 28 '13 at 19:47

2 Answers 2

# construct your initial matrix
x <- matrix( c( 1 , 3 , 7 , 1 , 8 , 2 ) , 3 , 2 , byrow = TRUE )

# take the numbers 1 thru the number of rows..
1:nrow(x)

# repeat each of those elements this many times
x[ , 2 ]

# and place both of those inside the `rep` function
rows <- rep( 1:nrow(x) , x[ , 2 ] )

# ..then return exactly those rows!
x[ rows , ]

# or save into a new variable
y <- x[ rows , ]
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Thanks for responding to my question. After I run the line of code rows <- rep( 1:nrow(x) , x[ , 2 ] ) I get an error: Error in rep(x, each = n) : unused argument(s) (each = n) –  user2120963 Feb 28 '13 at 20:12
    
Check my comment to my own answer, you have probably made another rep function in your R session which gets called instead of the R base library's rep function. –  Hemmo Feb 28 '13 at 20:21
    
I really like the use of rep here. Element-wise vectorization, very elegant –  Simon O'Hanlon Feb 28 '13 at 22:40
    
Yes, this is much more efficient than the code in my answer. Simple benchmarking with rbenchmark package tells that my code takes about 50% more time than this. –  Hemmo Mar 1 '13 at 4:18

Here is your original matrix:

a<-matrix(c(1,7,8,3,1,2),3,2)

This makes you the first column:

rep(a[,1],times=a[,2])

And this makes you the second column:

rep(a[,2],times=a[,2])

Combine these with cbind:

cbind(rep(a[,1],times=a[,2]),rep(a[,2],times=a[,2]))

     [,1] [,2]
[1,]    1    3
[2,]    1    3
[3,]    1    3
[4,]    7    1
[5,]    8    2
[6,]    8    2
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Thanks for answering my question. After I run : cbind(rep(a[,1],times=a[,2]),rep(a[,2],times=a[,2])) I get an error: Error in rep(a[, 1], times = a[, 2]) : unused argument(s) (times = a[, 2]) –  user2120963 Feb 28 '13 at 20:13
    
If you run the above codes in new R session it works. You probably have some other function called rep in your session loaded as you noted in your comments to your question that you were using a custom rep function. Remove that by using command rm(rep) and it should work. –  Hemmo Feb 28 '13 at 20:19
    
Thank you very much! –  user2120963 Feb 28 '13 at 20:34

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