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I'm trying to transform a 3D array into a matrix. I want the third dimension of the array to form the first row in the matrix, and this third dimension should be read by row (i.e., row 1, then row 2 etc... of dimension 3 should make up the first row of the matrix). I've given an example below, where the array has dimensions of 4, 3, and 5, and the resulting matrix has 5 rows and 12 columns. I have a solution below that achieves what I want, but it seems very cumbersome for large arrays (it first creates vectors from the elements of the array (by row), and then rbinds these to form the matrix). Is there a more elegant way to do this? Thanks in advance for any suggestions.

dat <- array( rnorm(60), dim=c(4, 3, 5) )   

results <- list(1:5)            
for (i in 1:5) {  
    vec <- c( t(dat[, , i]) )  
    results[[i]] <- vec  
    }

datNew <- rbind( results[[1]], results[[2]], results[[3]], results[[4]], results[[5]] )  
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You should change the formulation. You probably mean by "first element" of an array the matrix printed when the array is printed. Those matrixes are the elements of the 3rd dimension of the array. From your example I see that you just want to flatten first two dimensions. My answer below gives you what you want. –  VitoshKa Oct 26 '10 at 9:28
    
Thanks VitoshKa for pointing that out - I edited the question. –  Steve Oct 26 '10 at 9:38

1 Answer 1

up vote 7 down vote accepted

Use aperm

X <- aperm(dat,c(3,2,1))
dim(X)<- c(5, 12)
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This works perfectly, thanks. –  Steve Oct 26 '10 at 9:41

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