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i just wrote a very basic function for the z tranformation in a Matrix over all columns. It looks like this:

sapply(MyObject, function(x){(x-mean(x))/sd(x)})

I randomly checked my function for some cells within the Matrix and it seems to work fine. Still I wanted to check with you if the function is okay, because i'm very new to R and I could not find any good examples on the internet. So could any one give his opinion? Thx.

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3  
You might want to look at scale():-) (BTW, if there are missing values, your function will fail: you need to add na.rm=TRUE when you call mean and sd.) –  chl Nov 2 '12 at 13:13
    
I knew there was a function already there :) But it's weired thoug because when I apply scale funktion like this: sapply(MyObject, function(x){scale(x)}) I get totally diffrent values...might it be that he is executing the scale transformation with the mean and SD from the whole Matrix? –  Joschi Nov 2 '12 at 13:26
2  
You don't need sapply() to apply scale(). Just do scale(MyObject). You should get the same results then (well similar, they'll both be matrices but the scale() result will have attributes). –  Gavin Simpson Nov 2 '12 at 13:34
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1 Answer

up vote 4 down vote accepted

You should look at scale() which does this for you.

Your function is close to being correct; you should add na.rm = TRUE to both the sd() and mean() function calls.

I would write (if not using scale()) the function using sweep() instead of the sapply(). E.g.

ztran <- function(x, na.rm = TRUE) {
    mns <- colMeans(x, na.rm = na.rm)
    sds <- apply(x, 2, sd, na.rm = na.rm)
    x <- sweep(x, 2, mns, "-")
    x <- sweep(x, 2, sds, "/")
    x
}

In use we have

> df <- data.frame(matrix(1:9, ncol = 3))
> ztran(df)
  X1 X2 X3
1 -1 -1 -1
2  0  0  0
3  1  1  1
> scale(df)
     X1 X2 X3
[1,] -1 -1 -1
[2,]  0  0  0
[3,]  1  1  1
attr(,"scaled:center")
X1 X2 X3 
 2  5  8 
attr(,"scaled:scale")
X1 X2 X3 
 1  1  1

sweep is a very useful vectorised tool for this sort of operation. Notice also that sapply() simplifies to a matrix, which may not be what you wanted. sweep() doesn't do this:

> class(ztran(df))
[1] "data.frame"
> class(sapply(df, function(x){(x-mean(x))/sd(x)}))
[1] "matrix"
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ok. I got this working. But I'm not sure if I unterstood very well the advantage of sweep. Is it that sweep allows me to execute the function seperated for choosen columns and sapply automatically works the whole matrix? –  Joschi Nov 2 '12 at 13:51
1  
Nope, sweep() works on all columns (2) [or rows (change 2 to 1)]. The advantage is that i) sweep() is vectorised, the sapply() solution isn't, it just hides the loop; sapply() doesn't play that nicely with data frames, as witnessed by it simplifying to a matrix. Both allow you to choose which columns are worked on: sweep(df[, c(1,3)], ....) or sapply(df[, c(1,3)], ....). –  Gavin Simpson Nov 2 '12 at 14:04
    
ok. now its clearer. Thanks for your help! –  Joschi Nov 2 '12 at 14:08
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