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This question already has an answer here:

I am trying to make a function that rescales a vector to lie between two argument lower and upper. And rescaling is done by linear transformation.

# rescales x to lie between lower and upper
rescale <- function(x, lower = 0, upper = 1){
slope <- (upper-lower)/(which.max(x)-which.min(x))
intercept <- slope*(x-which.max(x))+upper
y <- intercept + slope * x
return(list(new = y, coef = c(intercept = intercept, slope = slope)))
}

I have a feeling that I am not on the right track. Please give me some advice to make it right.

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marked as duplicate by thelatemail, hadley, Gavin Simpson, Blue Magister, Brian Diggs Feb 27 '14 at 17:08

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

1  
This is very close to the indicated duplicate, but allowing arbitrary lower and upper bounds needs a little extra. Hence, I asked for the question do be undeleted but have voted to close it (which is fine, having two related questions that are linked is beneficial). – Gavin Simpson Feb 27 '14 at 15:52
    
The rescale function in the scales package can do this, and can even handle the case where the range you are scaling from is not identical to the range of the data being scaled. – Brian Diggs Feb 27 '14 at 16:43
    
@BrianDiggs Fancy adding an example as an answer? With the indicated duplicate and this Q we have two good solutions to this problem with a range of answers. – Gavin Simpson Feb 27 '14 at 16:49

Here's a function based on the logic in this related Q&A:

rescale <- function(x, from, to) {
  maxx <- max(x)
  minx <- min(x)
  out <- (to - from) * (x - minx)
  out <- out / (maxx - minx)
  out + from
}

> rescale(1:10, 2, 5)
 [1] 2.000000 2.333333 2.666667 3.000000 3.333333 3.666667 4.000000 4.333333
 [9] 4.666667 5.000000

Note that this won't work if min(x) == max(x) as we'd then be dividing by 0 in the next to last line of the function.

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