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This is what I have so far.

let Swap (left : int , right : int ) = (right, left)

let mutable x = 5
let mutable y = 10

let (newX, newY) = Swap(x, y) //<--this works

//none of these seem to work
//x, y <- Swap(x, y)
//(x, y) <- Swap(x, y)
//(x, y) <- Swap(x, y)
//do (x, y) = Swap(x, y)
//let (x, y) = Swap(x, y)
//do (x, y) <- Swap(x, y)
//let (x, y) <- Swap(x, y)
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I am learning python and imagine how cool F# could be if we allow: a, b <- b, a, x.[a], x.[b] <- x[b], x[a] So that swap is no longer needed. –  colinfang Sep 30 '13 at 11:55

4 Answers 4

up vote 7 down vote accepted

You can't; there's no syntax to update 'more than one mutable variable' with a single assignment. Of course you can do

let newX, newY = Swap(x,y)
x <- newX
y <- newY
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I was hoping for a more favorable answer, but at least this is a correct one. Sigh, F#'s inconsistencies are quickly becomming a pain in my side. I realize that I'm pushing against the boundries, but I shouldn't be hitting them this soon. –  Jonathan Allen Jun 3 '09 at 21:39
4  
I'm not sure I'd characterize as a "boundary" the idea that language constructs that are discouraged have less-convenient syntax than the preferred constructs. Making best practices also the most convenient seems like a smart idea to me. –  Joel Mueller Jun 3 '09 at 21:57
2  
@Joel. Isn't that the definition of boundary? If I was using the preferred syntax I wouldn't have used that term. –  Jonathan Allen Jun 7 '09 at 6:37

The code you have commented doesn't work because when you write "x, y" you create a new tuple that is an immutable value, so can't be updated. You could create a mutable tuple and then overwrite it with the result of the swap function if you want:

let mutable toto = 5, 10 

let swap (x, y) = y, x

toto  <- swap toto

My advice would be to investigate the immutable side of F#, look at the ways you can use immutable structures to achieve what you previously would have done using mutable values.

Rob

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This is what is probably wanted –  John Weldon Jun 3 '09 at 20:46
    
If you want to generalize this, you still have to unpack the mutable tuple back to the original values. So really using a mutable tuple is a waste. –  Jonathan Allen Jun 3 '09 at 21:35
1  
It's unclear to me why you need to unpack or even replace the new x and y in the original variable. I any real world exmaple you'd just write "let x', y' = swap x y" and directly use x and y prime. –  Robert Jun 4 '09 at 5:56
    
@Robert, This isn't about using idomatic F#. This is about pushing on the edges and seeing where the cracks are. I never use swap in real code, but I still need to know whether or not it is possible because other designs may require it. –  Jonathan Allen Jun 7 '09 at 6:41
    
I would be interested to know what kind of design could require this behaviour. –  Robert Jun 7 '09 at 8:10

F# has "by reference" parameters just like C#, so you can write a classic swap function similarly:

let swap (x: byref<'a>) (y: byref<'a>) =
    let temp = x
    x <- y
    y <- temp

let mutable x,y = 1,2
swap &x &y
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To expand on Robert's answer:

let swap (x : int, y : int) = y, x
let mutable x = 5
let mutable y = 10
let mutable xy = x, y

xy <- swap xy

Makes both the variables and the tuple mutable.

share|improve this answer
    
Doesn't work. When you print out x and y, you will see that they didn't change. Making xy mutable was just a red-herring, since you could have just as easily passed in the original variables. –  Jonathan Allen Jun 3 '09 at 21:37
    
Correct, the x, and y don't get updated. –  John Weldon Jun 3 '09 at 23:39

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