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Is there any reason for Scala not support the ++ operator to increment primitive types by default? For example, you can not write:

var i=0
i++

Thanks

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just curious, can you issue i += 1 in Scala? –  Michael Mao Oct 21 '10 at 22:12
5  
Yeah, you can, but only if it's a var and not a val. When the Scala compiler finds a method ending in = invoked on a var and the class doesn't have that method (variable method= arg), it expands it to variable = variable.method(arg). –  alpha123 Oct 21 '10 at 22:24
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8 Answers

up vote 22 down vote accepted

My guess is this was omitted because it would only work for mutable variables, and it would not make sense for immutable values. Perhaps it was decided that the ++ operator doesn't scream assignment, so including it may lead to mistakes with regard to whether or not you are mutating the variable.

I feel that something like this is safe to do (on one line):

i++

but this would be a bad practice (in any language):

var x = i++

You don't want to mix assignment statements and side effects/mutation.

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13  
I guess you're not a big fan of C/C++, then. All sorts of *(a++) = ++*(b++) stuff there.... –  Rex Kerr Oct 21 '10 at 22:23
5  
@RexKerr you guessed right :) –  pkaeding Oct 21 '10 at 22:28
2  
@Rex Kerr : now I feel good that my first programming language was Java :) –  Michael Mao Oct 21 '10 at 22:51
10  
I'm a C++ lead developer: There be none of that nonsense in my codebase if I can help it. –  Alex Wilson Jun 19 '12 at 13:22
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I like Craig's answer, but I think the point has to be more strongly made.

  1. There are no "primitives" -- if Int can do it, then so can a user-made Complex (for example).

  2. Basic usage of ++ would be like this:

    var x = 1 // or Complex(1, 0)

    x++

  3. How do you implement ++ in class Complex? Assuming that, like Int, the object is immutable, then the ++ method needs to return a new object, but that new object has to be assigned.

It would require a new language feature. For instance, let's say we create an assign keyword. The type signature would need to be changed as well, to indicate that ++ is not returning a Complex, but assigning it to whatever field is holding the present object. In Scala spirit of not intruding in the programmers namespace, let's say we do that by prefixing the type with @.

Then it could be like this:

case class Complex(real: Double = 0, imaginary: Double = 0) {
  def ++: @Complex = {
    assign copy(real = real + 1)
    // instead of return copy(real = real + 1)
}

The next problem is that postfix operators suck with Scala rules. For instance:

def inc(x: Int) = {
  x++
  x
}

Because of Scala rules, that is the same thing as:

def inc(x: Int) = { x ++ x }

Which wasn't the intent. Now, Scala privileges a flowing style: obj method param method param method param .... That mixes well C++/Java traditional syntax of object method parameter with functional programming concept of pipelining an input through multiple functions to get the end result. This style has been recently called "fluent interfaces" as well.

The problem is that, by privileging that style, it cripples postfix operators (and prefix ones, but Scala barely has them anyway). So, in the end, Scala would have to make big changes, and it would be able to measure up to the elegance of C/Java's increment and decrement operators anyway -- unless it really departed from the kind of thing it does support.

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Nice answer Daniel, thanks. –  Craig P. Motlin Oct 22 '10 at 14:13
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I think the reasoning in part is that +=1 is only one more character, and ++ is used pretty heavily in the collections code for concatenation. So it keeps the code cleaner.

Also, Scala encourages immutable variables, and ++ is intrinsically a mutating operation. If you require +=, at least you can force all your mutations to go through a common assignment procedure (e.g. def a_=).

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In Scala, ++ is a valid method, and no method implies assignment. Only = can do that.

A longer answer is that languages like C++ and Java treat ++ specially, and Scala treats = specially, and in an inconsistent way.

In Scala when you write i += 1 the compiler first looks for a method called += on the Int. It's not there so next it does it's magic on = and tries to compile the line as if it read i = i + 1. If you write i++ then Scala will call the method ++ on i and assign the result to... nothing. Because only = means assignment. You could write i ++= 1 but that kind of defeats the purpose.

The fact that Scala supports method names like += is already controversial and some people think it's operator overloading. They could have added special behavior for ++ but then it would no longer be a valid method name (like =) and it would be one more thing to remember.

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Of course you can have that in Scala, if you really want:

import scalaz._
import Scalaz._

case class IncLens[S,N](lens: Lens[S,N], num : Numeric[N]) { 
  def ++ = lens.mods(num.plus(_, num.one))
}

implicit def incLens[S,N:Numeric](lens: Lens[S,N]) =
  IncLens[S,N](lens, implicitly[Numeric[N]])

val i = Lens[Int,Int](identity, (x, y) => y)

val imperativeProgram = for {
  _ <- i := 0;
  _ <- i++;
  _ <- i++;
  x <- i++
} yield x

def runProgram = imperativeProgram ! 0

And here you go:

scala> runProgram
runProgram: Int = 3
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Lets define a var:

var i = 0

++i is already short enough:

{i+=1;i}

Now i++ can look like this:

i(i+=1)

To use above syntax, define somewhere inside a package object, and then import:

class IntPostOp(val i: Int) { def apply(op: Unit) = { op; i } } 
implicit def int2IntPostOp(i: Int): IntPostOp = new IntPostOp(i)

Operators chaining is also possible:

i(i+=1)(i%=array.size)(i&=3)

The above example is similar to this Java (C++?) code:

i=(i=i++ %array.length)&3;

The style could depend, of course.

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This doesn't answer the question, nor does it offer a good style to use Scala. Please mention this in your answer. –  sschaef Sep 30 '12 at 20:28
    
Operator chaining seems a beautiful application of a Scala way, I think. If you'll be more accurate in specifying a possible pitfall, I will gladly update my answer. –  idonnie Sep 30 '12 at 21:00
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The reasons for not using it in the classical C++ way have already been given by others. But that's no reason not to use it as a value returning method. I include this in my top level package with a few other useful methods, that are not in the standard library at the time of writing:

implicit class RichInt2(n: Int) extends Unchanged[Int] {
  override def unchanged: Int = n
  def isOdd: Boolean = if (n % 2 == 1) true else false
  def isEven: Boolean = if (n % 2 == 0) true else false
  def ++ : Int = n + 1
  def -- : Int = n - 1
  def ifinc(b: Boolean): Int = if (b) n + 1 else n
  def ifdec(b: Boolean): Int = if (b) n - 1 else n
}

trait Unchanged[T {
  def unchanged: T 
  def ifes(b: Boolean, f: T => T): T = if (b) f(unchanged) else unchanged
}
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It isn't included because Scala developers thought it make the specification more complex while achieving only negligible benefits and because Scala doesn't have operators at all.

You could write your own one like this:

class PlusPlusInt(i: Int){
  def ++ = i+1
  }

implicit def int2PlusPlusInt(i: Int) = new PlusPlusInt(i)

val a = 5++
// a is 6

But I'm sure you will get into some trouble with precedence not working as you expect. Additionally if i++ would be added, people would ask for ++i too, which doesn't really fit into Scala's syntax.

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I suppose you could add a ++: method to support prefix operators, like val a = ++:5. But I suppose that looks a little wierd. –  alpha123 Oct 21 '10 at 22:27
    
Bad idea. This doesn't work the canonical way that i++ is supposed to work--i++ is supposed to be equivalent to { val temp = i; i += 1; temp }. –  Rex Kerr Oct 21 '10 at 22:31
    
I'm not saying it was a good idea either! In my humble opinion the language design of Scala is pretty perfect (****-ups like automatically converting integral numbers to floating point numbers excluded) and in practice using += is much more readable. –  soc Oct 21 '10 at 22:51
    
@Rex Kerr: But that’s only a minor problem. The main thing is you cannot do var a = 5; a++; assert(a == 6) because a itself does not actually change. –  Debilski Dec 23 '10 at 22:44
    
@Debilski - I thought my answer covered that. I guess it was too opaque because there was more than one thing wrong. –  Rex Kerr Dec 24 '10 at 6:27
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