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In C++ I understand that (++i) should return a reference to i because the need of concatenation of operators, but what I can't figure out is:

Why (i++) should return i by value?

Can anyone please clarify.

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1  
Unless you are talking about a specific language, ++i always return the value, not a reference. –  HoLyVieR Jun 18 '10 at 19:13
    
@all : I'm pretty sure this is fine as language-agnostic. Is there any language that could return i++ by reference? It must return a new value, in any language's implementation. –  Stephen Jun 18 '10 at 19:22
    
Based on the context of the question, I would assume he is talking about overloading the ++ operator in C++. A clarification of the question would be helpful. –  5ound Jun 18 '10 at 19:26
3  
@Stephen No, it isn't. I do not understand the desire of people to answer questions here at the drop of a hat, without trying to get the questioner to explain their real problem in detail. Why rush in making assumptions? –  anon Jun 18 '10 at 20:16
1  
@Neil: Because doing so you get the chance of earning some reputation ? –  Matthieu M. Jun 19 '10 at 10:58

8 Answers 8

up vote 18 down vote accepted

++i can be written as

prefix_inc (this) {
   increase this by 1
   return this
}

Since the real i is returned, we can take reference of it. However, i++ looks like

postfix_inc (this) {
   set old_this = copy of this
   increase this by 1
   return old_this
}

as old_this is just a local variable, the reference of it is pointless after i++ is completed. So logically it should return an rvalue.

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i++ returns a value because it is returns the old value of i, while i is increased by 1.

A basic implementation of this would be:

int i++() {
  int old = i;
  i = i + 1;
  return old;
}

So, if it returned a reference, it would be the wrong value... since i's value has been incremented!

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2  
Furthermore, it can't return a reference to old, because you can't return a reference (or pointer) to a temporary. –  James McNellis Jun 19 '10 at 3:41

Let foo be some function. foo(i++) calls foo(i) with the old value of i and increments i, hence the need to build a temporary copy. foo(++i) increments i and then calls foo with the incremented value, so for better performance we can reuse the same variable, no need to have a temporary copy.

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4  
foo(i++) increments i and then calls foo with the original value of i. There's a sequence point between the evaluation of the parameter (with its side effect) and the function call. –  Charles Bailey Jun 18 '10 at 20:32

i++ This returns the value of the i before it is incremented. So the idea is that if you want to use i in a function, and then increment the value after using it, you can do that in one step. As an example, here is how I would overload that operator for integers.

Integer Integer::operator++()
{
    Integer returnValue = *this;
    this->increment();
    return returnValue;
}

So it increments the value and then returns what it used to be. It also doesn't return a reference, because returning a reference would be different from what was originally passed, which would break cascading.

++i This increments the value of i, and then returns the new value. So you could use this in a situation where you want to increment i and then use the new value in your function.

Integer Integer::operator++(Integer i)
{
    i.increment();
    return i;
}

So the value it returns is the incremented value of i.

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int i = 0;
Console.Writeline(i++); // Output 0, after that, i will be 1


int x = 0;
Console.Writeline(++x); // Output 1

Note: code is in C#

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While prefix ++i returns the incremented value and the suffix i++ returns the old value and increments it afterwards the operator selection is significant if you care for the CPU cycles. Prefix increment is faster ;-)

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Why prefix increment is faster??? –  Kit Ho Jul 17 '11 at 3:41
    
Simplistic compilers can create a temporary variable to store the intermediate value. It does cost nothing for standard types like intbut for eg. objects it can be costly. It matters if your app is CPU bound. See parashift.com/c++-faq-lite/operator-overloading.html#faq-13.15 –  puudeli Aug 3 '11 at 12:11

5 cents:

As a consequence of i++ making a copy, it is slower for non-POD variables (i.e. iterators). You should use ++i anywhere when possible.

I personaly always use for(...;...;++i) instead of for(...;...;i++), although compiller should optimize that.

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If you're ever in a scenario where it matters, you're doing it wrong.

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5  
If you have to overload that operator, it matters that you understand how they work. –  chustar Jun 18 '10 at 20:32
    
I wouldn't inflict ++i vs i++ on anyone that had to use my class. –  Puppy Jun 18 '10 at 20:40

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