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Other than the extra space in the editor, is there any difference between the two statements?

EDIT: Thanks for the answers. I would also like to know how each statement is evaluated by the compiler.

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I suppose you mean value += 1 or value = value + i –  icepack Dec 10 '12 at 22:20
3  
For POD (like int or double) they evaluate as you would expect: identically. For anything else, they are evaluated by functions like operator+(MyClass value, int i) operator+=(MyClass value, int i). So what happens depends on how the developer writes those functions. Any sensible person would make sure they 'work right` - but it's possible there are mistakes. I suggest you take a look at courses.cms.caltech.edu/cs11/material/cpp/donnie/cpp-ops.html or csse.monash.edu.au/~jonmc/CSE2305/Topics/10.19.OpOverload/html/… for more accurate description. –  Zero Dec 10 '12 at 22:31
    
If you don't mean, literally, "value" then there is a clear difference. Consider *f() = *f() + i versus *f() += i. –  Robᵩ Dec 10 '12 at 22:45
    
Welcome to SO. Editing your question to add more questions is not a good practice; in fact your EDIT has also been answered already. I think your question has been answered so please choose an answer, thanks! –  m0skit0 Dec 10 '12 at 23:15

4 Answers 4

up vote 6 down vote accepted

No - for anything other that PODs the operators may be overloaded.

You would hope that any reasonable implementation makes these operations the same, but it is up to the developer and not enforced by the compiler.

You can imagine even more subtle problems when people overload operators such that (A==B) is not the same as (B==A).

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Yes, there can be differences. Some objects, such as Forward Iterators, define increment operators (x++ and ++x), but not not operator+=. Some objects, like string, define operator+= but not increment. But, generally, if x += 1, ++x, and x++ are all defined, they will do the same thing.

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Even for PODs they're not quite the same; the difference is trivial, but your helpful compiler writer may warn you for the latter but not for the former:

char ch = get_a_character();
++ch;
ch = ch + 1; // narrowing conversion
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Yes, they are identical. It's highly probable that the compiler will generate the same code for both.

Unless one or both of the operators have been overloaded, of course. This is why some people frown on operator overloading.

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I'd say that's a pretty controversial statement: I wouldn't trust the majority of C++ code in the wild (without double checking) - but I would say you can trust any built in types or quality libraries. –  Zero Dec 10 '12 at 22:26

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