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I've been looking around and found formula: a = (a + b) - (b = a) it is supposed to swap two variables (or objects in some cases). However I tested it with C++ and php, these gave me different result.

php:

$a = 10;
$b = 20;
$a = ($a + $b) - ($b = $a);
echo $a, " ", $b;

This prints 20 10

C++

int a = 10;
int b = 20;
a = (a + b) - (b = a);
std::cout << a << " " << b;

This prints 10 10

Code looks the same but outputs are different, I've been thinking about two reasons:

  1. C++ code is compiling and php is interpreting.
  2. This formula is useless because it leads to undefined behavior.

Can somebody explains, why C++ and php output differs in this situation?

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5  
stackoverflow.com/questions/949433/… - your C++ code has undefined behavior. –  Mat Aug 4 '13 at 7:58
2  
Are you sure? I copy/pasted your code in my compiler (g++) and I get "20 10" rather than "10 10". –  leonm Aug 4 '13 at 8:04
2  
@leonm Which is not surprising if the behavior is undefined. –  Juhana Aug 4 '13 at 8:05
    
@leonm I used VS2008 and it gave 10 10. So as it probably is UB different compilers may process code in different ways, so it just confirms of it beeing UB. –  ST3 Aug 4 '13 at 8:05
1  
I also tried here compileonline.com/compile_cpp_online.php the result was 20 10 –  user1646111 Aug 4 '13 at 8:06
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4 Answers 4

up vote 14 down vote accepted

I'm not sure what the rules are in PHP, but in C++, the order of individual sub-expressions isn't strictly defined, or as the technical term is, it is "unspecified" - in other words, the compiler is allowed to calculate b = a before or after it does a + b. As long as it does a + b and b = a before the subtraction. The use of "unspecified" behaviour allows the compiler to produce more efficient code in some cases, or simply that it's possible to build a compiler for some architectures.

It also means that if you have an expression that "recalculates" a value within the expression itself, and also using it elsewhere in the expression, you get unedefined behaviour (UB for short). UB means just that, the behaviour is not defined - almost anything could happen, including what you are seeing and many other alternatives (e.g. the compiler is allowed to produce 42 as a result as well, even if logic says the answer wouldn't be 42 in this case [it's the wrong question for that!]).

I would also suggest that if you want to swap two values, in PHP:

 $t = $a;
 $a = $b;
 $b = $t;

and in C++:

 #include <algorithm>

 std::swap(a, b); 

or if you insist on writing your own:

 int t = a;
 a = b;
 b = t; 

Trying to be clever and perform it "without temporary variable" is almost certainly going to make it slower than the use of a temporary - certainly in a compile language like C++ - in a interpreted language like PHP, creating a new variable may add a bit of extra overhead, but it's unlikely to be that big, compared to the extra effort in the logic required.

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There don't seem to be any rules in PHP. What seems to happen, however, is that subexpressions are evaluated in a left-to-right order. But it's not actually specified anywhere. –  greyfade Oct 8 '13 at 17:17
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C++ code is completely broken because of undefined behavior. (read and write b in one sequence point).

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What about PHP code? It does the same thing, it seems. –  FractalizeR Aug 4 '13 at 11:48
    
@FractalizeR Because PHP and C++ aren't the same language. So what is undefined behavior in C++ can be perfectly well defined in PHP, letting you write in one line what would ordinarily take two (or more) in C++. Or, equivalently, the same code written in two different languages need not do "the same thing" :) –  Thomas Aug 4 '13 at 12:06
    
It isn't clear that anything is perfectly well defined in PHP. There is no language standard that I can see, just an online set of web pages saying "operators exist and they kind of do this", and lots of examples. –  Ira Baxter Aug 5 '13 at 13:45
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For PHP:

$a = 10;
$b = 20;
$a = ($a + $b) - ($b = $a);
//executes like thus
$a = (30) - ($b = $a);
$a = (30) - ($b = $a = 10); //new $a still not computed, using older $a
$a = (30) - (10);
$a = 20;
//then, $a=20 and $b = 10

This is totally related to Operator Precedence, this might be same in C or might not, it depends on precedence if unexpected behavior not occur.

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As I think php is interpreting language so it may be that it converts parts of code into numeral expression, as a result it always gives the same result. Compared to compiling languages, what works with registers, memory addresses. –  ST3 Aug 4 '13 at 8:17
2  
@user2623967 Being compiled or interpreted doesn't enter into it. PHP has the advantage of having only one commonly used interpreter, so even undefined behavior is often predictable (although it might vary between versions and platforms). On the other hand there are many different C++ compilers and undefined behavior varies more between them. –  Juhana Aug 4 '13 at 8:19
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C++

In this case operator precedence question leads into UB (undefined behavior). Some compilers may handle this in one way, some in other way. For example gcc compiler correctly swaps two numbers but this correct result is obtained not because of C++ standart but because of compiler design. Comparing gcc with Visual Studio. Visual Studio doesn't swap those two numbers and we cannot call the output incorrect because C++ standart says nothing about such a situation.

php

It gives correct result, but take a look, why is it correct? php handles all data not like vriables/memory addresses/registry data but like values. Lets look at the stuff the interpretter does:

$a = 10;
$b = 20;
$a = ($a + $b) - ($b = $a);
  1. a = 10;
  2. b = 20;
  3. a = (10 + 20) - (b = 10);
  4. b = 10;
  5. a = 30 - 10;
  6. a = 20;

This sequence gives correct result. However we should to draw attention that php has only one commonly used interpreter, so this code could give different result using another interpreter.

phc (php compiler)

It is php compiler. And here comes the problems, it is created to optimize php code for big projects this do work with data not in the way of as value, but in the way like C++ (registers/memory). So in this case you can get a situation where your php code worked fine before compilation but after that fails.


To sum up, it is not a good experience to use code which leads into UB. What is more, this question is about swaping two values and usually the way without temporary variable is slower than ways with it.

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2  
Re: "gcc compiler correctly swaps two numbers": no, there's nothing "correct" about this. The behavior is undefined, so anything is correct. Yes, it does what someone expected it to do, but that's not a valid meaning for "correct". –  Pete Becker Aug 4 '13 at 11:05
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