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In the PHP manual, operator precedence section, there is this example:

// mixing ++ and + produces undefined behavior
$a = 1;
echo ++$a + $a++; // may print 4 or 5

I understand the behavior is undefined because of the following reason:

Since x + y = y + x the interpreter is free to evaluate x and y for addition in any order in order to optimize speed and/or memory. I concluded this after looking at the C code example in this article.

My question is that the output of the above mentioned PHP code should be 4 no matter which way the expression and sub-expressions are evaluated:

  • op1 = ++$a => $a = 2, op1 = 2; op2 = $a++ => op2 = 2, $a = 3; 2 + 2 = 4
  • op1 = $a++ => op1 = 1, $a = 2; op2 = ++$a => op2 = 3, $a = 3; 1 + 3 = 4

Where does the 5 come from? Or should I learn more about how the operators work?

Edit:

I have been staring at Incrementing/Decrementing Operators section but still could not figure out why 5.

++$a: Pre-increment -- Increments $a by one, then returns $a.
$a++: Post-increment -- Returns $a, then increments $a by one.

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marked as duplicate by danip, Ram kiran, Jesus Ramos, us2012, Sudarshan Feb 8 '13 at 5:18

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Did you really get 5 printed while running this code? –  Ranty Jan 2 '13 at 7:24
    
No. I always got 4 with a few versions of PHP. It is the word may, it means I could run this code a million times getting the reesult 4 but there is no guarantee. –  Salman A Jan 2 '13 at 7:27
    
@H2CO3: I am more interested in knowing why 5. –  Salman A Jan 2 '13 at 7:28
    
stackoverflow.com/q/9709818/1607098 –  Touki Jan 2 '13 at 7:37
    
Bear in mind that a compiler/interpreter may well choose to do someting in a different way depending on circumstances - are there registers available, can we do something clever because of how it's used next [e.g. staying with the value calculated in a register] –  Mats Petersson Jan 2 '13 at 8:35

3 Answers 3

a = 1;
++ (preincrement) gives a = 2 (higher precedence than +, and LR higher precedence than postincrement)
++ (postincrement) gives a = 3 (higher precedence than +)
+ (add) gives 2 + 3 = 5

$a is initially set to 1. The ++$a then preincrements $a before using it in the formula, setting it to 2, and pushing that value onto the lexer stack. The $++ is then executed, because incrementor has a higher precedence than +, and that value is also pushed that result onto the lexer stack; and the addition that then takes place adds the lexer stack's 2 result to the lexer stack's 3 result giving a result of 5, which is then echoed. The value of $a once the line has executed is 3.

OR

a = 1;
++ (preincrement) gives a = 2 (higher precedence than +, and LR higher precedence than postincrement)
+ (add) gives 2 + 2 = 4 (the value that is echoed)
++ (postincrement) gives a = 3 (incremented __after__ the variable is echoed)

$a is initially set to 1. When the formula is parses, the ++$a preincrements $a, setting it to 2 before using it in the formula (pushing the result to the lexer stack). The result from the lexer stack and the current value of $a are then added together giving 4; and this value is echoed. Finally, $a is postincremented, leaving a value of 3 in $a.

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2  
I've edited my question. I had thought of this too but later realized that post increment will return the current value (i.e. 2), then increment a. –  Salman A Jan 2 '13 at 7:37

Yes it will give you 5 because the right side operator works first by its priority/precendence and after that the sum(+) operator will work. So first increment makes it to 2 and second makes it to 3 and after that both will sum and outputs you the result as 5

$result = ++$a + $a++;

++$a outputs as 2

$a++ outputs as 2 3 only but internally it wll be incremented.

finally sum will happens as 2+3 = 5

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2  
"Yes it will give you 5" - rather "Yes it may also give you 5". –  user529758 Jan 2 '13 at 7:30
    
Even if $a is 3 after $a++ is evaluated, the expression $a++ still evaluates to 2, so the sum is 2+2. –  fgb Jan 2 '13 at 8:16

Mark, I believe you are wrong!

Post-increment: Returns $a, then increments $a by one. (from documentation)

So there is no way to get $a value of 3 in sum operation.

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The point is that the result is unpredictable: OP was asking how it was possible to get a result of 5, not whether it did give a result of 5 –  Mark Baker Jan 2 '13 at 9:12
    
But then an explanation: "++$a gives 0 and $a++ gives 5, so 0 + 5 = 5" would give same effort. I mean, both are against documentation. –  TomTom Jan 2 '13 at 11:34

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