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can some one give me the precedence abstract syntax tree of a[++b] and ++a[b] so that i can better understand i am having difficulty in having order of evaluation of operator..i get tht expression evaluation has nothing to do with order of evaluation of operators..!! in this case that in array[expr1] expr1( sub script expression) any operator in expr1 is should be evaluated first? i am simply sayin that in a[++b]...[] has higher precedence than ++(prefix) so i look at the expression a[++b] and think b is involved in two operators in which the higher prec. [] should be evaluated first. but someone tell me where i am wrong? **

 int main(){
     int a[4]={1,2,3,4};, b=1;
     printf("%d ",a[b++]);
     b=1;
      printf("%d",++a[b]);
           }

**

  • show us some code, in C something[value] is used to access an array position, is a (a[++b]) an array ? – mf_ Jul 2 '13 at 12:34
  • What do you want to say? Any way as [] has higher precedence the ++b under it will evaluate i.e b=b+1;. – 0decimal0 Jul 2 '13 at 12:39
  • @PHIfounder how ++(prefix) can evaluate before [] since both operators on b – Durgesh K. Singh Jul 2 '13 at 12:43
  • 2
    @PHIfounder ++b evaluates to b + 1. This is the value of the expression. It also schedules variable b to be incremented. The assignment to b will occur at some point before the next sequence point, but the time it occurs has nothing to do with the precedence of [] or any other operator. In f()[++b], variable b can be incremented either before or after f() is called. This is unspecified. In some other circumstances, e.g. (b++) + (--b), combining assignments to b make the program undefined behavior. Little of all this has to do with precedence. – Pascal Cuoq Jul 2 '13 at 13:13
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    @PHIfounder The C standards leave these aspects as little specified as possible for two reasons: 1) the standards should ideally accommodate various pre-existing C compilers, so that they turn out to be already standard-compliant, and 2) this gives more opportunities for a given compiler to generate efficient code for the assembly language it targets. In the case of f()[++b], of course the value b + 1 must be computed before the memory access can take place, but the compiler can choose whether to write back this new value to b before or after calling f(), whichever seems most efficient – Pascal Cuoq Jul 2 '13 at 13:31
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There are no sequence points when evaluating a parameter list. So the only thing you can guarantee about that is that at some point before printf is called, b will be incremented as a side effect of the postincrement. This isn't an order of precedence issue at all.

That answer applied to your original code,

printf("%d ",a[b++], ++a[b]);

which I see you have now changed completely.

  • Not even the above mentioned thing is guaranteed, because If a side effect on a scalar object is unsequenced relative to either a different side effect on the same scalar object or a value computation using the value of the same scalar object, the behavior is undefined. [ISO/IEC 9899] – Armali Jul 2 '13 at 13:00
  • he only invokes the side effect once – Tom Tanner Jul 2 '13 at 13:20
  • And he is using the value of the same scalar object, so, the behavior is undefined. – Armali Jul 2 '13 at 13:25
  • oh, right, I thought you were talking about the increment. Yes, I realised the behaviour was undefined wrt the value of b at any point – Tom Tanner Jul 2 '13 at 13:47
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In your example a[++b], b is not an operand of []; [] has two Operands, the one in front of [ and the one between [ and ].

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First of all please try to understand meaning of ++. a++ means a=a+1. Now difference between a++ and ++a (before and after):

a++will be executed after completion of statement i.e (after next; or line usually) where ++a will be executed immediately.

Now come to your point in a[b++] ++ is working on array index b where in a[b]++ is working in bth value. a[++b] and ++a[b] are increasing the value immediately before another calculation.

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