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I am confused of operator precedence table give in http://www.difranco.net/compsci/C_Operator_Precedence_Table.htm

I mean right-to-left and left-to-right.

I want to know in what order the operator will we applied on this code.

int main()
{
   int i[] = {3, 5}; 
   int *p = i; 
   int j = --*p++; 

   printf("j = %d\n\n", j);
   system("pause");
   return 0;
}

Is it like --(*(p++))? or (--(*p))++ ? Its very confusing. is there any standard rule to resolve this problem.

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5  
The question you should be asking is why you are even contemplating writing code like this. Do you like pain? –  David Heffernan Oct 8 '13 at 12:03
1  
I agree with David, once you get a basic understanding, if you have to read documentation/write a test/ask to SO, probably your expression is your complex that either it is very likely to not behave as expected or your coworkers will have to read documentation/write a test/ask to SO to understand it (or both of the options). Lines of code are free, just make your expression longer. –  SJuan76 Oct 8 '13 at 12:11
    
Note: Expression (--(*p))++ (is equivalents to --(*p)++) will be a compilation time error: Not an lvalue. To understand it Read: Why ++i++ gives “L-value required error” in C? –  Grijesh Chauhan Oct 8 '13 at 19:37

4 Answers 4

The expression:

j = --*p++;

is equivalent to:

j = --*p;  // first decrements value pointed by p, then assign value pointer by p to j
p++;       // increment p to point to next location

The parenthesis version of your expression should be : --(*(p++)); Read @Jonathan Leffler's answer.

I would also suggest you to read @Eric Lippert answer: Incrementing Pointers, Exact Sequence to understand ++ and * operator expression that how a compiler can perform it at low level.

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Unless I am mistaken, -- will always be parsed by the compiler as the decrement operator. –  Der Flatulator Oct 8 '13 at 12:08
    
@DerFlatulator Yes -- parsed as decrements operator. --- will be pareses as -- - –  Grijesh Chauhan Oct 8 '13 at 12:09

I am confused by the operator precedence table give in http://www.difranco.net/compsci/C_Operator_Precedence_Table.htm. What does right-to-left and left-to-right mean in this table?

Precedence and associativity determine how the parentheses are logically inserted into an underparenthesized expression. If you have

x + y * z

then * is higher precedence, so it wins, and this is:

x + (y * z)

not

(x + y) * z

If you have two operators that have the same precedence then which one wins depends on the associativity. + and - are the same precedence and have left-to-right associativity, so

x + y - z 

is

(x + y) - z

And not

x + (y - z)

Operators with right-to-left associativity put the parentheses on the rightmost expression first.

I want to know in what order the operator will we applied on this code. --*p++

Well, follow the chart. We have *, prefix decrement and postfix increment. Consult the precedence table first. Postfix increment is higher precedence than the other two, so automatically this is --*(p++). And now we do not need to consult the table to work out the rest; clearly the only possible parenthesization is --(*(p++)).

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Precedence and associativity determine how the parentheses are logically inserted into an underparenthesized expression opposite is also true that "parentheses are used to overwrite precedence of operator in an expression". e.g. in (x + y) * z, + that is low in precedence executes before then *. –  Grijesh Chauhan Oct 9 '13 at 4:25

++ and -- Prefix increment/decrement right-to-left and later on you found *

j = --*p++;  

Above statement according to precedence -- will perform first. So in expression -- is pre-decrement on *p and then ++ is post increment, will increment pointer p.

j= --*p; //and immediately do *p++ == p++ , because here ++ got priority. and this is post decrement this wont assign to j.this as same as incrementing p value in next statement. 
p++;
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There are plenty of tricks on prefix increment and postfix increment.
As a programmer, you do not need to spend too much time on those tricks, just use brackets in your code to show the computing order.

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