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For learning purposes, I wrote the following code snippet:

for(int i=0;i<10;i++)
{
  for(int j = 0;j<5;j++)        
  {
    //(i==j && i==3)? (goto found) : printf("stya here\n");        
    if(i==j && i==3){goto found;} else {printf("stay here\n");}
  }
}

found:
  printf("yes I am here");

But I wondered when I discovered the omitted statement inside the inner loop not gives error and now I am confused about if-else is not always replaceable with ?: operator. What is the fact here? Why does the commented statement give an error?

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1  
    
@Mat why did you edited c with V? –  amin__ Jun 30 '12 at 9:39
    
Sorry, typo. You had c, I wanted to replace with C but slipped. You can edit your own post btw, you could have fixed that yourself. –  Mat Jun 30 '12 at 9:39
    
I forget. But I click on the edit then I saw C, not c...and I saved edits... you okay Mat?? –  amin__ Jun 30 '12 at 9:47

4 Answers 4

up vote 8 down vote accepted

The ?: operator is not replacement for if. It works only for expressions: condition ? expr1 : expr2 where both sub-expressions expr1 and expr2 are of the same type (and the whole expression then is of the same type).

goto is not expression, it is a statement.

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oh yes...thanks –  amin__ Jun 30 '12 at 9:37

I am not well versed enough in C to explain why this doesn't work syntactically, but in the sense of intent the ?: ternary operator form is intended as a conditional expression (yields a result), not as a control flow mechanism. Using the if statement you can choose a value for a variable or change the flow of the application. e.g.

//Change flow

if(x ==0)
{
   //do this
} 
else
{
 //goto some label
} 

or

//Change value
    if(x == 0)
    {
      y = 1;
    }
    else
    {
      y = 2;
    }

The ternary is only intended for the second case, as a conditional expression i.e.

y = (x ==0) ? 1 :2;
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What would be the result of "goto found" expression? I don't know, neither does the compiler, so the result of ? expression cannot be determined, hence the error.

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you dont see the label below named found??? –  amin__ Jun 30 '12 at 9:31
    
Is "goto found" an expression? –  amin__ Jun 30 '12 at 9:40
    
@alaminhosain: He does see the label. The question is what the result of the expression would be. For example, consider: int p; p = (i==j && i==3)? (goto found) : printf("stya here\n");. It's clear what value p has on the printf side. But value does p have on the goto side?! That's what the compiler can't figure out. –  David Schwartz Jun 30 '12 at 10:03
    
@Okay, then why this is working where both the functions are void (i==j && i==3)? fun1() : fun2(); –  amin__ Jun 30 '12 at 10:11
    
If your functions are declared void fun1() it won't work either. –  Patrick Schlüter Jun 30 '12 at 10:21

In general, the ?: operator is no replacement for a classic if() ... else() .... It might be used as such if both operators (and the condition) are values or expressions returning a value. You can't use them with statements like goto, break or continue.

The following would be possible:

condition ? dothis() : dothat(); // there's no assignment, but it's still valid
var = condition ? dothis() : othervar;
condition ? (var=4, othervar=3) : (somevar = 1);

But you can't include anything that's not an expression (i.e. nothing not having some value or result):

condition ? continue : break; // statements letting the execution continue somewhere else
condition ? {var = 4; othervar = 3;} : dothat(); // trying to inline scopes/multiple exressions
var = condition ? while(var) {var--;} : 5; // similar, inlining a complete loop

These last examples can be done, but they'd require you to use if() or function bodys to call:

if (condition) continue; else break;
condition ? (var = 4, var = 3) : dothat();
var = condition ? dotheloop(var) : 5; // ok, this could be 'var = condition ? 0 : 5;' but... example code
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why not, condition? dothis():printf("print"); works? but, condition? printf("print1") : printf("print2"); works? –  amin__ Jun 30 '12 at 9:55
    
Actually, both should work, but to be honest in latter case I'd prefer doing printf(condition ? "print1" : "print2");. –  Mario Jun 30 '12 at 10:22
    
later one works..tell me what the problem with first one –  amin__ Jun 30 '12 at 10:28

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