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can someone explain me why this simple ternary operation won't even compile, in C?

void main(int argc, char *argv[]){
    int a = atoi(argv[1]);
    char foo[] = (a == 1) ? "bar1" : "bar2";
}

It seems to be a problem with Strings..

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Wait a minute, in C? Why is your main return void if you're working in C? It should be an int. –  TheZ Oct 2 '12 at 16:19
1  
returning void in allowed but not recommended. There's a void main.. –  Pier-Alexandre Bouchard Oct 2 '12 at 16:22
    
Microsoft's compiler will happily accept it, others will not, but it could not be the first time MS did things their were. See stackoverflow.com/questions/4207134/… for a very nice discussion about this. –  WhozCraig Oct 2 '12 at 16:24
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2 Answers

up vote 6 down vote accepted

A string literal "bar", used as an expression, is a pointer to pre-allocated memory. You cannot initialize an array using a pointer to data, only to a literal ("..." or {...}).

However, you could assign it to a char *:

const char *foo = (a == 1) ? "bar1" : "bar2";

Note that this will not make a copy of the literal but point to it, so you should not modify foo. If you need a copy, you can use memcpy:

char foo[5];
memcpy(foo, (a == 1) ? "bar1" : "bar2", sizeof foo);

(If you're a big fan of assignment, then you might be interested to know that it is possible to implicitly copy the contents of a struct using assignment, and you could put a character array in a struct.)

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Oh, I learn something today! I didn't know it was in a pre-allocated memory! –  Pier-Alexandre Bouchard Oct 2 '12 at 16:24
    
@Mat This is initialization, not assignment. –  Alexey Frunze Oct 2 '12 at 16:25
    
@Mat Good catch. I was being overly brief as I was answering on my phone; fixed now. –  Kevin Reid Oct 2 '12 at 16:30
    
You can initialize char foo[] with either "bar1" or "bar2" directly. But you can't do that via an expression. The standard says: "An array of character type may be initialized by a character string literal, optionally enclosed in braces." The ?: expression is not a string literal, even though in most other contexts the types and the values of "bar1" and 1?"bar1":"bar2" are going to be exactly the same. –  Alexey Frunze Oct 2 '12 at 16:31
    
@Mat You can't assign arrays in C. It can only be initialization. –  Alexey Frunze Oct 2 '12 at 16:32
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Your ternary operation is fine, but you can't initialize the array with the resultant pre-allocated memory where "bar1" and "bar2" reside.

int a = atoi(argv[1]);
char foo[5];
memcpy(foo,((a == 1) ? "bar1" : "bar2"), 5); 

Would be a possible way to keep doing what you're doing.

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