-2

Why do I get exception in the code?

char* first = "first";
char* second = "second";
*first = *second;

Shouldn't it just assign values? Error message says: access violation

  • first and second point to memory that you must not write to. Unfortunately, the conversion to non-constant pointer types is performed when initializing. Please, for the future, also provide the exact error message. – Ulrich Eckhardt Jan 18 '15 at 12:57
  • 2
    That's unrelated, I would say @ChristianSarofeen. – Ulrich Eckhardt Jan 18 '15 at 12:59
  • @UlrichEckhardt There is no conversion from const to non-const in the posted code. "first", although it must not be written to, has type char [6], and decays to char * when assigned. – Pascal Cuoq Jan 18 '15 at 13:30
  • 1
    Shame on anyone who voted to close as a duplicate of a C++ question. – Pascal Cuoq Jan 18 '15 at 13:31
0

No because they are string literals and are read only

char *first = "first";
char *second = "second";

you can try with arrays instead.

char first[] = "first";
char second[] = "second";

to prevent this kind of error you can do this

const char *first = "first";
const char *second = "second";

when declaring string literals, it will not prevent the problem completely because you still can cast away the const but you should do so conciously.

  • 1
    Technically, string literals are not unmodifiable. It's just that writing to them constitutes undefined behaviour. – fuz Jan 18 '15 at 13:19

Not the answer you're looking for? Browse other questions tagged or ask your own question.