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This is my simple program:

int main(int argc, const char * argv[])
{
    char s [5] = "Hello";
    printf("%s", s);
    return 0;
}

Hello is a 5 chars length so I define a char s [5] but the output is:

Hellop\370\277_\377

And when I change the char s [5] to char s [], everything works fine. What's the problem with my code?

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8  
You forgot the place for the 0-terminator, "Hello" needs 6 bytes. –  Daniel Fischer May 10 '13 at 19:12

1 Answer 1

up vote 16 down vote accepted

You're forgetting the null terminator.

C strings are expected to have one \0 byte on the end to mark the end of the string. The reason your output looks strange is because printf, looking for the null terminator, has wandered off into uninitialized memory, which triggers undefined behavior.

In this case, printf appears to somewhat luckily find a null pretty quickly, and terminate normally after printing some garbage. However, this kind of bug will often crash your program with the message segmentation fault. A "seg fault" occurs when the operating system kills your process because it's doing something it's not supposed to, like reading memory that doesn't belong to it.

Try this instead:

char s[] = "Hello"; //s is now 6 characters long.

By not providing a number, the compiler decides how big your array needs to be and copies the "Hello" data into it.

If you need a string you don't want to change, you should declare them this way instead:

const char* s = "Hello";

This way, you've created a pointer that points to static memory, containing the string "Hello", no copy needed.

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Sorry, I'm new in C. Didn't know that! Thanks :) –  Afshin Mehrabani May 10 '13 at 19:14
    
There is no need to use the declaration shown at the end of this answer, making s a pointer to const char. The array is fine. If it is visibly not modified, or if the declaration is changed to const char s[] = …, then the compiler should put it in the same read-only segment that a literal string would be placed in. –  Eric Postpischil May 10 '13 at 19:30

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