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I see some code written like this:

char str[256] = {0};

or

char str[256] = {1};

when the former case, I use

printf("%s", str);

gives nothing,

Does it means give all the str[0] to str[256] all value 1?
when latterthe stdio give a ASCII smile char.

Furthermore, what is the difference between

char s[256] = {0};
printf("%c", s[1]);

It gives nothing in stdout


char s[256] = {0};
printf("%s", s[1]);

it give a (null)

I do not understand because I am a beginner of c char array and c pointers.

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closed as off-topic by Kerrek SB, EdChum, jwueller, Elenasys, Roombatron5000 Jun 28 '14 at 10:53

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juanchopanza's answer is correct, but a couple other things to mention: the integer value 0 is not the same as the character value '0', which may be what you intended. And printf("%s", ...) requires a pointer to the string. In the case where you get "null", you're passing it the value of a character, which is 0 and thus interpreted as a null pointer. If you wanted to print the string starting from the second character (s[1]), you should use the address of the character (printf("%s", &s[1])) –  Taylor Brandstetter Dec 17 '13 at 16:55

1 Answer 1

This initializes all 256 chars to 0:

char str[256] = {0};

This one initializes the first one to 1, and all the rest to 0:

char str[256] = {1};

Concerning the behaviour of printf, "%c" expects a single char. You pass it 0, which is NUL (the character string termination) so it prints nothing. "%s" expects a char* with the first character in a nul-terminated character string. You pass it a single char with value 0, which it interprets as a null pointer.

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