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For example:

char a[] = "abc\0";

Does standard C say that another byte of value 0 must be appended even if the string already has a zero at the end? So, is sizeof(a) equal to 4 or 5?

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There absolutely nothing wrong with the English in your question. But couldn't you find the answer by simply trying it? –  Barmar Jul 30 '13 at 9:41
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If you want to be explicit, you could write: char a[] = {'a','b','c','\0'};. This isn't declared as a string literal so an extra terminating null isn't appended. –  Coder_Dan Jul 30 '13 at 10:10

1 Answer 1

All string literals have an implicit null-terminator, irrespective of the content of the string.

The standard (6.4.5 String Literals) says:

A byte or code of value zero is appended to each multibyte character sequence that results from a string literal or literals.

So, the string literal "abc\0" contains the implicit null-terminator, in addition to the explicit one. So, the array a contains 5 elements.

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