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Why is it that sizeof("Bill") is 5 but sizeof(char) is 1?

Shouldn't that make sizeof("Bill") be 4 since the length of the string is 4 chars (4 x 1)?

I believe it may have something to do with "Bill" being an array of characters, but why does that increase the byte size?

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closed as too localized by H2CO3, Ed Heal, Richard J. Ross III, Damien_The_Unbeliever, Laurent Etiemble Jun 4 '13 at 18:40

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@H2CO3 - I concur - this is simple C programming that is usually covered within the first couple of chapters of a reasonable programming book on C (or C++) –  Ed Heal Jun 3 '13 at 21:17
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That's no reason not to use this question as a place to write a good canonical answer and hopefully improve the internet a little bit. –  Carl Norum Jun 3 '13 at 21:19
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@EdHeal Maybe a vote for closure would be a good sign of you concurring ;) I totally agree, this question fits very well the "shows no research effort" term in the FAQ. –  user529758 Jun 3 '13 at 21:19
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@H2CO3 - Give me a chance - I only have one pair of hands (and one keyboard!) –  Ed Heal Jun 3 '13 at 21:20
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2 Answers

up vote 22 down vote accepted

C strings are null terminated. There is a zero byte at the end of that string. Assuming ASCII, "Bill" looks like this in memory:

'B'  'i'  'l'  'l'  '\0'
0x42 0x69 0x6c 0x6c 0x00

From the C standard, Section 6.4.5 String literals, paragraph 7:

In translation phase 7, a byte or code of value zero is appended to each multibyte character sequence that results from a string literal or literals.

If you want to get an answer of 4 for the length, you should use strlen("Bill"), rather than sizeof.

If you really don't want the null-terminator, that's possible too, though probably ill-advised. This definition:

char bill[4] = "Bill";

will yield a 4-byte array bill containing just the characters 'B', 'i', 'l', and 'l', with no null-terminator.

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it has a 0 as a terminator character, so its B i l l 0

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