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Look at the following piece of code in C++:

char a1[] = {'a','b','c'};
char a2[] = "abc";
cout << sizeof(a1) << endl << sizeof(a2) << endl;

Though sizeof(char) is 1 byte, why does the output show sizeof(a2) as 4 and not 3 (as in case of a1)?

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+1 Judging from the answers (and my experience with junior programmers), this is a question that causes a lot of confusion and results in many subtle bugs that can be difficult to find. –  Adam Liss May 24 '12 at 10:56

3 Answers 3

C-strings contain a null terminator, thus adding a character.

Essentially this:

char a2[] = {'a','b','c','\0'};
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1  
I like this answer for its clear statement of equivalence of initialization, but it makes more sense to me to talk about a2, not a1 - the init you cite here is what you get by stuffing the C-String into a2. –  Steve Townsend May 24 '12 at 10:57

That's because there's an extra null '\0' character added to the end of the C-string, whereas the first variable, a1 is an array of three seperate characters.

sizeof will tell you the byte size of a variable, but prefer strlen if you want the length of a C-string at runtime.

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For a2, this is a string so it also contains the '\n'

Correction, after Ethan & Adam comment, this is not '\n' of course but null terminator which is '\0'

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There is no \n (linefeed) at the end of a2. There is a null (\0) character at the end of a string. Shame on you, upvoter. –  Adam Liss May 24 '12 at 10:54
    
-1: Wrong, a2 doesn't contain '\n' in the end but rather '\0'. –  Eitan T May 24 '12 at 10:54
    
sorry you are right, i meant the null terminator '\0' thanks for the correction –  miks May 24 '12 at 10:55
    
@miks Adam commented before me. However, I removed the downvote following your correction :) –  Eitan T May 24 '12 at 10:58

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