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I'm trying to understand un-managed code. I come from a background of C# and I'm playing around a little with C++.

Why is that this code:

#include <iostream>

using namespace std;

int main()
{
    char s[] = "sizeme";

    cout << sizeof(s);

    int i = 0;
    while(i<sizeof(s))
    {
        cout<<"\nindex "<<i<<":"<<s[i];
        i++;
    }
    return 0;
}

prints out this:

7
index 0:s
index 1:i
index 2:z
index 3:e
index 4:m
index 5:e
index 6:

????

Shouldn't sizeof() return 6?

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5  
+1 for an exceptionally well written and formatted question, even if it's simple and you might've been able to find the answer searching. If everyone who posted newbie questions did it this well it wouldn't be frustrating to see duplicates all the time. –  Chris Lutz Oct 9 '11 at 0:07

4 Answers 4

up vote 15 down vote accepted

C strings are "nul-terminated" which means there is an additional byte with value 0x00 at the end. When you call sizeof(s), you are getting the size of the entire buffer including the nul terminator. When you call strlen(s), you are getting the length of the string contained in the buffer, not including the nul.

Note that if you modify the contents of s and put a nul terminator somewhere other than at the end, then sizeof(s) would still be 7 (because that's a static property of how s is declared) but strlen(s) could be somewhat less (because that's calculated at runtime).

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No, all trings in C are terminated by the null character (ascii 0). So s is actually 7 bytes

s i z e m e \0
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This is due to the fact, that C-strings contain the value 0 (or '\0') as last character to mark the end of the string.

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s is seven bytes, 6 for the string and one for the null termination.

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