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I am brushing up on my C++, and stumbled across a curious behavior in regards to strings, character arrays, and the null character ('\0'). The following code:

#include <iostream>
using namespace std;

int main(){
        cout << "hello\0there"[6] << endl;

        char word [] = "hello\0there";
        cout << word[6] << endl;

        string word2 = "hello\0there";
        cout << word2[6] << endl;


        return 0;
}

produces the output:

> t
> t
> 

can anyone explain what is going on behind the scenes? why do the string literal and the declared char array store the 't' at index 6 (after the internal '\0'), but the declared string does not?

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What happens when you cout << word2? That might give you insight into what is happening. –  philipvr Jul 20 '12 at 15:30
    
@philipvr printing all 3 of the representations produces simply the string "hello". –  ewok Jul 20 '12 at 15:33
    
If he were to cout << word2 it would print out hello, which does not really shed light onto his problem. –  sean Jul 20 '12 at 15:33
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3 Answers

up vote 7 down vote accepted

From what I remember, the first two are in essence just an array and the way a string is printed is to continue to print until a \0 is encounterd. Thus in the first two examples you start at the point offset of the 6th character in the string, but in your case you are printing out the 6th character which is t.

What happens with the string class is that it makes a copy of the string into it's own internal buffer and does so by copying the string from the start of the array up to the first \0 it finds. Thus the t is not stored because it comes after the first \0.

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Also, in the case of string, you are indexing out of the boundaries of the string's memory. You are lucky your code doesn't crash. –  Shahbaz Jul 20 '12 at 15:32
8  
As a side note, if he really does want the whole string copied he could use std::string word3("hello\0there", 11); –  GWW Jul 20 '12 at 15:32
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Because the std::string constructor that takes a const char* treats its argument as a C-style string. It simply copies from it until it hits a null-terminator, then stops copying.

So your last example is actually invoking undefined behaviour; word2[6] goes past the end of the string.

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You are constructing a string from a char* (or something that decayed to that). This means that the convention for C-strings apply. That is they are '\0' terminated. That's why word2 only contains "hello".

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