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We are setting a char [] to some hex values i.e.

char [] test1 = {0x30,0x31,0x32,0x33,0x34,0x35};

Then we copy it into a string using

string teststring(test1, sizeof(test1));

Is the array suppose to be null terminated? or is the way we do the assignment, C++ is smart enough to know that its null terminated and have it appended anyhow?

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Thanks for the answers guys, although I was sure we were using it correctly, there was some discussion, apparently someone else was trying to use it as a Char* thus the problems he was having. In the instance where I was using it, I was just using it to hold binary data, which sometimes consists of 0x00 anyhow throughout the array. –  Izarian Oct 18 '10 at 16:12

3 Answers 3

Since you are using the sizeof operator and supplying the length of the array, you should not need to add the NULL.

You can find the API for the constructors here. It mentions this explicitly.

As mentioned in other solutions however, if you decided to create an array of wchar_ts then you would need to modify your supplied length argument to the constructor as follows:

sizeof(test1) / sizeof(wchar_t)

This is because the sizeof operator returns the size in bytes of the target, not the number of elements. For your current question using char does not have this requirement since the size of a char is defined by the C++ to be 1, thus division is not needed.

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just a little thing I noticed, sizeof(test1) is assuming sizeof(char) = 1, and that could not be the case... –  Diego Sevilla Sep 16 '10 at 18:53
2  
@Diego Sevilla in C++, sizeof(char), sizeof(signed char) and sizeof(unsigned char) are 1; (per 5.3.3/1) –  Cubbi Sep 16 '10 at 18:57
    
So you'd probably want to change sizeof(test1) to sizeof(test1)/sizeof(char) –  JohnMcG Sep 16 '10 at 18:59
1  
@Diego, @JohnMcG: what cannot be assumed is that the size of a char is 8 bits, but the standard (both C and C++) defined sizeof(char) to be 1 always. No need to add the /sizeof(char) factor there. –  David Rodríguez - dribeas Sep 16 '10 at 19:00
3  
How about sizeof(test1)/sizeof(test1[0]) That way you do not need to change the type in more than one place. –  Crappy Experience Bye Sep 16 '10 at 19:16

It is not null-terminated. Nulls have no special meaning for std::string. You can do something like this freely:

#include <string>
#include <iomanip>
#include <iostream>
int main()
{
    char test1 [] = {0x30, 0x31, 0, 0x33, 0, 0x35};
    std::string teststring(test1, sizeof(test1));
    for(size_t i = 0; i<teststring.size(); ++i)
        std::cout << std::hex << std::showbase << (int)teststring[i] << ' ';
    std::cout << '\n';
}

Although, of course, if I used std::string teststring(test1); as the constructor in this example, the resulting string would have been 2 characters long.

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Using this string constructor you don't need to add an extra ending 0. However, I'd add the ending 0 just in case, or so that this variable could be used in other contexts where pointers to chars are used. In this case, the sizeof should be modified:

string teststring(test1, sizeof(test1) - 1);
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chars always have the size 1. Any other type size is calculated relative to the size of char. –  Cătălin Pitiș Sep 16 '10 at 19:00
    
Ah, yes, I noticed that. Fixed in the response. Thanks! –  Diego Sevilla Sep 16 '10 at 19:03

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