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I have following function:

char * strAlloc(string str) {
    char * chArr = new char[str.size()];

    for (size_t i = 0; i < str.size(); i++) {
        chArr[i] = str[i];
    }

    return chArr;
}

if i do a break after char * chArr = new char[str.size()]; the debugger says following:

chArr   0x00c38cf8 "ÍÍÍÍÍÍÍÍÍÍÍÍÍÍÍýýýý««««««««þîþîþ"

and if i do a break after the for iteration i get this:

chArr   0x00c38cf8 "***************ýýýý««««««««þîþîþ"

so what i'm doing wrong?

edit:

size_t const gSize = 15; typedef char * 
TMaze [gSize]; 
Maze[0] = strAlloc ("***************");

in type TMaze i need the pointer of the char arrays tried also str.size()+1 , same behaviour

edit2:

char * strAlloc(string const & str) {
    char * chArr = new char[str.size()+1];

    strcpy(chArr, str.c_str());

    return chArr;
}

did it!

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closed as too localized by djechlin, Emil Vikström, Rais Alam, Yuushi, Anoop Vaidya Jan 9 '13 at 7:15

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1  
The new operator doesn't initialise an array's contents, so it's filled with junk when you check its value. For the other question, see Fred's answer. –  Mr Lister Jan 8 '13 at 20:42
    
Take str by const reference: const string& str, this saves one unnecessary copy. –  ipc Jan 8 '13 at 20:43
    
@ipc I think modern compilers can optimise that. –  Mr Lister Jan 8 '13 at 20:45
    
@MrLister: it can if you remember the () on the end. –  Mooing Duck Jan 8 '13 at 20:48
    
@MrLister: Only if the function is inline or if the compiler has LTO. I would not rely on that. –  ipc Jan 8 '13 at 20:49

1 Answer 1

up vote 8 down vote accepted

You're not null terminating. Why not just use strcpy(chArr, str.c_str());?

And you'll need to add one to your allocation, too: char* chArr = new char[str.size() + 1];

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2  
And new char[str.size()+1]. –  kmkaplan Jan 8 '13 at 20:41
    
@schreda: I think you missed the point. strcpy() will null-terminate the char array, your copy loop will not. Adding one to the allocation won't null-terminate, but it will allow space for the null character. You need to either use strcpy() as I showed, or modify your code to add a null terminator. –  Fred Larson Jan 8 '13 at 20:51
    
@schreda Please put that in the question. –  Mr Lister Jan 8 '13 at 20:52

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