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Currently I have a complex function that myself and our team are not wanting to refactor to utilize std::string and it takes a char* which is modified. How would I properly make a deep-copy of string::c_str() into a char*? I am not looking to modify the string's internally stored char*.

char *cstr = string.c_str();

fails because c_str() is const.

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marked as duplicate by jeffamaphone, Nick Betcher, 0x499602D2, Michael Kohne, Vitus Aug 29 '13 at 0:03

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

4  
Is this C++11? Copy the std::string and use &stringCopy[0]. –  chris Aug 28 '13 at 15:16
1  
strdup, new/strcpy, @chris' suggestion, ... You have the choice. –  syam Aug 28 '13 at 15:18
    
sprintf(cstr,"%s", somestring.c_str()) –  bartimar Aug 28 '13 at 15:20

3 Answers 3

Rather than modify the existing function, I'd just create an overload that acts as a wrapper. Assuming the existing function is ret_type f(char *), I'd write the overload something like:

ret_type f(std::string s) { 
    return f(&s[0]);
}

Note passing s by value instead of reference, minimizing the effort expended to get a copy of the string.

In theory, this isn't guaranteed to work (i.e., a string's buffer isn't guaranteed to be contiguous) until C++03. In reality, that guarantee was fairly easy for the committee to add primarily because nobody knew of an implementation of std::string that did anything else.

Likewise, it could theoretically be missing the NUL terminator. If you're concerned about that possibility you could use return f(const_cast<char *>(s.c_str())); instead, or add an s.push_back('\0'); before the return:

ret_type f(std::string s) { 
    s.push_back('\0');
    return f(&s[0]);
}
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I would do a s.push_back( '\0' ) in your wrapper function, just to be sure. And you surely meant const_cast in the last bit of code. –  James Kanze Aug 28 '13 at 15:58
    
@JamesKanze: Oops -- yes, of course. –  Jerry Coffin Aug 28 '13 at 15:59

You can do it like this:

const std::string::size_type size = string.size();
char *buffer = new char[size + 1];   //we need extra char for NUL
memcpy(buffer, string.c_str(), size + 1);
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6  
Please, please use a correct type for the string size, eg. std::string::size_type or std::size_t. –  syam Aug 28 '13 at 15:22
    
@syam ahh you are absolutely right :) –  Michał Walenciak Aug 28 '13 at 15:24
    
Don't forget to delete it. Or better still, get std::vector<char> to do that for you, and access the array as v.data() or &v[0]. Or even another string, if you don't mind borderline-undefined behaviour. –  Mike Seymour Aug 28 '13 at 15:45

The obvious solution is:

std::vector<char> tmp( string.begin(), string.end() );
tmp.push_back( '\0' );
function( &tmp[0] );

(I rather like Jerry Coffin's solution, however.)

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