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If i have something like this:

static const wchar_t* concatenate(const wchar_t* ws1, const wchar_t* ws2) {
    std::wstring s(ws1);
    s += std::wstring(ws2);
    return s.c_str();
}

It wouldn't work because the scope of 's' is within the static block, so the stack contents will be popped and the memory address to 's' is no longer valid, so my question is how can i do this?

Thanks

share|improve this question
    
why don't you return std::wstring itself from the function? –  Naveen Dec 6 '10 at 12:58
    
The problem isn't that s is not longer valid (the assumption about it being invalid because it is "popped" from the stack is wrong). It is that s cleans up its internal state when the destructor is invoked (and thus the results of c_str() are invalid). At least one of the answers shows how to make a copy of c_str() data (which is then the callers responsibility to deal with). –  user166390 Dec 6 '10 at 13:02
    
returning wstring doesn't help, as pst pointed out the internal state of the string is cleared. –  Asim Dec 6 '10 at 13:12
    
@Asim: If you return a std::wstring, then the internal state of s is no longer relevant once the function has returned; the value that was in s is copied into the return value, so it's no longer bound to a now-discarded stack frame. But you may be having problems if you call c_str() on the returned value, and then return from the calling method. –  Dan Breslau Dec 6 '10 at 13:22
2  
@Asim: returning a wstring surely helps, as it is the usual way of doing this. Moreover, using C-strings, converting them to std strings to finally convert them back to C-strings is really suboptimal and error prone. –  ereOn Dec 6 '10 at 13:22

5 Answers 5

Change the function to return std::wstring instead of wchar_t*, and return s.

static std::wstring concatenate(const wchar_t* ws1, const wchar_t* ws2) {
    std::wstring s(ws1);
    s += std::wstring(ws2);
    return s;
}

By the way, this would be equally true for non-static methods.

share|improve this answer
    
That doesn't work either, same problem. –  Asim Dec 6 '10 at 13:09
    
@Asim: I'm not sure it's the same problem. What kind of error are you seeing now? (Are you calling c_str() on the returned value? In that case, yes, it's the same problem. Can you avoid calling c_str(), and simply use std::wstring everywhere? That would prevent problems like this from showing up again.) –  Dan Breslau Dec 6 '10 at 13:17
4  
@Asim, nope, it's returning by value - means that whatever you assign the return to, will receive a copy of what is in s. If this were to return a reference, that's a different issue (i.e. back to where you were) –  Nim Dec 6 '10 at 13:17
    
Yes it is returning by value but the internal state is reset once the function returns. –  Asim Dec 6 '10 at 13:24
1  
@Asim, the internal state of s is irrelevant once the function returns. If you're still seeing a problem, it's probably because elsewhere in the program you're still using c_str(), and then returning from that stack frame. –  Dan Breslau Dec 6 '10 at 13:26

The fact that the function is static is irrelevant here. You could return s.c_str() if the s variable was static, however this would be very weird as s would only initialized upon the first call of the function.

My recommendation : just return a std::wstring by value.

std::wstring concatenate(const wchar_t* ws1, const wchar_t* ws2) {
    std::wstring s(ws1);
    s += std::wstring(ws2);
    return s;
}
share|improve this answer
    
Also, be aware of the fact that the pointer returned by c_str() points to an area of memory used internally by s, and is only guaranteed to remain unchanged until the next call to a non-const member function on s. Agree that returning by value is probably the best option, unless the interface can't change. –  ToddR Dec 6 '10 at 13:18
    
the initialization is not an issue really - given you can assign to it after! However it's not re-entrant which is it's main drawback... –  Nim Dec 6 '10 at 13:24
    
@Nim: absolutely true, I expressed my answer this way because the OP seemed to be confused about static –  icecrime Dec 6 '10 at 13:46

Replace your return statement with the following:

wchar_t *ret = new wchar_t[s.length()+1];
wcscpy(ret, s.c_str());
return ret;

The function as you wrote it doesn't work, because upon returning, the destructor for the local variable s is called, which frees the memory pointed to by s.c_str().

share|improve this answer
    
+1 Because it shows how to keep the same signature. –  user166390 Dec 6 '10 at 13:01
2  
-1, because who is responsible for deleting that pointer? We can assume the caller, but there's a huge chance for memory leaks here. Sorry, but this is terrible. –  Moo-Juice Dec 6 '10 at 13:06
2  
@pst: But not the same interface contract: the caller must know to delete the returned string. –  Dan Breslau Dec 6 '10 at 13:07
    
@Moo-Juice It is fine to preface this with a warning and best-practices. However, this answer meets the requirements of the question and provides more insight than a number of the other answers. In some cases "best" and "allowed" are not the same. –  user166390 Dec 6 '10 at 13:08
    
@Dan Breslau That confused me. What "contract" was altered? –  user166390 Dec 6 '10 at 13:10

The fact that the member function (we don't say "method" in C++) is static doesn't matter. You can return a local variable by value. What you cannot do is return a pointer or a reference to a local variable, or to a temporary value. s.c_str() creates a pointer either to temporary data or to part of the local wstring. So we cannot return that. Returning s (and adjusting the return type to match) is fine, because now we are returning by value, which (conceptually; it may be optimized) makes a copy of the local string on the stack in the return-value "slot".

share|improve this answer

If you want to keep the function signature, try something like:

static const wchar_t* concatenate(const wchar_t* ws1, const wchar_t* ws2) {

    std::wstring s(ws1);
    wchar_t *r;

    s += std::wstring(ws2);

    /*
    * allocate the return value in heap (with room for the null termination)
    */
    r = new wchar_t[s.length() + 1]; 

    /*** copy ***/
    s.copy(r,s.length()+1);

    return r;
}

by the way (as said by others) you may return the entire s object,

share|improve this answer
    
-1, again, you're newing a pointer and returning it giving rise to the possibility of memory leaks. –  Moo-Juice Dec 6 '10 at 13:26
    
I said "if you want to keep the function signature...". Of course that was not my favorite solution. By the way, in my opinion, dealing with pointers and memory allocation is fundamental for C++ developers: if a developer uses a 'pointed' object I think he knows that, sooner or later, that memory will have to be released. –  Clearco Dec 7 '10 at 13:06

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