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I'm trying to write a wrapper for fwprintf. I'm using a wstringstream to capture a formatted va_list and then use the actual fwprintf to print to file. For some reason, instead of a nice unicode string, I am getting garbled numbers.

Can anyone help?

void WriteToLog(wchar_t *message, ...)
FILE * pFile;

if (_wfopen_s (&pFile, SZ_LOG_FILE_PATH,L"a") != 0)
    display_error_message(-1, L"Could not open log file.", IsSilent, MB_ICONSTOP);

std::wstringstream buffer;
va_list args;
va_start(args, message);
buffer << vwprintf(message, args);

fwprintf(pFile, buffer.str().c_str());

share|improve this question
Wow, you've got something perfectly good (wstringstream) and then you completely blow it with hideous printf, variable arguments, non-const pointers? –  Puppy Aug 8 '11 at 14:27
Why not use vfwprintf directly, and avoid the std::wstringstream and vwprintf detour ? Or better yet, just use C++ streams ? –  Sander De Dycker Aug 8 '11 at 14:52
As if you haven't got enough troubles, there's a nice undefined behaviour and a security bug in there. What if your buffer contains a '%' character? Never use a string that you do not control as a format string for any prinf-style function. –  n.m. Aug 8 '11 at 15:25
Thanks you all for your comments. I should I have mentioned that I am NOT a C++ programmer, but had to implement a few mild extensions to en existing project. DeadMG - thanks for the advice, I'll use const pointers. Sander - vfwprintf was just what I needed, thank you!!! n.m. - this is an internal function and the message parameter WILL probably contain a '%' character, because this is a wrapper for fprintf. Thanks for the advice though, I'll keep that in mind in the future. –  user884248 Aug 8 '11 at 15:36

2 Answers 2

You're outputting integers to the stream, and you're baffled that after that the stream contains (decimal specifications of) integers.

Consider, your code

buffer << vwprintf(message, args);

is equivalent to

int const x = vwprintf(message, args);
buffer << x;

Do you perhaps now see how you get your actual results?

Cheers & hth.,

share|improve this answer
I just wrote this in the comment above - I am not a C++ programmer, I just had to do some re-writes on old code (I come from the much simpler world of C#). I must say I don't understand the problem - << redirects stdout, does it not? and vwprintf prints to std out... does it not? –  user884248 Aug 8 '11 at 15:42
As Alf points out, vwprintf returns the number of characters written. Which you are saving in a buffer and then printing which I doubt is what you want... –  Benj Aug 8 '11 at 16:07

What you're doing is generally terrible (much better would be for instance to expose a logging output stream, or any number of Boost logging facilities), but if you really must go through with it, let's see how to fix this. First off, vwprintf prints to the standard output, not to a string, so first of all do read up the documentation of your basic building block functions. The closest thing to something useful would be vswprintf, which prints to a wide string. We still need to impose an arbitrary size limit:

wchar_t buf printbuf[1024];
vswprintf(printbuf, 1024, message, args);

buffer << std::wstring(buffer);

You'd still have to add some sort of error handling in the event that your buffer is too short.

share|improve this answer
thanks for the advice and the honest advice :-) I ended up using vfwprintf and it works like a charm. thank you! –  user884248 Aug 8 '11 at 15:42
Cool, no worries. If you already have a file pointer, then vfwprintf indeed sounds like the most direct solution. –  Kerrek SB Aug 8 '11 at 15:44

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