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As the title indicates I want to know the best way to convert an int to a const wchar_t*. in fact I want to use the _tcscpy function

_tcscpy(m_reportFileName, myIntValue);
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Normal typecast? But you remember that the "last" character has to be zero, or you enter the territory of undefined behavior. This means your int can only store one character (int is 32 bits on Windows, and wchar_t is 16 bits). –  Joachim Pileborg Feb 27 '13 at 10:19
    
I think (const wchar_t*)variable_name; should work. –  haitaka Feb 27 '13 at 10:19
    
What exactly do you mean by "convert"? Care to give an example? –  Alexey Frunze Feb 27 '13 at 10:19
2  
Use a std::wstring and use std::wostringstream to capture the int. –  hmjd Feb 27 '13 at 10:21
4  
@hmjd Or use std::to_wstring –  Joachim Pileborg Feb 27 '13 at 10:22

3 Answers 3

up vote 2 down vote accepted

Since you are using a C approach (I'm assuming that m_reportFileName is a raw C wchar_t array), you may want to consider just swprintf_s() directly:

#include <stdio.h>  // for swprintf_s, wprintf

int main()
{
    int myIntValue = 20;
    wchar_t m_reportFileName[256];

    swprintf_s(m_reportFileName, L"%d", myIntValue);

    wprintf(L"%s\n", m_reportFileName);
}

In a more modern C++ approach, you may consider using std::wstring instead of the raw wchar_t array and std::to_wstring for the conversion.

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That's not a "conversion". It's a two-step process:

  1. Format the number into a string, using wide characters.
  2. Use the address of the string in the call.

The first thing can be accomplished using e.g. StringCbPrintf(), assuming you're building with wide characters enabled.

Of course, you can opt to format the string straight into m_reportFileName, removing the need to do the copy altogether.

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In C++11:

wstring value = to_wstring(100);

Pre-C++11:

wostringtream wss;
wss << 100;
wstring value = wss.str();
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