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I need to create a wstring with the chars that have the following ascii values: 30, 29, 28, 27, 26, 25.

In VB6, I would do asc(30) + asc(29)+ etc...

What's the C++ equivalent?

Thanks!

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Is it a permutation and combination of 30, 29, 28, 27, 26, 25 ? –  DumbCoder Aug 11 '10 at 14:37
    
No, it's just a string containing those characters. –  cfisher Aug 11 '10 at 14:40

2 Answers 2

up vote 1 down vote accepted

An std::wstring is nothing more than an std::vector disguised as a string.

Therefore you should be able to use the push_back method, like this:

std::wstring s;

s.push_back(65);
s.push_back(0);

std::wcout << s << std::endl;

Don't forget the 0-terminator !

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I was about to forget it, thanks. O:-) –  cfisher Aug 11 '10 at 14:43
    
Um... A string is a bit different than a vector, but they both follow Standard Collection interface guidelines. –  James Curran Aug 11 '10 at 14:44
10  
You do not have to add a zero-terminator. Put in the contents of the string. When/if you want a zero-terminated C-style string, its c_str() member will give you that. –  Jerry Coffin Aug 11 '10 at 14:56
1  
Actually, according to the current standard, basic_string<char_t> is NOT required to have contiguous storage -- it could be implemented more like a rope instead of a vector and still be legal. –  Billy ONeal Aug 11 '10 at 14:58

Is this a trick question about character set conversion? :) Because the standard does not guarantee that an ASCII character is represented by its ASCII integer value in a wchar_t (even though for most compilers/systems, this will be true). If it matters, explicitly widen your char using an appropriate locale:

std::wstring s;
std::locale loc("C"); // pick a locale with ASCII encoding

s.push_back(std::use_facet<std::ctype<wchar_t> >(loc).widen(30));
s.push_back(std::use_facet<std::ctype<wchar_t> >(loc).widen(29));
s.push_back(std::use_facet<std::ctype<wchar_t> >(loc).widen(28));

Don't terminate with a trailing 0, it is added when you convert the wstring to a wchar_t * by invoking .c_str()

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