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I'm tokenizing a wide string using boost but it's not working. Here is my code:

using namespace std;
vector<wchar_t> vDep;
vector<wchar_t> vArr;
TStringList *slDep;
TStringList *slArr;
wchar_t *chDep;
wchar_t *chArr;
int sz=0;
for (int i = 0; i < mDep->Lines->Count; i++) {
    chDep=WideString(mDep->Lines->Strings[i]).c_bstr();
    ShowMessage(chDep);
    boost::split(vDep,chDep,boost::is_any_of(std::wstring((wchar_t*)" ")));
    sz=vDep.size();
    for (int j = 0; j < vDep.size(); j++) {
        ShowMessage(vDep[j]);
    }
}

I'd like to see a working example on tokenizing wide string.

Is boost an optimal choice to tokenize wide string, or is there any other?

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2  
"It's not working" is not a good problem description. –  ChrisWue Dec 28 '11 at 3:53
    
it shows exception Assertion failed: !is_singular() ../boost/range/iteratorator_range.hpp –  Suhrob Samiev Dec 28 '11 at 3:56
2  
Also, instead of casting " " to wchar_t*, use a wide string literal, L" " . –  Lalaland Dec 28 '11 at 3:57
    
it's because i use std::wstring() instead of std::string() in is_any_of() –  Suhrob Samiev Dec 28 '11 at 3:57
1  
Yes, for a wide string, use a wide literal. –  Lalaland Dec 28 '11 at 3:58

1 Answer 1

Change the target to std::vector<std::wstring>, and change the source to std::wstring, and the delimiter could be a plain wide-string literal;

std::vector<std::wstring> target;
std::wstring source = ...;
boost::split(target, source, boost::is_any_of(L" ")));
share|improve this answer
    
the following code using namespace std; vector<std::wstring> vDep; std::wstring chDep=UnicodeString("asdf asdf asdf ").w_str(); boost::split(vDep,chDep,boost::is_any_of(L" ")); won't compile ! –  Suhrob Samiev Dec 29 '11 at 3:22
    
this is the error Assertion failed: !is_singular() ../boost/range/iteratorator_range.hpp –  Suhrob Samiev Dec 29 '11 at 3:22

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