Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

what I want to achieve is to pass a lambda expression to a function that uses that passed expression as a formatter function for the boost::xpressive::regex_replace function. The code should work in VC++ using VS 2010.

If I had a function

void test1(){
    std::string str("foo");
    sregex re(icase("foo"));
    str = regex_replace(str,re,[](const smatch &match){ return "bar";});
}

I can easily pass a lambda expression as a format function. It can be passed as a function pointer as well:

std::string test2_format(const smatch &match){
    return "bar2";
}

void test2_replace(std::string(*fun)(const smatch &match)){
    std::string str("foo");
    sregex re(icase("foo"));
    str = regex_replace(str,re,fun);
}

void test2(){
    test2_replace(test2_format);
}

But how can I pass a lambda expression to a function? If I called something like

test2_replace([](const smatch &match)->std::string{return "bar3";});

I get the error

error C2664: 'test2_replace' : cannot convert parameter 1 from '`anonymous-namespace'::' to 'std::string (__cdecl *)(const boost::xpressive::smatch &)'

This error occurs on VS 2013 as well.

[Edit] According to this link lambda to function pointer conversion should be supported / fixed. [/Edit]

Do you have any idea what I might try?

share|improve this question
    
Visual C++ doesn't have the lambda-to-function-pointer conversion implemented yet. Just use a template: template<class F> vodi test2_replace(F f) –  Xeo Jun 19 '13 at 8:16
    
@Xeo I added a link in my question that says they should support it. However, can you give me an example of your proposal? –  muffel Jun 19 '13 at 8:55
    
@muffel I guess what Xeo meant was something like template<class F> void test2_replace(F fun) { std::string str("foo"); sregex re(icase("foo")); str = regex_replace(str,re,fun); } –  dyp Oct 13 '13 at 22:20

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Browse other questions tagged or ask your own question.