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.

A QVariant is holding a QMap object that is to be converted into a custom type, MyClass or MyClass2.

Example:

class MyClass{
   int item1;
   int item2;
   QString string1;
   AnotherClass subclass;
};

class MyClass2{
   int item1;
   QString string1;
   AnotherClass subclass;
};

functions have been written to convert the QVariant to the associated classes

MyClass QVariantToMyClass1(QVariant);
MyClass2 QVariantToMyClass1(QVariant);

My question is, in a template function what is the proper way to pass in the function pointer? The code shown below returns an error 'const class QVariant has no member named convFunct'

template<class T>
QList<T> QVariantToQList(QVariant & qv,T (* convFunct)() )
{
    // Create the list that will hold the return values
    QList<T> qListOfMembers;
    if(qv.typeName() == "QVariantMap"){
        foreach(QVariant const& mapMember,qv.toMap())
        {
            qListOfMembers.append(mapMember.convFunct());
        }
    }
    else if (qv.typeName() == "QVariantList"){
        foreach(QVariant const& listMember,qv.toList())
        {
            qListOfMembers.append(listMember.convFunct());
        }
    }
    else
    {
        qDebug()<< "QVariantToQList currently is implemented only for QMap and QList types";
        throw ;
    }
    return qListOfMembers;
}

This is a follow-up question to a previous question The difference between that question and this one is the T is 'MyClass' or 'MyClass2' instead of a type that is normally held by a QVariant.

share|improve this question

1 Answer 1

up vote 2 down vote accepted

If I understand your question correctly, convFunct supposed to be a function that get a QVariant and return an instance of MyClass or MyClass2, is it correct? if your answer is yes, then this function should get a parameter of type QVariant and your function get no parameter, so the result is:

template<class T>
QList<T> QVariantToQList(QVariant & qv,T (*convFunct)(QVariant const&) )
{
    // Create the list that will hold the return values
    QList<T> qListOfMembers;
    if(qv.typeName() == "QVariantMap"){
        foreach(QVariant const& mapMember,qv.toMap())
        {
            qListOfMembers.append(convFunct(mapMember));
        }
    }
    else if (qv.typeName() == "QVariantList"){
        foreach(QVariant const& listMember,qv.toList())
        {
            qListOfMembers.append(convFunct(listMember));
        }
    }
    else
    {
        qDebug()<< "QVariantToQList currently is implemented only for QMap and QList types";
        throw ;
    }
    return qListOfMembers;
}
share|improve this answer
    
you interpreted the question correctly. I made the suggested changes, but the compiler continues to complain 'error: 'const class QVariant' has no member named 'convFunct' –  DarwinIcesurfer Oct 27 '12 at 1:37
1  
@DarwinIcesurfer Do you copy the code or just convert your function prototype, look where function used in my code and let me know the result –  BigBoss Oct 27 '12 at 1:40
    
I tried to modify my code in place rather than doing a cut-and-paste. When I cut and pasted your code it worked fine. Thanks, answer accepted and +1 to comment. –  DarwinIcesurfer Oct 27 '12 at 1:51

Your Answer

 
discard

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

Not the answer you're looking for? Browse other questions tagged or ask your own question.