Convert QVariantList to QList<Type> list
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What is your use case ?
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QVariant has the == operator
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No, use the QSet features e.g.
QSet<QVariant> commonSet = mySet1 & mySet2;
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mmmm, You're right.
So I suggest to create a
template
methodThis code works for me
template <typename T> QSet<T> mergeList(const QVariantList& l1, const QVariantList& l2) { QSet<T> s1, s2; for (const QVariant& v: l1) { s1.insert(v.value<T>()); } for (const QVariant& v: l2) { s2.insert(v.value<T>()); } return s1 & s2; }
Used as
QVariantList l1, l2; l1 << 1 << 2 << 3; l2 << 1 << 3 << 5; QSet<int> s1 = mergeList<int> (l1, l2); qDebug() << s1; l1.clear(); l2.clear(); l1 << "Foo" << "Bar"; l2 << "Bar" << "Fred"; QSet<QString> s2 = mergeList<QString> (l1, l2); qDebug() << s2;
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