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.

I try to overload operator << in Qt.

class MyCryptographicHash : public QCryptographicHash
{
public:
    MyCryptographicHash(Algorithm method);

    void addData(const QString &data );

    friend MyCryptographicHash& operator<< (MyCryptographicHash &obj, const QString &value);

private:
    QByteArray _data;
};

MyCryptographicHash& operator<<(MyCryptographicHash &obj, const QString &value) {
    obj.addData(value);
    return obj;
}


    MainWindow::MainWindow(QWidget *parent)
    : QMainWindow(parent)
{
    MyCryptographicHash *hash1 = new MyCryptographicHash(QCryptographicHash::Sha1);
    MyCryptographicHash *hash2 = new MyCryptographicHash(QCryptographicHash::Sha1);
    hash1->addData("abc1234");
    QString a;
    a = "qweer321";
    hash2<<a;
    qDebug() << "HASH1: " << hash1->result();
    qDebug() << "HASH2: " << hash2->result();
}

But I get error:

no match for 'operator<<' in 'hash2 << a'

I tried to declare the operator as a member of the class, but also get an error.

error: 'MyCryptographicHash& MyCryptographicHash::operator<<(MyCryptographicHash&, const QString&)' must take exactly one argument

What am I doing wrong?

share|improve this question
    
Thanks alot!I'm a newbie :) –  MrElmar Apr 20 '13 at 7:33

1 Answer 1

up vote 5 down vote accepted

Your code should be

*hash2 << a;

hash2 is a pointer, not an object.

However in the code you posted there is no obvious reason why hash2 is a pointer. So you could just write

{
    MyCryptographicHash hash1(QCryptographicHash::Sha1);
    MyCryptographicHash hash2(QCryptographicHash::Sha1);
    hash1.addData("abc1234");
    QString a;
    a = "qweer321";
    hash2 << a;
    qDebug() << "HASH1: " << hash1.result();
    qDebug() << "HASH2: " << hash2.result();
}

which would also have the advantage of not leaking memory.

But maybe there's more to this than the code you posted.

share|improve this answer

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.