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Is it possible to disconnect a lambda function? And if "yes", how?

According to https://qt-project.org/wiki/New_Signal_Slot_Syntax I need to use a QMetaObject::Connection which is returned from the QObject::connect method, but then how can I pass that object to the lambda function?

Pseudo-code example:

QMetaObject::Connection conn = QObject::connect(m_sock, &QLocalSocket::readyRead, [this](){
    QObject::disconnect(conn); //<---- Won't work because conn isn't captured

    //do some stuff with sock, like sock->readAll();
}
  • Have you tried that? (But also add conn to the capture list for the lambda) – Some programmer dude Feb 12 '13 at 8:51
  • @JoachimPileborg Yes, it segfaults for some reason. As soon as I remove the QMetaObject::Connection conn and leave only the code after the = the segfault dissapears. – alexandernst Feb 12 '13 at 8:52
  • 2
    The problem is discussed here: stackoverflow.com/questions/13847507/… – kfunk Feb 12 '13 at 9:33
  • @kfunk I did see that question, but I can't get any conclusion of it. Can you explain a little bit further how and why could it be done? – alexandernst Feb 12 '13 at 9:37
37

If you capture conn directly, you're capturing an uninitialised object by copy, which results in undefined behaviour. You need to capture a smart pointer:

std::unique_ptr<QMetaObject::Connection> pconn{new QMetaObject::Connection};
QMetaObject::Connection &conn = *pconn;
conn = QObject::connect(m_sock, &QLocalSocket::readyRead, [this, pconn, &conn](){
    QObject::disconnect(conn);
    // ...
}

Or using a shared pointer, with slightly greater overhead:

auto conn = std::make_shared<QMetaObject::Connection>();
*conn = QObject::connect(m_sock, &QLocalSocket::readyRead, [this, conn](){
    QObject::disconnect(*conn);
    // ...
}

From Qt 5.2 you could instead use a context object:

std::unique_ptr<QObject> context{new QObject};
QObject* pcontext = context.get();
QObject::connect(m_sock, &QLocalSocket::readyRead, pcontext,
    [this, context = std::move(context)]() mutable {
    context.clear();
        // ...
    });
  • 1
    Could you please explain the first example in more detail? Why do you create pointer, then reference to the pointer and pass both to the lambda? Edit: Isn't it possible to do something like: *pconn = QObject::connect(...); end leave the conn completely out of it? – stepanbujnak Jul 6 '13 at 15:59
  • In the first example, the lifetime of conn is determined by the code block, while the lambda function still uses it. Sheer luck if conn is still alive. In this scenario, you definitely need a shared_ptr<Connection>. – xtofl Feb 6 '15 at 8:18
  • @xtofl conn in the first example is a reference; its lifetime is the lifetime of the unique_ptr, which is captured into the lambda. (This should be a C++14 init-capture, really.) – ecatmur Feb 6 '15 at 21:33
  • You're right. A bit complicated, I oversaw it. – xtofl Feb 9 '15 at 15:15
  • 1
    Note that since Qt 5.2 there is also an overload that takes a context object. The connection will then be disconnected when the sender or the context object is destroyed. – Zitrax Aug 10 '17 at 14:33

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