Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

If for no other reason than for my own amusement, I wish to write a global insertion operator so I can use the fancy code:

aQMenu << aQAction1 << aQAction2 << aQAction2 << seperator << aQAction3;

Perhaps you hate the syntax, but I would at least like to try my hand at using it. The problem is, that this is the first time I have tried to write insertion operator code, and I am stumped. The code for inserting the enum "seperator" to the QMenu* is easy, and I have that working, but I thought this code would work for inserting a QAction* to a QMenu*:

// does not compile:  "must have an argument of class or enumerated type"
QMenu *operator<< (QMenu *menu, QAction *action)
        return menu;

The compiler complains saying this function needs an argument of a class or enumerated type, which confounds me because the second parameter is of class type.. I have tried to rephrase this function using the ampersand, but I have not hit upon the way of writing it down properly. I have looked a lot at web examples, and thought it is about time to just as the question here.

I know that some coders out there will complain about me deviating from standard Qt syntax, but I am having fun overloading the operator<< with other classes as well. It just seems that the insertion operator works nicely here. What can I say -- it makes me happy.

share|improve this question
"the second parameter is of class type" is wrong - it's a pointer, and a pointer is a primitive value, not of class type. – rohanpm Dec 24 '09 at 5:16

2 Answers 2

up vote 5 down vote accepted

The compiler complains because all the parameters are pointers. Using a reference for the menu parameter of the operator it would look like this:

QMenu& operator<< (QMenu &menu, QAction *action) {
    return menu;

Now this operator should work on menu objects. If you want to use it with a pointer to a menu you need to dereference that pointer when applying the new << operator:

QMenu *menu = new QMenu();
QAction *action1, *action2;
*menu << action1 << action2;
share|improve this answer
Can anyone recommend a comprehensive guide to operator overloading. I have read a few trivial ones, but nuances such as what I am encountering are not discussed well at all. – Vance Tower Dec 27 '09 at 16:21

Everything works fine now. I use the code

QMenu& operator<< (QMenu &menu, QAction *action) {
    return menu;

so I can juggle my QMenu with the nice little syntax of

*mnuFile << actNewFile << actOpenFile << actCloseFile << seperator << actExit;

(another code snippet lets the insertion operator take my "seperator" argument).

Also, I read on these forums that Andrei Alexandrescu devotes quite a few pages on smart logger singletons in "Modern C++ Design". I am still trying to grasp while my operator<< code

QMenu* operator<< (QMenu* obj, MyMenuInsertEnum val);

is valid (the first parameter is a pointer). But this is not:

QMenu *operator<< (QMenu *menu, QAction *action);

And the problem is just the pointer as the first argument. After I read the aforementioned book then I will append my findings here, providing I learn something new.

share|improve this answer

Your Answer


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.