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I have an app which must run all the time (if the user agree whit this).

When the user quit the app, I transform the foreground app into a LSUIElement (the app only has a menu bar icon, the dock icon and the menu disappear).

I have an options in the menu item which works ok and transform the LSUIElement into a foreground app (I use the functions [NSApp setActivationPolicy:NSApplicationActivationPolicyRegular] and [NSApp activateIgnoringOtherApps:YES]).

My problem appear when the user double click on the app. I use again the [NSApp setActivationPolicy:NSApplicationActivationPolicyRegular] in the delegate method applicationWillUnhide:(NSNotification *)notification, and all works well except the menu which doesn't appear. If I go to another app, and then I came back the menu appear. I try different methods but I wasn't able to find a good one.

I want to know is a delegate method which is called when the user double clicks on the app, or what is the function from NSApplication which is called in that moment, because I think using the setActivationPolicy: in the applicationWillUnhide function is to late.

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Have you tried calling it from applicationShouldHandleReopen: ? –  Matthieu Riegler Oct 15 '12 at 16:17
    
Yes I tried that, but without success. –  usain Oct 16 '12 at 9:43
    
And in applicationDidUnhide ? –  Matthieu Riegler Oct 16 '12 at 13:33

1 Answer 1

To transform a normal application to a LSUIElement I use

ProcessSerialNumber psn = { 0, kCurrentProcess };
TransformProcessType(&psn, kProcessTransformToUIElementApplication);

And to change it back to foreground :

ProcessSerialNumber psn = { 0, kCurrentProcess };
TransformProcessType(&psn, kProcessTransformToForegroundApplication);
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1  
From what I know TransformProcessType and NSApp setActivationPolicy: has the same effect. –  usain Oct 15 '12 at 16:11

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