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.

When I subclass a widget and define a keyDown method, and then in InterfaceBuilder assign the class of a widget to be the class I defined with the keyDown method, it seems to work fine.

However, if I do it complete programmatically as illustrated in the simple script below, the keyDown method never gets called. Why is this?

Is there something being set up by XCode that is causing the app to listen for events that gets done behind the scenes? What is it, and how do I do it here? Please point me in the right direction.

I'm gonna go read through the apple docs again and try to figure out if there is an event handler registration going on that XCode is setting for me. However, if you know what it is, please let me know.

Thanks!

framework 'Cocoa'

class MyView < NSView
  def acceptsFirstResponder
    true
  end

  def keyDown(event)
    puts "key down MyView"
  end
end

class MyWindow < NSWindow
  def acceptsFirstResponder
    true
  end

  def keyDown(event)
    puts "key down in MyWin"
  end
end

class MyApp < NSApplication
  def acceptsFirstResponder
    true
  end

  def keyDown(event)
    puts "key down in MyApp"
  end
end

application = MyApp.sharedApplication

# create the window
frame  = [0.0, 0.0, 300, 200]
mask = NSTitledWindowMask | NSClosableWindowMask
window = MyWindow.alloc.initWithContentRect(frame,
          styleMask:mask,
          backing:NSBackingStoreBuffered,
          defer:false)

# assign a content view instance
content_view = MyView.alloc.initWithFrame(frame)
window.contentView = content_view

window.makeFirstResponder(window)

# show the window
window.display
window.makeKeyAndOrderFront(nil)

application.run
share|improve this question

3 Answers 3

up vote 1 down vote accepted

You can do it without an application bundle and plist, but you need to start the app like so:

app = MyApp.sharedApplication
app.activationPolicy = NSApplicationActivationPolicyRegular
app.activateIgnoringOtherApps(true)
app.run
share|improve this answer
    
This works. Thank you! –  aryeh Jan 6 '12 at 10:46

Your script needs to be bundled as an application, with an Info.plist configuration.

Otherwise, your window will be visible but its containing "application" will never be activated and therefore will never receive keyboard events. You should notice that when you try to activate your window the previous application remains active.

Use the MacRuby template in XCode to create a MacRuby application bundle. XCode 4 requires some additional configuration: Follow these instructions.

Once that's done, you can delete the MainMenu.xib and AppDelegate.rb files, paste your code into rb_main.rb, and it will work as expected.

share|improve this answer
    
Correct, I'm aware that within Xcode it would work fine, unfortunately, it makes little sense to me, when I only want to work on one aspect of an app like say one window, or a function, or modal dialog, and I can't do it properly because it doesn't operate as expected. The core issue is that when being run, the system doesn't allow the window to become a NSWindow.mainWindow or NSWindow.keyWindow, essentially it doesn't become a first class citizen. –  aryeh Dec 31 '11 at 22:33
1  
Cocoa applications require an application bundle and info.plist. There's no way around it. You can still create windows programmatically if you want, but it must be done from within a valid application. –  Darren Dec 31 '11 at 23:39
1  
@aryeh: The requirement is not that you use Xcode; the requirement is that it be a bundled application. That's just a specified folder structure, so you can do that within a Makefile if you're inclined to write the scripts for it. –  Peter Hosey Jan 1 '12 at 5:40

An application that is not launched from a bundle (so there is no plist) can set itself to accept key events using

[NSApp setActivationPolicy:NSApplicationActivationPolicyRegular];
[NSApp activateIgnoringOtherApps:YES];
[NSApp run];
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.