我创建了一个只有一个窗口的游戏应用程序.应用程序是在没有.xib文件帮助的情况下创建的,如下所述:如何创建GUI并以编程方式响应Cocoa事件?
现在,我可以在应用程序的主循环中捕获标准的"键上/下"事件:
NSEvent* event = [NSApp nextEventMatchingMask:NSAnyEventMask untilDate:[NSDate distantPast] inMode:NSDefaultRunLoopMode dequeue:YES];
NSEventType eventType = [event type];
if (eventType == NSKeyDown)
{
my_uint32 keycode = [event keyCode];
input::doSomeWork(keycode);
}
此外,当使用以下代码在窗口上按下红叉时,我可以正确退出应用程序:
- (NSApplicationTerminateReply)applicationShouldTerminate:(NSApplication *)sender
{
g_myEngine.stop();
return NSTerminateNow;
}
但我该怎么做:
a)选择菜单项"退出MyApplicationName"时捕获?
b)处理Cmd-Q事件?
更新:我已添加此代码:
id menubar = [[NSMenu new] autorelease];
id appMenuItem = [[NSMenuItem new] autorelease];
[menubar addItem:appMenuItem];
[NSApp setMainMenu:menubar];
id appMenu = [[NSMenu new] autorelease];
id appName = [[NSProcessInfo processInfo] processName];
id quitTitle = [@"Quit " stringByAppendingString:appName];
id quitMenuItem = [[[NSMenuItem …