36

How do I open a popup menu from a second widget?

final button = new PopupMenuButton(
    itemBuilder: (_) => <PopupMenuItem<String>>[
          new PopupMenuItem<String>(
              child: const Text('Doge'), value: 'Doge'),
          new PopupMenuItem<String>(
              child: const Text('Lion'), value: 'Lion'),
        ],
    onSelected: _doSomething);

final tile = new ListTile(title: new Text('Doge or lion?'), trailing: button);

I want to open the button's menu by tapping on tile.

5 Answers 5

43

This works, but is inelegant (and has the same display problem as Rainer's solution above:

class _MyHomePageState extends State<MyHomePage> {
  final GlobalKey _menuKey = GlobalKey();

  @override
  Widget build(BuildContext context) {
    final button = PopupMenuButton(
        key: _menuKey,
        itemBuilder: (_) => const<PopupMenuItem<String>>[
              PopupMenuItem<String>(
                  child: Text('Doge'), value: 'Doge'),
              PopupMenuItem<String>(
                  child: Text('Lion'), value: 'Lion'),
            ],
        onSelected: (_) {});

    final tile =
        ListTile(title: Text('Doge or lion?'), trailing: button, onTap: () {
          // This is a hack because _PopupMenuButtonState is private.
          dynamic state = _menuKey.currentState;
          state.showButtonMenu();
        });
    return Scaffold(
      body: Center(
        child: tile,
      ),
    );
  }
}

I suspect what you're actually asking for is something like what is tracked by https://github.com/flutter/flutter/issues/254 or https://github.com/flutter/flutter/issues/8277 -- the ability to associated a label with a control and have the label be clickable -- and is a missing feature from the Flutter framework.

2
  • Thank you Eric! Yeah, the widgets described in those github issues are something that I was looking for.
    – DogeLion
    Apr 13, 2017 at 7:42
  • Thanks I used this solution
    – Ajay Kumar
    Apr 2, 2020 at 10:29
37

I think it would be better do it in this way, rather than showing a PopupMenuButton

void _showPopupMenu() async {
  await showMenu(
    context: context,
    position: RelativeRect.fromLTRB(100, 100, 100, 100),
    items: [
      PopupMenuItem<String>(
          child: const Text('Doge'), value: 'Doge'),
      PopupMenuItem<String>(
          child: const Text('Lion'), value: 'Lion'),
    ],
    elevation: 8.0,
  );
}

There will be times when you would want to display _showPopupMenu at the location where you pressed on the button Use GestureDetector for that

final tile = new ListTile(
  title: new Text('Doge or lion?'),
  trailing: GestureDetector(
    onTapDown: (TapDownDetails details) {
      _showPopupMenu(details.globalPosition);
    },
    child: Container(child: Text("Press Me")),
  ),
);

and then _showPopupMenu will be like

_showPopupMenu(Offset offset) async {
    double left = offset.dx;
    double top = offset.dy;
    await showMenu(
    context: context,
    position: RelativeRect.fromLTRB(left, top, 0, 0),
    items: [
      ...,
    elevation: 8.0,
  );
}
4
  • 2
    How can I use the onSelected property from the PopUpMenuButton into your method? Lets say for example, if value Doge is selected, I want to navigate to Doge.dart page
    – Texv
    Sep 27, 2020 at 0:50
  • 7
    Perfect answer, I just had to replace 0 by other values: RelativeRect.fromLTRB(left, top, left+1, top+1), Oct 7, 2020 at 15:46
  • i think this menu is just to show not to prforme any action Jun 25, 2021 at 7:06
  • 1
    @Texv There is a 'onTap' property for click callback in PopupMenuItem class. You can use this. Jan 15 at 23:31
7

I found a solution to your question. You can provide a child to PopupMenuButton which can be any Widget including a ListTile (see code below). Only problem is that the PopupMenu opens on the left side of the ListTile.

final popupMenu = new PopupMenuButton(
  child: new ListTile(
    title: new Text('Doge or lion?'),
    trailing: const Icon(Icons.more_vert),
  ),
  itemBuilder: (_) => <PopupMenuItem<String>>[
            new PopupMenuItem<String>(
                child: new Text('Doge'), value: 'Doge'),
            new PopupMenuItem<String>(
                child: new Text('Lion'), value: 'Lion'),
          ],
  onSelected: _doSomething,
)
2
  • use the offset property to position it differently
    – Srini
    Feb 28, 2019 at 6:39
  • How to use multi-level PopupMenuItems?
    – Kamlesh
    Mar 1, 2021 at 6:06
5

Screenshot:

enter image description here


Full code:

class MyPage extends StatelessWidget {
  final GlobalKey<PopupMenuButtonState<int>> _key = GlobalKey();
  @override
  Widget build(BuildContext context) {
    return Scaffold(
      appBar: AppBar(
        actions: [
          PopupMenuButton<int>(
            key: _key,
            itemBuilder: (context) {
              return <PopupMenuEntry<int>>[
                PopupMenuItem(child: Text('0'), value: 0),
                PopupMenuItem(child: Text('1'), value: 1),
              ];
            },
          ),
        ],
      ),
      body: RaisedButton(
        onPressed: () => _key.currentState.showButtonMenu(),
        child: Text('Open/Close menu'),
      ),
    );
  }
}
0

I don't think there is a way to achieve this behaviour. Although you can attach an onTap attribute to the tile, you can't access the MenuButton from the 'outside'

An approach you could take is to use ExpansionPanels because they look like ListTiles and are intended to allow easy modification and editing.

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