Display pop up menu when icon button widget is clicked Flutter

Question

I have made an alert dialog where user can update their profile details. In that with image container there is icon button widget. What I want is that when user clicks icon button, pop up menu will display with add/remove image option. Here is my code for alert dialog:

showDialog<void>(
  builder: (BuildContext context) {
    return AlertDialog(
      title: Text('Update details'),
      shape: RoundedRectangleBorder(borderRadius: BorderRadius.all(Radius.circular(8.0))),
      content: StatefulBuilder(
        builder: (context, setState) { return Container(
          width: 400,
          child: Form(
            key: _formKey,
            child: Column(
              mainAxisAlignment: MainAxisAlignment.spaceAround,
              children: <Widget>[
                Stack(
                    alignment: Alignment.center,
                    children: [
                      Container(
                          width: 100.0,
                          height: 100.0,
                          decoration: new BoxDecoration(
                              shape: BoxShape.circle,
                              image: new DecorationImage(
                                  fit: BoxFit.cover,
                                  colorFilter: new ColorFilter.mode(Colors.black.withOpacity(0.2), BlendMode.darken),
                                  image: data != null ? MemoryImage(data) : AssetImage("web/icons/contactsDefaultImage.png")
                              )
                          )
                      ),
                      IconButton(icon: Icon(Icons.edit), onPressed: () async {
                         //display option here
                         _showPopupMenu();
                      })
                    ]),
                Container(
                  child: TextFormField(
                    decoration: InputDecoration(
                        labelText: 'name'
                    ),
                  ),
                ),
                TextFormField(
                  decoration: InputDecoration(
                      labelText: 'email'
                  ),
                ),
              ],
            ),
          ),
        );},
      ),
      actions: <Widget>[
        FlatButton(
          child: Text('Cancel'),
          onPressed: () {
            Navigator.of(context).pop();
          },
        ),
        FlatButton(child: Text('Save'),
          onPressed: () {
          // save
          },
        )
      ],
    );
  },
);

I tried to user showMenu for that. But as the position has to be hard-coded I don't was to use it. what I tried:

void _showPopupMenu() async {
await showMenu(
  context: context,
  position: RelativeRect.fromLTRB(100, 100, 100, 100),
  items: [
    PopupMenuItem(
      child: Text("add"),
    ),
    PopupMenuItem(
      child: Text("remove"),
    ),
  ],
  elevation: 8.0,
);

}

Now, what i want to know is how can i display it where the icon-button is tapped (without hard-coding the value). And is there another way to do it .i.e without using showMenu.

Answer 1

You can write a method like this and call it on your icon button's onPressed

showPopupMenu(){
    showMenu<String>(
      context: context,
      position: RelativeRect.fromLTRB(25.0, 25.0, 0.0, 0.0),  //position where you want to show the menu on screen
      items: [
        PopupMenuItem<String>(
            child: const Text('menu option 1'), value: '1'),
        PopupMenuItem<String>(
            child: const Text('menu option 2'), value: '2'),
        PopupMenuItem<String>(
            child: const Text('menu option 3'), value: '3'),
      ],
      elevation: 8.0,
    )
    .then<void>((String itemSelected) {

      if (itemSelected == null) return;

      if(itemSelected == "1"){
        //code here
      }else if(itemSelected == "2"){
        //code here
      }else{
        //code here
      }

    });
}

Edit: (to show menu at the position where user tapped)

We can have a method like so -

void showPopUpMenuAtTap(BuildContext context, TapDownDetails details) {
  showMenu(
    context: context,
    position: RelativeRect.fromLTRB(
      details.globalPosition.dx,
      details.globalPosition.dy,
      details.globalPosition.dx,
      details.globalPosition.dy,
    ),
    // other code as above
  );
}

and use it with GestureDetector like so -

GestureDetector(
  child: const Icon(Icons.menu),
  onTapDown: (details) => showPopUpMenuAtPosition(context, details),
);

Answer 2

Solution if you wish to re-use your button and not a Gesture detector:

Create a key and assign your button the key. Then:

TextButton(
          key: _accKey,
          text: "Account",
          onPressed: () {
            final RenderBox renderBox =
                _accKey.currentContext?.findRenderObject() as RenderBox;
            final Size size = renderBox.size;
            final Offset offset = renderBox.localToGlobal(Offset.zero);

            showMenu(
                context: context,
                position: RelativeRect.fromLTRB(
                    offset.dx,
                    offset.dy + size.height,
                    offset.dx + size.width,
                    offset.dy + size.height),
                items: [
                  PopupMenuItem<String>(
                      child: const Text('menu option 1'), value: '1'),
                  PopupMenuItem<String>(
                      child: const Text('menu option 2'), value: '2'),
                  PopupMenuItem<String>(
                      child: const Text('menu option 3'), value: '3'),
                ]);
          }),

Answer 3

There are a lot of options you can choose:

You can use:

1. Banner
2. Card
3. Dialog
4. PopupMenuButton
5. Or even BottomSheet

I hope it will help

Answer 4

what you are looking to is showdialog and alertdialog.

Void<String> testdialog(BuildContext context) {
return showDialog(
    barrierDismissible: false,
    context: context,
    builder: (context) {
      return StatefulBuilder(builder: (context, setState) {
        return AlertDialog(
            title: ....