244

As you can see, my button is inside the Scaffold's body. But I get this exception:

Scaffold.of() called with a context that does not contain a Scaffold.

import 'package:flutter/material.dart';

void main() => runApp(MyApp());

class MyApp extends StatelessWidget {
  @override
  Widget build(BuildContext context) {
    return MaterialApp(
      title: 'Flutter Demo',
      theme: ThemeData(
        primarySwatch: Colors.blue,
      ),
      home: HomePage(),
    );
  }
}

class HomePage extends StatelessWidget {
  @override
  Widget build(BuildContext context) {
    return Scaffold(
      appBar: AppBar(
        title: Text('SnackBar Playground'),
      ),
      body: Center(
        child: RaisedButton(
          color: Colors.pink,
          textColor: Colors.white,
          onPressed: _displaySnackBar(context),
          child: Text('Display SnackBar'),
        ),
      ),
    );
  }
}

_displaySnackBar(BuildContext context) {
  final snackBar = SnackBar(content: Text('Are you talkin\' to me?'));
  Scaffold.of(context).showSnackBar(snackBar);
}

EDIT:

I found another solution to this problem. If we give the Scaffold a key which is the GlobalKey<ScaffoldState>, we can display the SnackBar as following without the need to wrap our body within the Builder widget. The widget which returns the Scaffold should be a Stateful widget though.

 _scaffoldKey.currentState.showSnackBar(snackbar); 

13 Answers 13

309

This exception happens because you are using the context of the widget that instantiated Scaffold. Not the context of a child of Scaffold.

You can solve this by just using a different context :

Scaffold(
    appBar: AppBar(
        title: Text('SnackBar Playground'),
    ),
    body: Builder(
        builder: (context) => 
            Center(
            child: RaisedButton(
            color: Colors.pink,
            textColor: Colors.white,
            onPressed: () => _displaySnackBar(context),
            child: Text('Display SnackBar'),
            ),
        ),
    ),
);

Note that while we're using Builder here, this is not the only way to obtain a different BuildContext.

It is also possible to extract the subtree into a different Widget (usually using extract widget refactor)

| improve this answer | |
  • I get this exception with this: setState() or markNeedsBuild() called during build. I/flutter (21754): This Scaffold widget cannot be marked as needing to build because the framework is already in the I/flutter (21754): process of building widgets. – Figen Güngör Jul 12 '18 at 11:59
  • 1
    The onPressed you passed to RaisedButton is not a function. Change it to () => _displaySnackBar(context) – Rémi Rousselet Jul 12 '18 at 12:00
  • 1
    Gotcha: onPressed: () {_displaySnackBar(context);}, Thanks=) – Figen Güngör Jul 12 '18 at 12:02
  • 1
    I thought with .of(context) it's supposed to travel up the widget hierarchy until it encounters one of the given type, in this case, Scaffold, which it should encounter before it reaches "Widget build(..". Does it not work this way? – CodeGrue Aug 4 '18 at 1:15
  • 2
    Split your widget into multiple ones. – Rémi Rousselet Jun 20 '19 at 20:19
147

You can use a GlobalKey. The only downside is that using GlobalKey might not be the most efficient way of doing this.

A good thing about this is that you can also pass this key to other custom widgets class that do not contain any scaffold. See(here)

class HomePage extends StatelessWidget {
  final _scaffoldKey = GlobalKey<ScaffoldState>(); \\ new line
  @override
  Widget build(BuildContext context) {
    return Scaffold(
      key: _scaffoldKey,                           \\ new line
      appBar: AppBar(
        title: Text('SnackBar Playground'),
      ),
      body: Center(
        child: RaisedButton(
          color: Colors.pink,
          textColor: Colors.white,
          onPressed: _displaySnackBar(context),
          child: Text('Display SnackBar'),
        ),
      ),
    );
  }
  _displaySnackBar(BuildContext context) {
    final snackBar = SnackBar(content: Text('Are you talkin\' to me?'));
    _scaffoldKey.currentState.showSnackBar(snackBar);   \\ edited line
  }
}
| improve this answer | |
  • 1
    Can I ask how to replicate this when your tree is comprised of multiple widgets defined in multiple files? _scaffoldKey is private due to the leading underscore. But even if it weren't, it is inside the HomePage class and therefore unavailable without instantiating a new HomePage somewhere down the tree, seemingly creating a circular reference. – ExactaBox Dec 24 '19 at 4:59
  • 1
    to answer my own question: create a singleton class with a GlobalKey<ScaffoldState> property, edit the constructor of the Widget with the scaffold to set the singleton's key property, then in the child widget's tree we can call something like mySingleton.instance.key.currentState.showSnackBar() ... – ExactaBox Dec 24 '19 at 13:19
  • Why is this inefficient? – user2233706 Mar 6 at 22:29
  • @user2233706 This is mentioned in the documentation of GlobalKey here. Also this post might shed more light. – Lebohang Mbele Mar 11 at 14:02
63

Two way to solve this problem

1) Using Builder widget

Scaffold(
    appBar: AppBar(
        title: Text('My Profile'),
    ),
    body: Builder(
        builder: (ctx) => RaisedButton(
            textColor: Colors.red,
            child: Text('Submit'),
            onPressed: () {
                 Scaffold.of(ctx).showSnackBar(SnackBar(content: Text('Profile Save'),),);
            }               
        ),
    ),
);

2) Using GlobalKey

class HomePage extends StatelessWidget {

  final globalKey = GlobalKey<ScaffoldState>();

  @override
  Widget build(BuildContext context) {
     return Scaffold(
       key: globalKey,
       appBar: AppBar(
          title: Text('My Profile'),
       ),
       body:  RaisedButton(
          textColor: Colors.red,
          child: Text('Submit'),
          onPressed: (){
               final snackBar = SnackBar(content: Text('Profile saved'));
               globalKey.currentState.showSnackBar(snackBar);
          },
        ),
     );
   }
}
| improve this answer | |
  • Helpful. Prefer using option 1. – Saptadeep Nov 22 at 3:34
19

Check this from the documentation of method:

When the Scaffold is actually created in the same build function, the context argument to the build function can't be used to find the Scaffold (since it's "above" the widget being returned). In such cases, the following technique with a Builder can be used to provide a new scope with a BuildContext that is "under" the Scaffold:

@override
Widget build(BuildContext context) {
  return Scaffold(
    appBar: AppBar(
      title: Text('Demo')
    ),
    body: Builder(
      // Create an inner BuildContext so that the onPressed methods
      // can refer to the Scaffold with Scaffold.of().
      builder: (BuildContext context) {
        return Center(
          child: RaisedButton(
            child: Text('SHOW A SNACKBAR'),
            onPressed: () {
              Scaffold.of(context).showSnackBar(SnackBar(
                content: Text('Hello!'),
              ));
            },
          ),
        );
      },
    ),
  );
}

You can check the description from the of method docs

| improve this answer | |
15

Simple way to solving this issue will be creating a key for your scaffold like this final with the following code:

First: GlobalKey<ScaffoldState>() _scaffoldKey = GlobalKey<ScaffoldState> ();

Scecond: Assign the Key to your Scaffold key: _scaffoldKey

Third: Call the Snackbar using _scaffoldKey.currentState.showSnackBar(SnackBar(content: Text("Welcome")));

| improve this answer | |
8

The very behavior you are experiencing is even referred to as a "tricky case" in the Flutter documentation.

How To Fix

The issue is fixed in different ways as you can see from other answers posted here. For instance, the piece of documentation i refer to solves the issue by using a Builder which creates

an inner BuildContext so that the onPressed methods can refer to the Scaffold with Scaffold.of().

Thus a way to call showSnackBar from Scaffold would be

@override
Widget build(BuildContext context) {
  return Scaffold(
    appBar: AppBar(title: Text('Demo')),
    body: Builder(
      builder: (BuildContext innerContext) {
        return FlatButton(
          child: Text('BUTTON'),
          onPressed: () {
            Scaffold.of(innerContext).showSnackBar(SnackBar(
              content: Text('Hello.')
            ));
          }
        );
      }
    )
  );
}

Now some detail for the curious reader

I myself found quite instructive to explore the Flutter documentation by simply (Android Studio) setting the cursor on a piece of code (Flutter class, method, etc.) and pressing ctrl+B to be shown the documentation for that specific piece.

The particular problem you are facing is mentioned in the docu for BuildContext, where can be read

Each widget has its own BuildContext, which becomes the parent of the widget returned by the [...].build function.

So, this means that in our case context will be the parent of our Scaffold widget when it is created (!). Further, the docu for Scaffold.of says that it returns

The state from the closest [Scaffold] instance of this class that encloses the given context.

But in our case, context does not encloses (yet) a Scaffold (it has not yet been built). There is where Builder comes into action!

Once again, the docu illuminates us. There we can read

[The Builder class, is simply] A platonic widget that calls a closure to obtain its child widget.

Hey, wait a moment, what!? Ok, i admit: that is not helping a lot... But it is enough to say (following another SO thread) that

The purpose of the Builder class is simply to build and return child widgets.

So now it all becomes clear! By calling Builder inside Scaffold we are building the Scaffold in order to be able to obtain its own context, and armed with that innerContext we can finally call Scaffold.of(innerContext)

An annotated version of the code above follows

@override
Widget build(BuildContext context) {
  // here, Scaffold.of(context) returns null
  return Scaffold(
    appBar: AppBar(title: Text('Demo')),
    body: Builder(
      builder: (BuildContext innerContext) {
        return FlatButton(
          child: Text('BUTTON'),
          onPressed: () {
            // here, Scaffold.of(innerContext) returns the locally created Scaffold
            Scaffold.of(innerContext).showSnackBar(SnackBar(
              content: Text('Hello.')
            ));
          }
        );
      }
    )
  );
}
| improve this answer | |
2

I wouldn't bother using the default snackbar, because you can import a flushbar package, which enables greater customizability:

https://pub.dev/packages/flushbar

For example:

Flushbar(
                  title:  "Hey Ninja",
                  message:  "Lorem Ipsum is simply dummy text of the printing and typesetting industry",
                  duration:  Duration(seconds: 3),              
                )..show(context);
| improve this answer | |
2

From Flutter version 1.23-18.1.pre you can use ScaffoldMessenger

final mainScaffoldMessengerKey = GlobalKey<ScaffoldMessengerState>();

class Main extends StatelessWidget {
  @override
  Widget build(BuildContext) {
    return MaterialApp(
      ...
      scaffoldMessengerKey: mainScaffoldMessengerKey
      ...
    );
  }
}

Somewhere inside app:

mainScaffoldMessengerKey.currentState.showSnackBar(Snackbar(...));
| improve this answer | |
1

A more efficient solution is to split your build function into several widgets. This introduce a 'new context', from which you can obtain Scaffold

void main() {
  runApp(MyApp());
}

class MyApp extends StatelessWidget {
  @override
  Widget build(BuildContext context) {
    return MaterialApp(
      home: Scaffold(
        appBar: AppBar(title: Text('Scaffold.of example.')),
        body: MyScaffoldBody(),
      ),
    );
  }
}

class MyScaffoldBody extends StatelessWidget {
  @override
  Widget build(BuildContext context) {
    return Center(
      child: RaisedButton(
          child: Text('Show a snackBar'),
          onPressed: () {
            Scaffold.of(context).showSnackBar(
              SnackBar(
                content: Text('Have a Snack'),
              ),
            );
          }),
    );
  }
}
| improve this answer | |
0

Extract your button widget which will display snackbar.

class UsellesslyNestedButton extends StatelessWidget {
  const UsellesslyNestedButton({
    Key key,
  }) : super(key: key);

  @override
  Widget build(BuildContext context) {
    return RaisedButton(
      onPressed: (){
        showDefaultSnackbar(context);
                    },
                    color: Colors.blue,
                    child: Text('Show about'),
                  );
  }
}
| improve this answer | |
  • 1
    How does your approach compare to the existing answers? Is there a reason to choose this approach over, say, the accepted answer? – Jeremy Caney Jun 3 at 4:44
0

here we use a builder to wrap in another widget where we need snackbar

Builder(builder: (context) => GestureDetector(
    onTap: () {
        Scaffold.of(context).showSnackBar(SnackBar(
            content: Text('Your Services have been successfully created Snackbar'),
        ));
        
    },
    child: Container(...)))
| improve this answer | |
0

Try this code:

Singleton.showInSnackBar(
    Scaffold.of(context).context, "Theme Changed Successfully");
// Just use Scaffold.of(context) before context!!
| improve this answer | |
0

Use ScaffoldMessenger (Recommended)

var snackBar = SnackBar(content: Text('Hi there'));
ScaffoldMessenger.of(context).showSnackBar(snackBar);

Example (Without Builder or GlobalKey)

Scaffold(
  body: RaisedButton(
    onPressed: () {
      var snackBar = SnackBar(content: Text('Hello World'));
      ScaffoldMessenger.of(context).showSnackBar(snackBar);
    },
    child: Text('Show SnackBar'),
  ),
)
| improve this answer | |

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