-1

I use Firebase Auth to allow users to sign up. If the user registers the correct email address and a sufficiently secure password, they will be registered with Firebase Auth.

I can register, but when I fail to sign up, I don't get an error.

String _state = ""; //global

Future signUp(String email, String password) async {
 try {
   UserCredential userCredential = await FirebaseAuth.instance
       .createUserWithEmailAndPassword(email: email, password: password);
 } on FirebaseAuthException catch (e) {
   if (e.code == 'weak-password') {
     setState(() {
       _state = ('The password provided is too weak.');
     });
   } else if (e.code == 'email-already-in-use') {
     setState(() {
       _state = ('The account already exists for that email.');
     });
   }
 } catch (e) {
   setState(() {
     _state = e.toString();
   });
 }
}

Referred here. This code executes createUserWithEmailAndPassword() by passing the email address and password as arguments. I'm trying to display on the screen the cause of a sign-in failure with try & catch statement.

But for some reason setState() doesn't change the Text() that has global _state.

    @immutable
class signUp extends StatefulWidget {
  static String route = '/signup';
  const  signUp({Key? key}) : super(key: key);

  @override
  _signUp createState() => _signUp();
}

class _signUp extends State<signUp> {
  @override
  Widget build(BuildContext context) {
    return Scaffold(
        appBar: myAppBar(context), //custom appBar. ignore this.
        body: const Center(
          child: Text( 
             _state
          ),
        ));
  }
}

I declared Text() in StatefulWidget so that it can be updated with setState().

But for some reason setState() is ignored and Text(_state) is not executed. I feel that the cause of this problem is in the try & catch statement, but I don't know what to do.

What should I do to display the sign-up results as text?

Thank you.

3
  • Please try to remove the const keyword before your Center widget. const makes the variable constant from compile-time.
    – hnnngwdlch
    Sep 19, 2021 at 16:25
  • How can you use thesetState outside the build method? The setState only works inside its current state (inside class _signUp in your case).
    – Lam Nhan
    Sep 19, 2021 at 16:28
  • Hi, I edited code like below, still not appears. - Removed const keyword before Center. - Move signUp() method into _signUp class. It's awaiting in try & catch, so setState () isn't really ignored, right?
    – Beginner_
    Sep 20, 2021 at 2:05

2 Answers 2

0

I changed code like this; this solved my issue.

String stateCode = "";
    try {
      UserCredential userCredential = await FirebaseAuth.instance
          .createUserWithEmailAndPassword(email: email, password: password);
    } on FirebaseAuthException catch (e) {
      if (e.code == 'weak-password') {
        stateCode = ('The password provided is too weak.');
      } else if (e.code == 'email-already-in-use') {
        stateCode = ('The account already exists for that email.');
      } else {
        stateCode = "error: " + e.code;
      }
    } catch (e) {
      stateCode = "error: " + e.toString();
    }

    setState(() {
      _state = (stateCode);
    });

All I had to do was display the e.code when an exception occurred.

0

I can register, but when I fail to sign up, I don't get an error.

Could you check if your sign-in really fails? Checking your code, signUp is a Future<void>. How are you handling the UserCredential being returned by FirebaseAuth.instance.createUserWithEmailAndPassword?

This block catches an Exception, not a successful login.

catch (e) {
  setState(() {
    _state = "Succeeded!";
  });
}

You can also check for UserCredential after the login request to debug.

UserCredential userCredential = await FirebaseAuth.instance
       .createUserWithEmailAndPassword(email: email, password: password);
debugPrint(uid: ${userCredential?.user?.uid}
2
  • Thank you. To recognize that creating account succeeded, I just checked list of account with firebase console of this project, and I found accounts which I created in app. Also I checked with debugPrint(userCredential.user?.uid);, this shows uid correctly. The problem is that the error statement when it fails cannot be displayed on the screen.
    – Beginner_
    Sep 20, 2021 at 3:43
  • > This block catches an Exception, not a successful login. Oh thank you. I changed code like this, catch (e) { setState(() { _state = e.ToString(); }); }
    – Beginner_
    Sep 20, 2021 at 3:45

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