3

I would like to use AndroidViewModel for my view model in order to get access to the Context. It requires Application to be passed as a parameter. My ViewModel class looks like this:

class FooAndroidViewModel(application: Application?) : AndroidViewModel(aplication) {
  ...
}

It is getting instantiated like this:

val fooModel = ViewModelProviders.of(this).get(FooAndroidViewModel::class.java)

The problem is that this gives an error, that FooAndroidViewModel cannot be instantiated - probably because of the missing application parameter.


Question: how to pass application to ViewModelProviders.of(this).get(FooAndroidViewModel::class.java)?

5

Just replace application: Application? to application: Application.

Following code should work:

class FooAndroidViewModel(application: Application) : AndroidViewModel(aplication) {
  ...
}
  • Hmm, actually just figured out, that it works both way. – 0leg Jun 9 '17 at 12:03
  • @Oleg, do you recall what the issue was? I'm facing a similar problem and my code is exactly as it is in this answer. – user11566289 Jun 10 '19 at 15:50
  • Fixed by retrieving the view model via by viewModels(). I was retrieving it in the fragment's onCreate() previously, which is apparently a no-go. – user11566289 Jun 10 '19 at 16:20
0

Even if we have it this way,

class FooAndroidViewModel(application: Application) : AndroidViewModel(aplication)

But we don't go with by viewModels() option and instead try to use this as,

val mViewModel = ViewModelProvider(this).get(FooAndroidViewModel::class.java)

Then it gives an exception,

java.lang.RuntimeException: Cannot create an instance of class x.y.z.FooAndroidViewModel

Caused by: java.lang.InstantiationException: java.lang.Class<x.y.z.FooAndroidViewModel> has no zero argument constructor

I solved it by creating instance of AndroidViewModel this way,

val mViewModel = ViewModelProvider.AndroidViewModelFactory(application).create(FooAndroidViewModel::class.java)

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