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I'm a lambda newbie, so if I'm missing vital information in my description please tell me. I'll keep the example as simple as possible.

I'm going over someone else's code and they have one class inheriting from another. Here's the derived class first, along with the lambda expression I'm having trouble understanding:

    class SampleViewModel : ViewModelBase
    private ICustomerStorage storage = ModelFactory<ICustomerStorage>.Create();

    public ICustomer CurrentCustomer
        get { return (ICustomer)GetValue(CurrentCustomerProperty); }
        set { SetValue(CurrentCustomerProperty, value); }

    private int quantitySaved;
    public int QuantitySaved
        get { return quantitySaved; }
            if (quantitySaved != value)
                quantitySaved = value;
                NotifyPropertyChanged(p => QuantitySaved); //where does 'p' come from?

    public static readonly DependencyProperty CurrentCustomerProperty;

    static SampleViewModel()
        CurrentCustomerProperty = DependencyProperty.Register("CurrentCustomer", typeof(ICustomer),
            typeof(SampleViewModel), new UIPropertyMetadata(ModelFactory<ICustomer>.Create()));
//more method definitions follow..

Note the call to NotifyPropertyChanged(p => QuantitySaved) bit above. I don't understand where the "p" is coming from.

Here's the base class:

  public abstract class ViewModelBase : DependencyObject, INotifyPropertyChanged, IXtremeMvvmViewModel
        public event PropertyChangedEventHandler PropertyChanged;

        protected virtual void NotifyPropertyChanged<T>(Expression<Func<ViewModelBase, T>> property)
            MvvmHelper.NotifyPropertyChanged(property, PropertyChanged);

There's a lot in there that's not germane to the question I'm sure, but I wanted to err on the side of inclusiveness.

The problem is, I don't understand where the 'p' parameter is coming from, and how the compiler knows to (evidently?) fill in a type value of ViewModelBase from thin air?

For fun I changed the code from 'p' to 'this', since SampleViewModel inherits from ViewModelBase, but I was met with a series of compiler errors, the first one of which statedInvalid expression term '=>' This confused me a bit since I thought that would work.

Can anyone explain what's happening here?

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5 Answers 5

up vote 8 down vote accepted

The lambda p => QuantitySaved is an expression of type Expression<Func<ViewModelBase, int>>. Since the method NotifyPropertyChanged is looking for an expression of <ViewModelBase, T>, it fits.

So the compiler is able to infer that p is a ViewModelBase. p didn't "come from" anywhere, it's basically being declared right here. It's a parameter for the lambda. It's going to be filled in when someone uses the property parameter of your method. For example, if you put your lambda into a separate variable called lambda, you could call it with lambda(this) and it would return the QuantitySaved value.

The reason you can't use this in the lambda is because it's expecting a parameter name, and this isn't a valid name. The point is that you could call it on any instance of ViewModelBase, not just the one that created the lambda.

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Ah, ok. So it's a method declaration. I thought the snippet in question was --at that moment-- calling NotifyPropertyChanged() with 'p' as a parameter. Thanks everyone, my eyes must have been tired. –  larryq Nov 30 '11 at 17:57
No, you can't use this because it's a reserved keyword. It is never valid as parameter name. –  jason Nov 30 '11 at 18:00
@larryq: It is calling NotifyPropertyChanged with an expression tree that has a parameter called p. There's no separating the p from the lambda any more than you can separate the declaration of formal parameter 'property' from NotifyPropertyChanged. –  Eric Lippert Nov 30 '11 at 18:08
@Tesserex: The lambda is an expression of the type Expression<Func<ViewModelBase, int>>, since that is the type of the method's parameter. –  phoog Nov 30 '11 at 18:16
Thanks for catching me Eric. I should have stated more clearly that it's the expression tree, and not just 'p', that's being passed to NotifyPropertyChanged. –  larryq Nov 30 '11 at 18:46

where does 'p' come from in NotifyPropertyChanged(p => QuantitySaved);

The lambda is being passed to a method called NotifyPropertyChanged. There is one overload of that method. It has formal parameter type Expression<Func<ViewModelBase, T>>. That is, the formal parameter expects to get a lambda that takes a ViewModelBase and returns a T, for some T.

The p is the parameter that the lambda takes.

The compiler is able to infer that the author of the code neglected to spell out the type of the lambda parameter explicitly. The author could also have written:

NotifyPropertyChanged((ViewModelBase p) => QuantitySaved);

had they wanted to be explicit about it.

how does the compiler know to fill in a type value of ViewModelBase from thin air?

The compiler examines all possible overloads of NotifyPropertyChanged that could possibly take a lambda in that argument position. It infers the formal parameter type of the lambda from the delegate types that are in the formal parameter types of the NotifyPropertyChanged methods. An example might help. Suppose we have:

void M(Func<int, double> f) {}
void M(Func<string, int> f) {}

and a call


The compiler must infer the type of the lambda parameter x. What are the possibilities? There are two overloads of M. Both take a delegate in the formal parameter of M corresponding to the first argument passed in the call. In the first one, the function is from int to double, so x could be of type int. In the second one, the formal parameter of M is a function from string to int, so x could be string.

The compiler must now determine which one is correct. In order for the first one to be correct, the body of the lambda must return a double. But if x is int, there is no property Length on x that returns a double. So x cannot be int. Can x be string? Yes. There is a property Length on x that returns an int if x is string.

Therefore the compiler deduces that x is string.

These deductions can get extraoridinarily complicated. A slightly more complicated example:

void M<A, B, C>(A a1, Func<List<A>, B> a2, Func<B, C> a3) {}
M(123, x=>x.Count.ToString(), y=>y.Length);

Type inference must infer the types A, B, C and therefore the types of x and y. The compiler first infers that A must be int since a1 is 123. It then infers that x must be List<int> from that fact. It then infers that B must be string, and therefore y is string, and therefore C is the type of y.Length, which is int.

It gets a lot more complicated from there, believe me.

If this subject interests you, I have written a number of articles and filmed some videos on the subject of various kinds of type inference performed by the compiler. See

for all the details.

For fun I changed the code from 'p' to 'this', since SampleViewModel inherits from ViewModelBase, but I was met with a series of compiler errors, the first one of which statedInvalid expression term '=>' This confused me a bit since I thought that would work.

The only acceptable left-hand-side of a lambda operator is a lambda parameter list; "this" is never a legal lambda parameter list. The compiler is expecting "this" to be followed by ".SomeMethod()" or some such thing; the compiler assumes that "this" will never be followed by "=>". When you violate that assumption, bad things happen.

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Many thanks for the explanation Eric. Much appreciated. –  larryq Nov 30 '11 at 18:49

p is just a dummy name, it's the name of the parameter like in any method. You could name it x or Fred, if you like.

Remember, lambda expressions are just very, very special anonymous methods.

In regular methods you have parameters, and they have names:

public double GetQuantitysaved(ViewModelBase p) {
    return QuantitySaved;

In anonymous methods you have parameters, and they have names:

delegate(ViewModelBase p) { return QuantitySaved; }

In lambda expressions you have parameters, and they have names:

p => QuantitySaved

The p here plays the same role in all three versions. You can name it whatever you want. It's just the name of a parameter to the method.

In the last case, the compiler does a lot of work to figure out that p represents a parameter of type ViewModelBase so that p => QuantitySaved can play the role of

Expression<Func<ViewModelBase, T>> property

For fun I changed the code from p to this, since SampleViewModel inherits from ViewModelBase, but I was met with a series of compiler errors, the first one of which stated Invalid expression term '=>' This confused me a bit since I thought that would work.

Well, this is not a valid parameter name because it's a reserved keyword. It's best to think of p => QuantitySaved as

delegate(ViewModelBase p) { return QuantitySaved; }

until you get comfortable with the idea. In this case, this could never be substituted in for p as it is not a valid parameter name.

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The easy way to understand this is to replace this:

p => QuantitySaved // lambda

with this:

delegate (ViewModelBase p) { return QuantitySaved; } // anonymous delegate

Which is effectively the same. p is a parameter name for first parameter of your anonymous delegate. You can give it any name appropriate for parameter names (this is a keyword, you cannot use it as parameter name)

In this particular example this p variable is redundant by the way, you could use parameterless delegate as well.

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In this case, it's not the same, since the lambda is not converted to a delegate, but an Expression. And you can't do that with the delegate anonymous functions. –  svick Dec 5 '11 at 15:55

From the NotifyPropertyChanged signature:

void NotifyPropertyChanged<T>(Expression<Func<ViewModelBase, T>> property)

The method expects an expression that takes an input of type ViewModelBase and returns an instance of type T.

The p parameter is an instance of ViewModelBase.

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