90

Suppose I have:

public class Bob
{
    public int Value { get; set; }
}

I want to pass the Value member as an out parameter like

Int32.TryParse("123", out bob.Value);

but I get a compilation error, "'out' argument is not classified as a variable." Is there any way to achieve this, or am I going to have to extract a variable, à la:

int value;
Int32.TryParse("123", out value);
bob.Value = value;
1

2 Answers 2

88

You'd have to explicitly use a field and "normal" property instead of an auto-implemented property:

public class Bob
{
    private int value;
    public int Value
    { 
        get { return value; } 
        set { this.value = value; }
    }
}

Then you can pass the field as an out parameter:

Int32.TryParse("123", out bob.value);

But of course, that will only work within the same class, as the field is private (and should be!).

Properties just don't let you do this. Even in VB where you can pass a property by reference or use it as an out parameter, there's basically an extra temporary variable.

If you didn't care about the return value of TryParse, you could always write your own helper method:

static int ParseOrDefault(string text)
{
    int tmp;
    int.TryParse(text, out tmp);
    return tmp;
}

Then use:

bob.Value = Int32Helper.ParseOrDefault("123");

That way you can use a single temporary variable even if you need to do this in multiple places.

13
  • 1
    I think the problem with the first approach is that if you use the field directly (instead of the property), u might be bypassing validation rules that may exist in the property Sep 2, 2009 at 21:39
  • 3
    @Jon:I think you would like to change int.Parse to int.TryParse in the ParseOrDefault example. Sep 2, 2009 at 21:44
  • 9
    Btw, the reason why you can't have a property as an output parameter is that setting a property actually is a function call and no assignment if you look under the hood. Sep 2, 2009 at 21:48
  • 4
    I would love to see the proper syntactic sugar to let me pass a property as a ref or out parameter. Let's do the work to the compiler, it's faster than me. Oct 22, 2013 at 9:34
  • 1
    @SoMoS: Whether it's a value type or not makes no difference to my comment. Either a change within the method to the parameter immediately takes effect, or it doesn't. This affects what happens if an exception is thrown, too.
    – Jon Skeet
    Oct 22, 2013 at 12:35
8

You can achieve that, but not with a property.

public class Bob {
    public int Value { get; set; } // This is a property

    public int AnotherValue; // This is a field
}

You cannot use out on Value, but you can on AnotherValue.

This will work

Int32.TryParse("123", out bob.AnotherValue);

But, common guidelines tells you not to make a class field public. So you should use the temporary variable approach.

0

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