42

I have the following code:

int intNumber1 = 100;
object intNumber2 = 100;
bool areNumberOfTheSameType = intNumber1.GetType() == intNumber2.GetType(); // TRUE
bool areEqual = intNumber1.Equals(intNumber2); // TRUE

long longNumber1 = (long) intNumber1; // OK
long longNumber2 = (long) intNumber2; // InvalidCastException. Why?

Why doesn't the second cast work? I realize that it might be because the object doesn’t have an explicit cast to a long, but if we look at its type on runtime it is System.Int32.

If I use var or dynamic instead of object, it works.

Any thoughts?

  • 4
    try changing that to long longNumber2 = (long)(int)intNumber2; – Ilia G Aug 22 '10 at 13:50
  • Why would you want to use an object instead of a var in this instance? Its better to keep variables strongly typed where possible – Jason Quinn Aug 22 '10 at 13:55
  • 1
    @Quinn351: my guess is that the above code illustrates a simplified issue the user has, I don't think we should take it as a current practice. – Abel Aug 22 '10 at 13:58
  • @liho1eye. Thank you. It works, Moreover your suggestion pointed me to right direction in fidning the answet. Thanks a lot. – Bashir Magomedov Aug 22 '10 at 15:00
48

Cast from int to long is interpreted as conversion between the two types.

Cast from object to int is interpreted as unboxing a boxed int.

It is the same syntax, but it says two different things.

In the working cases (intlong, object (boxed int)→int), the compiler knows exactly what code to produce. If boxed intlong was to work, the compiler would have to somehow figure out which conversion to use, but it doesn't have enough information to do it.

See also this blog post from Eric Lippert.

  • 2
    @Bashir Magomedov: Eric Lippert's blog post on this is quite good, would highly recommend you read it. – R0MANARMY Aug 22 '10 at 14:05
  • @R0MANARMY Thank you guys! I've read it. It's very comprehensive. @svick. Thank you. It's clear now. – Bashir Magomedov Aug 22 '10 at 15:02
7

The object holds a type int. But it's considered an object (which is a boxed int) and a boxed value type can generally only be cast to its underlying type (the type that is boxed).

To cast it to another type, you first have to cast it to its underlying type. This works:

long longNumber2 = (long) (int) intNumber2;

The reason that var works is that the compiler infers the type at compile time. That means, when you use var, the type of intNumber2 (if you use typeof) will be int. Whereas when you use object, the type will be object.

Using dynamic is a whole different process and cannot be compared with var. Here, the conversion / casting takes place at runtime, using reflection and the DLR library. It will dynamically find the underlying type, find that it has a conversion operator and uses that.

3

(Caution: Guess)

Int32 has a conversion operator to Int64 which is what gets invoked when you do the first cast. Object doesn't, so your second cast is trying to cast an object to another type which isn't a supertype (Int64 doesn't inherit Int32).

The reason why it works with var is obvious – the compiler just saves you from typing int in that case. With dynamic the runtime does all necessary checks for what needs to be done while normally the compiler would just insert either the cast or invoke the conversion operator.

1

That it doesn't work due to being two different types of casts (one converting, the other unboxing) has already been stated in answers here. What might be a useful addition, is that Convert.ToInt64() will convert anything that is either a built-in type that can be converted to long, or a type of a class that implements IConvertible.ToInt64(), into a long. In other words, if you want to be able to cast an object that contains an integer (of whatever size) to long, Convert.ToInt64() is the way to go. It is more expensive, but what you are trying to do is more expensive that casting, and the difference is negliable (just big enough to be wasteful in cases where you know the object must be a boxed long).

0

You need to unbox to the same type that was boxed.

object intNumber2 = 100L;
// or value in the long type range
// object intNumber2 = 9223372036854775806;

long result = (long)intNumber2;
  • 1
    You can also add the L to the number, no need for a large number. – Abel Aug 22 '10 at 14:06
  • Indeed! I'll add that to the answer to show both ways. – Peter Kelly Aug 22 '10 at 14:12

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