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This compiles

var fourGb = (long)4*1024*1024*1024;

But this fails

var fourGb = 4*1024*1024*1024;

With "The operation overflows at compile time in checked mode".

So if the compiler knows this will be an overflow why cant it infer that the variable type should be a long?

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1  
Because the compiler is relatively dumb still and this is an edge case? A better question is why not just fully qualify the type yielding long fourGb. var is only one letter shorter and in this case provides no foreseeable benefit –  Earlz Jul 21 '10 at 4:46
4  
Well it could be ulong too? How do you want compiler to figure that out other than being explicit about it? Also, int * int will return an int, hence the final value will overflow. Isn't it? –  shahkalpesh Jul 21 '10 at 4:50

4 Answers 4

up vote 2 down vote accepted

Imagine the uproar that would cause. "But the compiler can figure out an expression should be evaluated as long, why can't the runtime do it?"

And that's not going to happen, way too expensive.

It is essential that the compiler evaluates expressions the same way as the runtime. If that wasn't the case, editing a constant expression and replacing a constant with a variable could suddenly cause runtime failure. Hard to diagnose failure at that, non-constant expressions are unchecked by default.

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See http://msdn.microsoft.com/en-us/library/ctetwysk%28VS.80%29.aspx

You asked it to multiply a bunch of ints so the answer is an int according to the C# syntax. Use 'L' if you want a long.

var fourGb = 4L * 1024 * 1024 * 1024;
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I don't think it's a good idea to infer the type of variable by the calculation result.

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It's the same in most languages:

  • the datatypes of the expression follow precedence rules
  • it's cast to "var" datatype on assignment

Any other behaviour would give unintended consequences

Arguably you've :

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