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I have a 16 bit signed number coming in from hardware. I want to caste it into an Int32.

When I cast it as a short, it works occasionally when the number is negative. Most of the time however, I get a first chance exception of type 'System.OverflowException' occurred.

Here is my code:

int M1;
M1 = (short)(INBuffer[3] << 8) + INBuffer[2];

How do I cast a 16 bit short to a 32 bit integer in C#?

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1  
What is the type of INBuffer? Can you show us its declaration? –  Gareth McCaughan May 1 '12 at 12:39
6  
If you're trying to get 32-bit values, why are you casting to short? –  Gareth McCaughan May 1 '12 at 12:41
    
Here is a guess, which may be refuted by your answers to my questions above. If INBuffer contains shorts, then the left shift can't produce an OverflowException (shift operators in C# just silently discard any bits shifted off the end of the result) but the addition can; it might e.g. be trying to add 32000 to 32000. What behaviour do you actually need in that case? If you just want to do what C would do and throw away high bits, you can use unchecked. If not, well, the answer will depend on what you do want. –  Gareth McCaughan May 1 '12 at 12:43
    
There are two ways to cast a short to an int in C#: implicitly ans explicitly. The first: int intValue = (int)shortValue; The second: int intValue = shortValue; In other words, you haven't given us enough information to help you. What is the type of INBuffer? What are the values of INBuffer[3] and INBuffer[2] when the exception is thrown? –  phoog May 1 '12 at 14:04
    
Gareth - thank you and sorry I did not provide enough info. InBuffer is a byte array. If I cast as int, the error goes away. However -1 displays as 65535. When I cast as short, -1 occasionally appears on my form as -1, but more often I get the OverflowException. –  ki15686 May 2 '12 at 2:19

1 Answer 1

Assuming INBuffer is a byte array, you can safely cast to a ushort but not a short. This is because if the highest bit of the higher order byte is 1, the value is too large for a signed short once it is bitshifted.

In your case, if you want an int, no need to cast at all - the bit shift outputs an int, and the addition of a byte again leaves an int - you're already there...

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[citation required]. byte b = 0xff; var s = (short)b; –  Hans Passant May 1 '12 at 12:46
    
@Hans - if I understand your point, then I probably didn't make mine clearly enough. I've edited the end of the first paragraph. –  David M May 1 '12 at 12:48
    
Could I have an explanation for the -1 please? Happy to accept it, but don't think it's unreasonable to expect an explanation... –  David M May 1 '12 at 13:03

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