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I have a code:

static short Sum(short a, short b)
        {
            return a + b;
        }

And it does not compile, saynig cannot convert 'int' to 'short'. I am maybe really tired today but I cannot see the issue!

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stackoverflow.com/questions/4343624/… Here is your answer –  user1071979 Aug 7 '12 at 20:29

3 Answers 3

up vote 12 down vote accepted

And it does not compile, saynig cannot convert 'int' to 'short'. I am maybe really tired today but I cannot see the issue!

It's just the way the language is defined. The + operator on integer types is defined for:

static uint op +(uint x, uint y)
static int op +(int x, int y)
static ulong op +(ulong x, ulong y)
static long op +(long x, long y)

Operands are promoted as required.

Now as for the reasons why it's defined that way - I don't know, to be honest. I don't buy the argument of "because it could overflow" - that would suggest that byte + byte should be defined to return short, and that int + int should return long, neither of which is true.

I've heard somewhere that it could be performance related, but I wouldn't like to say for sure. (Perhaps processors typically only provide integer operations on 32 and 64 bit integers?)

Either way, it doesn't really matter why it's the case - it's just the rules of the language.

Note that the compound assignment operators have an implicit conversion back to the relevant type, so you can write:

short x = 10;
short y = 20;
x += y;
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Thanks, so even whem I want to use as little memory as possible, I just have to use ints here? –  user970696 Aug 7 '12 at 20:33
    
@user970696: Nope, you can cast: return (short) a + b;. But I'd be wary of micro-optimizing... –  Jon Skeet Aug 7 '12 at 20:33
    
@JonSkeet That won't compile either (order of operations). You need to wrap the addition in parens. –  Servy Aug 7 '12 at 20:34
    
Jon - in my defence: stackoverflow.com/a/4347752/1583 –  Oded Aug 7 '12 at 20:34
1  
@Oded: Fair enough, but in this case it still feels like a weak argument even though that means disagreeing with Eric. I'll get my coat. –  Jon Skeet Aug 7 '12 at 20:35

When you add two shorts together, they can add up to more than the allowed value of a short, but an OK value for an int. This is pretty much what Eric Lippert says in his answer here.


Aside: Why is that not the case for adding two ints returning a long? Eric addresses that too:

In a world where integer arithmetic wraps around it is much more sensible to do all the calculations in int, a type which is likely to have enough range for typical calculations to not overflow.


Because of that, the + operator defined on adding two shorts returns an int.

This is why you are getting the compile time error - you are returning an int where you are specifying a short return type`.

You can explicitly cast the result to short if you know that the addition will always result in a short:

static short Sum(short a, short b)
{
    return (short)(a + b);
}
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2  
That's an argument for not letting you sum two int values to get another int. –  Jon Skeet Aug 7 '12 at 20:27
    
Yes they can, but does not have to. I can do that with ints and expect a long.. –  user970696 Aug 7 '12 at 20:28
2  
@JonSkeet Ah, but the chances of that happening are only half as big. –  Mr Lister Aug 7 '12 at 20:28
    
@user970696: You can expect it, but you'll be disappointed. If you add int.MaxValue and 1, you won't get a long value which is bigger than int.MaxValue - you'll get int.MinValue. –  Jon Skeet Aug 7 '12 at 20:30
    
@user970696 - True, but than't not how the language works. The designers decided to allow ints to overflow, but not shorts. –  Oded Aug 7 '12 at 20:36

Jon Skeet has explained in detail why your code doesn't work, but he hasn't listed what you need to do in order for it to compile. You can use the following:

static short Sum(short a, short b)
{
    return (short)(a + b);
}
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That is okay, I was looking for a way how to simply cause overflow oexception ;) –  user970696 Aug 7 '12 at 20:34
    
You should take situations into account where short x + short y exceeds the maximum value for a short; make it throw an exception. @user970696 the simplest way to cause an overflow exception would be just to throw new OverflowException(); –  aevitas Aug 7 '12 at 20:34
    
@aevitas That depends on whether or not throwing an exception is desirable. In either case, you should use either a checked or unchecked block around the code to get the desired behavior rather than manually checking and throwing the exception. –  Servy Aug 7 '12 at 20:36
    
Well I was looking how to make C# naturaly cause that exception without forcing it from using inbuilt mechanisms. –  user970696 Aug 7 '12 at 20:39
1  
Yes, return checked((short)(x + y));. –  Jeppe Stig Nielsen Aug 7 '12 at 21:59

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