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Is there an elegant way in Java to code:

if (10 < x < 20) {
   ...
}

i.e. "if x is between 10 and 20"

rather than having to write

if ((x > 10) && (x < 20)) {
   ...
}

Thanks!

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7  
if (10 < x && x < 20) { ... } –  KennyTM Apr 12 '10 at 18:31
3  
if (Math.abs(x-15) < 5) { (I mean, integer overflows don't matter.) –  Tom Hawtin - tackline Apr 12 '10 at 18:44

6 Answers 6

up vote 14 down vote accepted

No. The < operator always compares two items and results in a boolean value, so you cannot chain them "elegantly". You could do this though:

if (10 < x && x < 20)
{
    ...
}
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That's plenty elegant IMO - there's just not a shorthand/sugar notation for it. –  Sam Harwell Apr 12 '10 at 18:51

Kenny nailed it in the comments.

if (10 < x && x < 20)

You want to keep them either both less-than or both greater-than; reversing the direction of the comparison makes for a confusing bit of logic when you're trying to read quickly.

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Keen observation at the bottom. Keep a consistent codebase. –  jcolebrand Apr 12 '10 at 18:39

No but you can re-arrange it to make it better, or write a wrapper if it irks you:

if (InRange(x, 10, 20)) { ... }

Or, as Carl says:

if (new Range(10, 20).contains(x)) { ... }

Though personally, I don't see the point. It's a useless abstraction. The bare boolean statement is perfectly obvious.

Though, now that I think about it, and in light of Carl's comment below, there are times when a Range is a perfectly valid and useful abstraction (e.g. when dealing with Feeds). So, depending on the semantics of x, maybe you do want an abstraction.

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3  
or new Range(10, 20).contains(x). –  Carl Manaster Apr 12 '10 at 18:33
    
@Carl Manaster: Yeah, that would be the hip OO way of doing it. Good call. –  jeffamaphone Apr 12 '10 at 18:34
1  
Yes by all means, let's instantiate a new object rather than subject our beautiful code to an && expression. –  mob Apr 12 '10 at 18:42
    
Hip OO will create object to pass as arguments, but not to call a single method on. –  Tom Hawtin - tackline Apr 12 '10 at 18:42
  if(x < 20)
  {
   if(x > 10)
   {

   //...

   }
  }

OR

 if(x > 10)
  {
   if(x < 20)
   {

   //...

   }
  }
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1  
+1 funny, you sir win one internets, you can pick it up on your way out the door... –  jcolebrand Apr 12 '10 at 18:38

The only thing you can do is loose the extra parenthesis since the && has a lower precedence than > and <:

if (x > 10 && x < 20) {
   ...
}

Other than that: there's no shorter way.

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The FASTEST way is a switch.


EDIT:

switch(x) {
  case 10:
  case 11:
  case 12:
  case 13:
  ...
  case 19: System.out.println("yes");
}

is compiled into a jump table, not a long series of ifs.

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I think you need to explain what you meant a bit fuller –  Will Apr 12 '10 at 18:44
    
-1 The question was about an elegant way. –  whiskeysierra Apr 12 '10 at 23:23

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