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I don't understand why this code doesn't work properly:

program selection;
var 
    n : integer;
begin
    readln(n);
    if (n in [100..1000]) then writeln('Selected!');
    readln;
end.

this works fine for me with values between 1 and 233, if I enter 233, or more, the writeln.. doesn't get executed. This is very strange. I've also tried with other values, and the result is more or less the same, with only difference being the value it fails on.

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1  
A limitation on sets is that they can hold up to 255 elements. Are you sure about 233 ... –  bummi Mar 28 '13 at 12:51
    
Rob has answered the direct question here; one wonders, however, why you are using a set here in the first place. Why not if (n >= 100) and (n <= 1000) ? –  J... Mar 28 '13 at 12:55
    
It seems perfectly reasonable to want to use set notation here, @J... I'd prefer it, if it worked reliably. –  Rob Kennedy Mar 28 '13 at 13:09
1  
I could use comparison, but I really wanted to do this with sets, as sets are what I want to learn to use right now. If there is no good solution to this problem, I'll just go back to using comparisons again.. –  user1548072 Mar 28 '13 at 13:12
2  
Sometimes, one of the lessons about how to use a feature is what its limitations are. You've now learned a limitation of sets. –  Rob Kennedy Mar 28 '13 at 13:23

2 Answers 2

up vote 11 down vote accepted

Delphi sets only go up to 255; a set with a maximum value of 1000 doesn't work. I'm a little surprised your code compiled.

When truncated to 8 bits, the value 1000 is 232, which explains why values larger than that fail.

Instead, you can use the InRange function; it uses closed ranges just like set constructors.

if InRange(n, 100, 1000) then ...

You can also use plain old inequality operators to test whether the value lies in the given range:

if (100 <= n) and (n <= 1000) then ...

Finally, you can use a case statement. Case-statement selectors aren't sets, so they're not subject to the same rules as sets.

case n of
  100..1000: begin ... end;
end;

The downside is that it looks a little clumsy when there's only one case branch.

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Ok, but aren't they supposed to act like intervals for arrays? array[1..1000] of integer; would work. What are your suggestions on this matter? –  user1548072 Mar 28 '13 at 13:08
    
The .. operator can be used to define sets, and it can be used to define subrange types. In an array definition, it's defining a subrange type; sets are not involved there at all. –  Rob Kennedy Mar 28 '13 at 13:13
    
I'll try the test option. This is actually the way I wanted to use sets in the first place. :) –  user1548072 Mar 28 '13 at 13:17
    
Ok, the case n of worked fine, however, I'm not sure as to why it doesn't have the same problem as when using the "if" way. Aren't those the same sets? –  user1548072 Mar 28 '13 at 13:20
3  
InRange(n, 100, 1000) is the way I'd do this in an if statement. Defined in the Math unit. –  David Heffernan Mar 28 '13 at 13:22

Rob has explained why you cannot use Delphi sets for what you need. I would also stress that a set is a very heavyweight type to store what amounts to an interval. Once this is recognised, it makes sense to use a function like InRange which operates on intervals.

As a fun exercise, you can write a simple record that represents an interval. And then you can use operator overloading to implement an in operator that will test for interval inclusion. This allows you to use the readable notation, and have the natural storage for an interval. And of course there are no constrains on element size.

Here is the simple demonstration:

{$APPTYPE CONSOLE}

type
  TInterval = record
  public
    Low: Integer;
    High: Integer;
  public
    class operator In(const Value: Integer; 
      const Interval: TInterval): Boolean; inline;
  end;

class operator TInterval.In(const Value: Integer; 
   const Interval: TInterval): Boolean;
begin
  Result := (Value>=Interval.Low) and (Value<=Interval.High);
  // or implement with a call to Math.InRange()
end;

function Interval(Low, High: Integer): TInterval; inline;
begin
  Result.Low := Low;
  Result.High := High;
end;

begin
  Writeln(25 in Interval(10, 100));
  Writeln(125 in Interval(10, 100));
  Writeln(2500 in Interval(1000, 10000));
  Writeln(12500 in Interval(1000, 10000));
  Readln;
end.
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Lovely syntactic sugar. How does this compares, performance-wise, with (n >= low) and (n <= high)? –  Leonardo Herrera Mar 28 '13 at 15:05
    
@LeonardoHerrera The code in this answer is heavier than Math.InRange and the test in your comment. –  David Heffernan Mar 28 '13 at 15:18
    
ok. But sure looks cleaner than both. –  Leonardo Herrera Mar 28 '13 at 15:46
    
@LeonardoHerrera Maybe. I quite like InRange() myself. –  David Heffernan Mar 28 '13 at 15:51

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