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I have pascal code (programming language actually doesn't mean anything):

box[1] := 14;
box[2] := 2;
box[3] := 4;
box[4] := 5;
box[5] := 6;
box[6] := 8;

I want to get all possibilities. For instance, box[1] = box[6], then box[6] = box[1]. Yes, I can write it by my hand, but I guess I can make it more clever, by loop. Any suggestions?

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3  
What do you mean by "box[1] = box[6], then box[6] = box[1]"? –  Paul Tomblin Jan 16 '10 at 23:03
    
It is example. It can be also box[1] = 2; box[2] = 14; box[3] = 6; box[5] = 4 and etc. All possibilities. –  good_evening Jan 16 '10 at 23:05
3  
Do you mean you want all permutations of the numbers 14, 2, 4, 5, 6 and 8? –  Simon Nickerson Jan 16 '10 at 23:14
2  
Then this might help: google.com/search?q=permutation+algorithm –  fireeyedboy Jan 16 '10 at 23:24
2  
-1 because this question is presented as a programming question and not a statistics/permutation question, and as a programming question, it is not described well enough to be answered. –  Lars D Jan 17 '10 at 8:38
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3 Answers

up vote 2 down vote accepted

I have taken the first permutation algorithm I found in wikipedia and implemented it in Delphi (2009); I hope that is what you are looking for:

type
  TIntegerArray = array of Integer;

procedure Permutation(K: Integer; var A: TIntegerArray);
var
  I, J: Integer;
  Tmp: Integer;

begin
  for I:= 2 to Length(A) do begin
    J:= K mod I;
    Tmp:= A[J];
    A[J]:= A[I - 1];
    A[I - 1]:= Tmp;
    K:= K div I;
   end;
end;

procedure TForm1.Button1Click(Sender: TObject);
var
  K, I: Integer;
  A: TIntegerArray;
  S: string;

begin
  Memo1.Lines.Clear;
  for K:= 0 to 719 do begin
    A:= TIntegerArray.Create(14, 2, 4, 5, 6, 8);
    Permutation(K, A);
    S:= '';
    for I:= 0 to Length(A) - 1 do
      S:= S + Format('%3.d ', [A[I]]);
    Memo1.Lines.Add(S);
  end;
end;
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I've answered you already? =S

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Wow ...... I can't believe that this confusing of a question has ever came up before. (It really isn't that confusing, but wow...) –  Tyler Carter Jan 16 '10 at 23:26
1  
@Chacha102: Actually, the asker is the same. And that is strange... –  Alix Axel Jan 16 '10 at 23:27
    
It is not what I want actually, because when one array's var changes, it has to change another one. For example when box[1] becomes box[2], box[2] also has to change to box[1] –  good_evening Jan 16 '10 at 23:27
    
If the results are unique you can quickly delete all the arrays that have the repeated value. I'm not sure if I'm following. –  Alix Axel Jan 16 '10 at 23:49
1  
Donator, when box[2] becomes box[1] and box[1] must take box[2]'s previous value, the vocabulary word you want is swap. The beginning-level classes that you're taking right now are more about learning the vocabulary of the topic fields than about anything else. Without the vocabulary, you won't understand anything, and nobody will understand you, as in today's example of using possibilities when you really mean permutations. –  Rob Kennedy Jan 17 '10 at 15:35
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So basically, you have set of items that can either be included (1) or excluded (0). If you count from 0 to 2^(the number of items)-1, every integer will be a set of bits indicating which items are included.

If you have 7 items, in your loop from 0 to 127 the items chosen are:

x0000000 (loop variable = 0, no items are chosen)
x0000001 (loop variable = 1, item [1] is chosen)
x0000010 (loop variable = 2, item [2] is chosen)
x0000011 (loop variable = 3, items [1] and [2] are chosen)
...
x1111111 (loop variable = 127, items [1], [2], [3], [4], [5], [6], [7] are chosen)
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