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I run D7 Enterprise on a Win 64 sp2.

IN my program I have 2 Listboxes (lb1, Lb2) .

Lb1 may contain up to 35.000 items. (string[4] ) Lb2 may contain up to 35.000 items. (string[4] )

Both listboxes are SORTED.

Thera may be duplicated items (from 0 to 30.000 ) in the listboxes, and I want to locate these duplicates.

I have tried the "bottom-up" type (eg: get element from bottom of listbox2 , scan through listbox1 to bottom, mark equal elements, (eventually copy to a third Listbox), take next element i Listbox2 do sacn i lisbox1 again and continue till top af listbox2. )

This method is INDEED working, but it is tedious and extremely slow (takes approx. 8 minutes (+/-) / 35000 item LB1 / 25000 items LB2).

I wonder if It is possible to modify a TStringList Component: TStringList.NoDuplicates; to
TStringList.getDuplicates; or something like, and if so how do I do it ??

Or have I not found a "hidden" (at least for me ) possibility / method in the TStringList component?

Or is ther a third way to find the duplicates ?

Please help.

Thanks

KRIS

  • So you want to find the intersection of the two list boxes, that is, the strings that are present in both list boxes? – Andreas Rejbrand Sep 26 at 17:44
  • @Andreas Rejbrand : YES – Kristian Sander Sep 26 at 17:46
  • Instead of doing a linear search in the second list box, do a binary search. That reduces the complexity from O(n) to O(log n). Or you can use a dictionary to get O(1). – Andreas Rejbrand Sep 26 at 17:48
  • @Andreas Rejbrand - Could be a good idea. And I feel, that this (new) method may be teh best one. (and by the way I do regret all the TYPOS in the text in my question, - I have a DELL lbtop with an extremely sensitive keyboard. and my control-reading failed compe´letely.) I will try this and ask again, if any problems should occur. THANKS angain. – Kristian Sander Sep 26 at 17:54
  • 1
    @fpiette is right. Just copy them to two local TStringList variables: A := TStringList.Create; A.Assign(ListBox1.Items); B := TStringList.Create; B.Assign(ListBox2.Items) (with proper try..finally blocks, of course). Then do all the work on A and B. – Andreas Rejbrand Sep 26 at 19:13
2

It is a good idea to do as if you were doing it by hand, following each list down with your finger.

Here is a procedure to do that.

procedure TFormTest.CompareLists(const Lista, Listb, Listc: TStrings);
var
  a, b, amax, bmax : integer;
begin
  aMax := Lista.Count;
  bMax := Listb.Count;

  Listc.Clear;

  a:=0;
  b:=0;

  while (a< aMax) and (b<bMax) do
  begin
    // Once either index goes past end of list we are done;
    case Sign( CompareStr( Lista[a], Listb[b])) of  // oer CompareText if not case sensitive
      -1:
      begin
        // ista[a] < List0[ b ]b
        inc( a );
      end;
      0:
      begin
        // a = b
        Listc.add( Lista[a] );  // same so could be either
        inc(a);
        inc(b);
      end;
      1:
      begin
        inc( b );
      end;
    end;
  end;
end;

You can copy that straight into your program.

It also makes it easy to compare whether copying to external lists is worth while. I did that and fount that using list box entries takes about 4 seconds for 35000 is entries (many longer that 4 characters) and less than a second for separate lists. That difference far exceeds the time taken to copy the items to separate string lists, but both times are way better what you achieved.

Here is the full test unit:

unit UnitTest;

interface

uses
  Winapi.Windows, Winapi.Messages, System.SysUtils, System.Variants, System.Classes, Vcl.Graphics,
  Vcl.Controls, Vcl.Forms, Vcl.Dialogs, System.Math, Vcl.StdCtrls;

type
  TFormTest = class(TForm)
    ListBox1: TListBox;
    ListBox2: TListBox;
    ListBox3: TListBox;
    EditCompareLists: TEdit;
    EditCompareListBoxes: TEdit;
    ButtonTest: TButton;
    EditCount1: TEdit;
    EditCount2: TEdit;
    EditCount3: TEdit;
    procedure ButtonTestClick(Sender: TObject);
  private
    { Private declarations }
  public
    { Public declarations }
    procedure CompareLists( const Lista, Listb, Listc : TStrings );
  end;

var
  FormTest: TFormTest;

implementation

{$R *.dfm}

{ TForm1 }

procedure TFormTest.ButtonTestClick(Sender: TObject);
var
  List1, List2, List3 : TStringList;
  iTime : TTime;
  i: Integer;
begin
  // 1. Generate lists - should be string[4] but if bigger should slow things down
  List1 := TStringList.Create;
  Try
    List2 := TStringList.Create;
    try
      List3 := TStringList.Create;
      try
        List1.Sorted := TRUE;
        List2.Sorted := TRUE;
        List1.Duplicates := dupIgnore;
        List2.Duplicates := dupIgnore;

        for i := 1 to 50000 do
        begin
          List1.Add( IntToStr( Random( 65000 )));
          List2.Add( IntToStr( Random( 65000 )));
        end;

        ListBox1.Items.Assign( List1 );
        ListBox2.Items.Assign( List2 );

        EditCount1.Text := IntToStr(ListBox1.Items.Count );
        EditCount2.Text := IntToStr(ListBox2.Items.Count );
        // now see how fast eachcan be sorted
        // first - list boxes
        iTime := Now;
        CompareLists( ListBox1.Items, ListBox2.Items, ListBox3.Items );
        iTime := Now - iTime;
        EditCompareListBoxes.Text := TimeToStr( iTime );
        EditCount3.Text := IntToStr(ListBox3.Items.Count );

        // and Lists
        iTime := Now;
        CompareLists( List1, List2, List3 );
        iTime := Now - iTime;
        EditCompareLists.Text := TimeToStr( iTime );
      finally
        List3.Free;
      end;
    finally
      List2.Free;
    end;
  Finally
    List1.Free;
  End;
end;

procedure TFormTest.CompareLists(const Lista, Listb, Listc: TStrings);
var
  a, b, amax, bmax : integer;
begin
  aMax := Lista.Count;
  bMax := Listb.Count;

  Listc.Clear;

  a:=0;
  b:=0;

  while (a< aMax) and (b<bMax) do
  begin
    // Once either index goes past end of list we are done;
    case Sign( CompareStr( Lista[a], Listb[b])) of  // oer CompareText if not case sensitive
      -1:
      begin
        // ista[a] < List0[ b ]b
        inc( a );
      end;
      0:
      begin
        // a = b
        Listc.add( Lista[a] );  // same so could be either
        inc(a);
        inc(b);
      end;
      1:
      begin
        inc( b );
      end;
    end;
  end;
end;

end.
| improve this answer | |
  • Thanks for the code. I will study it in depth, and (if necessary) modify it to suit my needs. – Kristian Sander Sep 28 at 17:51
0

To compare two sorted lists you can compare the first entries then advance one or both lists based on that comparison:

  • equal : duplicate, advance to next on both lists
  • first > than second, advance to next on 2nd list
  • second > first, advance to the next on 1st list
  • one or both lists end : done

As others have mentioned comparing the data inside list controls will be much slower then between string lists or arrays.

| improve this answer | |

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