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Hi I'm using Delphi 7. I would like to count the number of repetitions of every word in a large text (500 words). How could I do it?

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Sounds like homework to me. –  mj2008 Jan 28 '10 at 17:01
    
too old for that :p –  Moez Jan 28 '10 at 20:37
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5 Answers

up vote 2 down vote accepted

here is a kind of brute force way of doing it. it uses a string list and stores the count of each word cast as an object to the list item.

var
  i : integer;
  iCount : integer;
  idxFound : integer;
  someText : string;
  s : TStringList;
  oneWord : string;

begin
  someText := 'this that theother and again this that theother this is not that';
  oneWord := '';

  s := TStringList.Create;
  for i := 1 to length(someText) do begin
    if someText[i] = ' ' then begin
      idxFound := s.indexof(oneWord);
      if idxFound >= 0 then begin
        iCount := integer(s.objects[idxFound]);
        s.Objects[idxFound] := TObject(iCount + 1);
      end
      else begin
        s.AddObject(oneWord, TObject(1));
      end;
      oneWord := '';
    end
    else begin
      oneWord := oneWord + someText[i];
    end;
  end;

  if oneWord <> '' then
    if idxFound >= 0 then begin
      iCount := integer(s.objects[idxFound]);
      s.Objects[idxFound] := TObject(iCount + 1);
    end
    else begin
      s.AddObject(oneWord, TObject(1));
    end;

  // put the results on the screen in a text box.
  memo1.Text := '';
  for i := 0 to s.Count - 1 do
    memo1.Lines.Add(intToStr(integer(s.Objects[i])) + ' ' + s[i]);
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if it is a sorted string list, then you can use "s.find" instead of "s.indexof". also, you might want to set the case sensitivity of the string list as appropriate for your implementation. –  Don Dickinson Jan 28 '10 at 15:10
    
Thanks Don : this is exactly what I want to do ! Is there any way to use a different delimiter (besides the space ' ')? –  Moez Jan 28 '10 at 15:33
    
sure, just change the line: if someText[i] = ' ' then begin to check for whatever delimiter(s) you want –  Don Dickinson Jan 28 '10 at 16:09
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I don't recall any built-in Delphi functions that directly do this. But a simple O(n*Log(n)) method would be to sort the words and then scan and count them.

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Hi Mark : could you please give me an example of the implementation? –  Moez Jan 28 '10 at 14:52
    
@mo3ez: Sorry - I don't have the time available right now. However, Marco's word counting is a good start for the parsing into words. Put the individual words into an array and sort them. See the SO post stackoverflow.com/questions/41733/… for a good example of sorting. –  Mark Wilkins Jan 28 '10 at 15:14
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If we are talking the number of words in a text string, what you could do was to parse the string, and identify the words. Add the words to a map, where the identifier is the word it self, and the value a number. This number is increased if the word you find in the string already exists in the map.

map<string, int>
foreach word in string
    if word is in map
        map[word] = map[word] + 1
    else
        map[word] = 1
    end if
end for

Since I don't know delphi that well I have tried to provide you with a pseudo code example.

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a TSTringList can also be used for the "list of words". Run through all of your words, and add each and everyone to the tStringlist as a new item. When your done, you have a TOTAL count, to determine the unique words, sort the list, and in a loop see if the current word is different from the previous one...if so, then increment your unique word count.

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From the FPC strutils library:

function WordCount(const S: string; const WordDelims: TSysCharSet): Integer;

var
 P,PE : PChar;

begin
  Result:=0;
  P:=Pchar(pointer(S));
  PE:=P+Length(S);
  while (P<PE) do
    begin
    while (P<PE) and (P^ in WordDelims) do
      Inc(P);
    if (P<PE) then
      inc(Result);
    while (P<PE) and not (P^ in WordDelims) do
      inc(P);
    end;
end;

wordcount (test,[',','.',' ','!','?',#10,#13]); would be a good first attempt. Its meant for simple magnitude calculations, since it e.g. doesn't take care of abbreviated words.

Of course if you hand this in as homework, you'll probably be asked to explain its workings.

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1  
While that example will count the number of words in a string, it won't count the number of occurrences each word has, as the author requested. It should be capable of this though given a few minor adjustments. –  TommyA Jan 28 '10 at 14:50
    
Thank you Marco. What the second parameter is for? How can I list all the 'unique' words of a text, and then pass them one by one to the function in order to get the stats I need (occurences per word). –  Moez Jan 28 '10 at 14:51
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