Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I have a string comprising numerous words. How do I find and count the total amount of times that a particular word appears?

 E.g "hello-apple-banana-hello-pear"

How would I go about finding all the "hello's" in the example above?

Thanks.

share|improve this question
    
Finding a specific substring can be done with AnsiPos and implementing a count is trivial with AnsiPos. There are many pitfalls here though, please give us some more background information. –  Jens Mühlenhoff Sep 2 '11 at 13:10
add comment

4 Answers

In Delphi XE you can use StrUtils.SplitString.

Something like this

var
    Words: TstringDynArray;
    Word: string;
    WordCount: Integer;
begin
    WordCount := 0;
    Words := SplitString('hello-apple-banana-hello-pear', '-');
    for Word in Words do
    begin
        if Word = 'hello' then
            inc(WordCount);
    end;
share|improve this answer
2  
+1 so much more readable than anything using StrPos... –  jpfollenius Sep 3 '11 at 19:18
add comment

This would depend entirely on how you define a word and the text from which you wish to pull the words. If a "word" is everything between spaces, or "-" in your example, then it becomes a fairly simple task. If, however, you want to deal with hyphenated words, abbreviations, contractions, etc. then it becomes a lot more difficult.

More information please.

EDIT: After rereading your post, and if the example you give is the only one you want, then I'd suggest this:

function CountStr(const ASearchFor, ASearchIn : string) : Integer;
var
  Start : Integer;
begin
  Result := 0;
  Start := Pos(ASearchFor, ASearchIn);
  while Start > 0 do
    begin
      Inc(Result);
      Start := PosEx(ASearchFor, ASearchIn, Start + 1);
    end;
end;

This will catch ALL instances of a sequence of characters.

share|improve this answer
3  
In the case where you do not repeating sequences (like "atat") counted more than once, change the "Start :=" line in the while loop to read Start := PosEx(ASearchFor, ASearchIn, Start + Length(ASearchFor)); –  Jerry Gagnon Sep 2 '11 at 13:39
add comment

I'm sure there is plenty of code around to do this sort of thing, but it's easy enough to do it yourself with the help of Generics.Collections.TDictionary<K,V>.

program WordCount;

{$APPTYPE CONSOLE}

uses
  SysUtils, Character, Generics.Collections;

function IsSeparator(const c: char): Boolean;
begin
  Result := TCharacter.IsWhiteSpace(c);//replace this with whatever you want
end;

procedure PopulateWordDictionary(const s: string; dict: TDictionary<string, Integer>);

  procedure AddItem(Item: string);
  var
    Count: Integer;
  begin
    if Item='' then
      exit;
    Item := LowerCase(Item);
    if dict.TryGetValue(Item, Count) then
      dict[Item] := Count+1
    else
      dict.Add(Item, 1);
  end;

var
  i, len, Start: Integer;
  Item: string;
begin
  len := Length(s);
  Start := 1;
  for i := 1 to len do begin
    if IsSeparator(s[i]) then begin
      AddItem(Copy(s, Start, i-Start));
      Start := i+1;
    end;
  end;
  AddItem(Copy(s, Start, len-Start+1));
end;

procedure Main;
var
  dict: TDictionary<string, Integer>;
  pair: TPair<string, Integer>;
begin
  dict := TDictionary<string, Integer>.Create;
  try
    PopulateWordDictionary('hello  apple banana Hello pear', dict);
    for pair in dict do
      Writeln(pair.Key, ': ', pair.Value);
  finally
    dict.Free;
  end;
end;

begin
  try
    Main;
  except
    on E: Exception do
      Writeln(E.ClassName, ': ', E.Message);
  end;
end.

Output:

hello: 2
banana: 1
apple: 1
pear: 1

Note: I'm working with Delphi 2010 and don't have SplitString() available.

share|improve this answer
add comment

A very clever implementation I saw somewhere on the web:

{ Returns a count of the number of occurences of SubText in Text }
function CountOccurences( const SubText: string;
                          const Text: string): Integer;
begin
  if (SubText = '') OR (Text = '') OR (Pos(SubText, Text) = 0) then
    Result := 0
  else
    Result := (Length(Text) - Length(StringReplace(Text, SubText, '', [rfReplaceAll]))) div  Length(subtext);
end;  { CountOccurences }
share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.