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I'd like to know how I can delete numbers from a String. I try to use StringReplace and I don't know how to tell the function that I want to replace numbers.

Here's what I tried:

StringReplace(mString, [0..9], '', [rfReplaceAll, rfIgnoreCase]);
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Well, Delphi XE and up support regular exression which can be used for string replace. It is in RegularExpressions and RegularExpressionsCore units –  Hendra Jun 1 '12 at 5:44
    
Okay thanks, I'll take a look at it. –  Charley14 Jun 1 '12 at 12:15

5 Answers 5

up vote 11 down vote accepted

Simple but effective. Can be optimized, but should get you what you need as a start:

function RemoveNumbers(const aString: string): string;
var
  C: Char;
begin
  Result := '';
  for C in aString do begin
      if not CharInSet(C, ['0'..'9']) then
      begin
        Result := Result + C;
      end;
    end;
end;
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2  
This has to be the easiest way to do so, and shortest code. –  Jerry Dodge Jun 1 '12 at 0:43
    
Agreed. Although I am a BIG fan of regular expressions, Nick's solution to this particular problem is way faster. Anything more complicated and I'd go with RegEx in a heartbeat! –  Cesar Marrero Jun 1 '12 at 17:06

Pretty quick inplace version.

procedure RemoveDigits(var s: string);
var
  i, j: Integer;
  pc: PChar;
begin
  j := 0;
  pc := PChar(@s[1]);
  for i := 0 to Length(s) - 1 do
    if pc[i] in ['0'..'9'] then 
               //if CharInSet(pc[i], ['0'..'9']) for Unicode version
      Inc(j)
    else
      pc[i - j] := pc[i];
  SetLength(s, Length(s) - j);
end;
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1  
+1 for an inplace substitution, if the original string was large this type of method is much more memory efficient. any str := str + ? or other method that generates temporary string can very quickly buildup a large memory footprint which I've com across when simple conversion routines ( hex to bin, base64, etc ) are used on large data sets (a few meg ) –  Dampsquid Jun 1 '12 at 10:09

This has the same output as Nick's version, but this is more than 3 times as fast with short strings. The longer the text, the bigger the difference.

function RemoveNumbers2(const aString: string): string;
var
  C:Char; Index:Integer;
begin
  Result := '';
  SetLength(Result, Length(aString));
  Index := 1;
  for C in aString do
    if not CharInSet(C, ['0' .. '9']) then
    begin
      Result[Index] := C;
      Inc(Index);
    end;
  SetLength(Result, Index-1);
end;

Don't waste precious CPU cycles if you don't have to.

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Well I was tired of looking for already build functions so I've create my own:

   function RemoveNumbers(const AValue: string): string;
   var
      iCar : Integer;
      mBuffer : string;
   begin
      mBuffer := AValue;

      for iCar := Length(mBuffer) downto 1 do
      begin
         if (mBuffer[iCar] in ['0'..'9']) then
            Delete(mBuffer,iCar,1);
      end;
      Result := mBuffer;
   end;
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4  
Your function will fail, the for loop counter is cached and you're shortening your string in the loop. –  Sertac Akyuz May 31 '12 at 18:10
2  
But you could resolve this issue by reverting the order of deletes (using for ... downto instead). Only remember that characters in string are indexed from 1, not from 0. –  Andriy M May 31 '12 at 18:13
    
Okay thanks, I've edited my code. –  Charley14 May 31 '12 at 18:21
1  
I like Nick's version better. He wrote cleaner and more readable code and unlikely to break. And yours uses more memory and is probably slower. In a pathological case where I pass in 'a123908908203809....' (a 2 gigabyte string where only the first character is a non-digit) string, his would still work. Sweet. Yours? not so well. In a reverse case, with medium size strings, and only one digit to remove, yours might well be faster and the memory use difference might not matter, but its still less readable. –  Warren P Jun 1 '12 at 0:31
    
Thank you guys for all this information. –  Charley14 Jun 1 '12 at 12:17

StringReplace does not accept a set as the second argument. Maybe someone will have a more suitable approach, but this works:

StringReplace(mString, '0', '', [rfReplaceAll, rfIgnoreCase]);
StringReplace(mString, '1', '', [rfReplaceAll, rfIgnoreCase]);    
StringReplace(mString, '2', '', [rfReplaceAll, rfIgnoreCase]);

etc.

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4  
Yuck! Can you say DRY (Don't Repeat Yourself)? Sorry, but I have to downvote this as a horrific solution to the question asked. –  Ken White May 31 '12 at 20:07
    
Agree.. you could at least loop.. for i := 0 to 9 do StringReplace(mString, I, '', [rfReplaceAll, rfIgnoreCase]); –  John Easley May 31 '12 at 20:45
    
Hey, Ken, go easy on me! :-) "Horrific?" Yes, a for-loop has advantages. But, sometimes, adding complexity adds errors. John's code (unless he edits it after I've posted this) is a good example: first, it fails to compile. Assuming he intended "i" to be an integer, the proper code is bit tricky. The second parameter should be chr(ord('0') + i), no? Or the for-loop should be for ch := chr('0') to chr('9'). Both add a bit of complexity & don't really answer his question directly, which is how to use StringReplace. I figured the OP could easily revise the code as you suggest. –  RobertFrank Jun 1 '12 at 0:23
    
@RobertFrank both our code snips won't work because StringReplace is a function :) That said, "horrific" is a strong word here... –  John Easley Jun 1 '12 at 11:47

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