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Delphi 7

How do i remove leading zeros in a delphi string?

Example:

00000004357816

function removeLeadingZeros(ValueStr: String): String
begin
 result:= 
end;
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4 Answers 4

up vote 10 down vote accepted
function removeLeadingZeros(const Value: string): string;
var
  i: Integer;
begin
  for i := 1 to Length(Value) do
    if Value[i]<>'0' then
    begin
      Result := Copy(Value, i, MaxInt);
      exit;
    end;
  Result := '';
end;

Depending on the exact requirements you may wish to trim whitespace. I have not done that here since it was not mentioned in the question.

Update

I fixed the bug that Serg identified in the original version of this answer.

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what if there is a zero in the string (not necessary in the beginning? Example: 00000004307016 –  IElite May 2 '11 at 12:19
    
That's fine, the code just removes leading zeros as you requested. Your example will return '4307016' from this code. –  David Heffernan May 2 '11 at 12:22
    
@Shane, I think you should read the code once more. It finds the first non-0 char and returns the rest of the string. –  Jørn E. Angeltveit May 2 '11 at 12:23
    
I read it, i didn't understand it. I made my comment then i tested it. It errored out a couple of times cause of missing semi-colons, and the addition of an extra "End"....but i figured it out and got it to compile and was able to test –  IElite May 2 '11 at 12:43
6  
Hmm... ShowMessage(removeLeadingZeros('000')); –  user246408 May 2 '11 at 13:22

Use JEDI Code Library to do this:

uses JclStrings;

var
  S: string;

begin
  S := StrTrimCharLeft('00000004357816', '0');
end.
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4  
You should probably mention (in case the OP doesn't know) that this requires the JEDI Code Library (JCL), and provide a link. –  Ken White May 2 '11 at 12:40

Code that removes leading zeroes from '000'-like strings correctly:

function TrimLeadingZeros(const S: string): string;
var
  I, L: Integer;
begin
  L:= Length(S);
  I:= 1;
  while (I < L) and (S[I] = '0') do Inc(I);
  Result:= Copy(S, I);
end;
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This is what I would have done. Much more efficient than David's answer. –  lkessler May 2 '11 at 14:14
1  
Nice solution. From a practicality standpoint, it will be more useful if the trim char ('0' in this case) is passed in as a parameter, then it can trim any char. –  Chris Thornton May 2 '11 at 14:32
    
I am not sure if this is "much more efficient than David's answer", but it is slightly more elegant and, most importantly, doesn't show the bug in David's code. –  Andreas Rejbrand May 2 '11 at 15:04
    
+1 I wouldn't worry too much about efficiency. Getting it right is more important! For what it's worth there's no real difference in efficiency. –  David Heffernan May 2 '11 at 15:44

Probably not the fastest one, but it's a one-liner ;-)

function RemoveLeadingZeros(const aValue: String): String;
begin
  Result := IntToStr(StrToIntDef(aValue,0));
end;

Only works for numbers within the Integer range, of course.

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Also only if the string is actually a number. I.e. no alpha chars at all. –  Craig Young May 2 '11 at 15:47

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