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Which is the best method to detect if a string is Base64Encoded or not (using Delphi)?

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4 Answers 4

Best you can do is try to decode it. If the decode fails then the input was not base64 encoded. It the string successfully decodes then the input might have been base64 encoded.

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3  
this will depend how the component or function used to decode was implemented, for example if you uses the TIdDecoderMIME component of Indy to decode a invalid Base64 string the component does not raise any exceptio or error. –  RRUZ Aug 1 '11 at 7:51
3  
@RRUZ Good point. Most important point to get across though is that just because a string can be decoded, doesn't mean it was originally encoded. –  David Heffernan Aug 1 '11 at 7:53

You can check if the string only contains Base64 valids chars

function StringIsBase64(const InputString : String ) : Boolean;
const
  Base64Chars: Set of AnsiChar = ['A'..'Z','a'..'z','0'..'9','+','/','='];
var
  i : integer;
begin
  Result:=True;
   for i:=1 to Length(InputString) do
   {$IFDEF UNICODE}
   if not CharInSet(InputString[i],Base64Chars) then
   {$ELSE}
   if not (InputString[i] in Base64Chars) then
   {$ENDIF}
   begin
     Result:=False;
     break;
   end;
end;

The = char is used for padding so you can add an aditional valiation to the function for padded base64 strings checking if the length of the string is mod 4

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2  
+1, though proving the reverse may be a better concept - i.e if the string contains characters outside the valid range, then it is NOT Base64, otherwise it may or may noth be, as discussed in other answers. –  HMcG Aug 1 '11 at 11:25
1  
@RRUZ, this ignores the = sign rules... –  TLama Oct 18 '12 at 13:57

In addition to RRUZ answer you can also check the length of the string (is it a multiple of 4).

function IsValidBase64(const aValue: string): Boolean;
var
  i: Integer;
  lValidChars: set of Char;
begin
  Result := aValue <> '';
  lValidChars := ['a'..'z', 'A'..'Z', '0'..'9', '/', '+'];
  //length of string should be multiple of 4
  if Length(aValue) mod 4 > 0 then
    Result := False
  else
    for i := 1 to Length(aValue) do
    begin
      if aValue[i] = '=' then
      begin
        if i < Length(aValue) - 1 then
        begin              
          Result := False;
          Exit;
        end
        else
          lValidChars := ['='];
      end
      else if not (aValue[i] in lValidChars) then
      begin
        Result := False;
        Break;
      end;
    end;
end;

Please note that this code is Delphi 7 code and not adjusted for Unicode use.

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Even then it is only a good guess. It isn't strange for 'random' strings to pass this test and not being Base64. –  Lars Truijens Aug 1 '11 at 7:53
2  
@Lars The function would be better named MightBeBase64 –  David Heffernan Aug 1 '11 at 7:55
    
@Lars Truijens: Yes, you are right. If you really want to do this right, you should check if the = only exists at the end and only one or two of them. –  The_Fox Aug 1 '11 at 7:56
1  
@TLama: you're absolutly right, I adjusted the code. –  The_Fox Oct 18 '12 at 19:02
1  
@TLama: that sometimes happens when you do a quick edit from a laptop with kids running around :) –  The_Fox Oct 18 '12 at 22:28

As was already told here, there is no reliable verification if a certain string is Base64 encoded or not, so even when you consider the input as a valid Base64 encoded string, it doesn't mean the string is actually encoded that way. I'm posting here just another version of a validation function, which according to RFC 4648 verifies:

  • if the input string is not empty and its length is multiple of 4
  • if the input string contains at most two padding characters and only at the end of the string
  • if the input string contains only characters from the Base64 alphabet (see the Page 5, Table 1)

function IsValidBase64EncodedString(const AValue: string): Boolean;
const
  Base64Alphabet = ['A'..'Z', 'a'..'z', '0'..'9', '+', '/'];
var
  I: Integer;
  ValLen: Integer;
begin
  ValLen := Length(AValue);
  Result := (ValLen > 0) and (ValLen mod 4 = 0);
  if Result then
  begin
    while (AValue[ValLen] = '=') and (ValLen > Length(AValue) - 2) do
      Dec(ValLen);
    for I := ValLen downto 1 do
      if not (AValue[I] in Base64Alphabet) then
      begin
        Result := False;
        Break;
      end;
  end;
end;
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1  
P.S. downto iteration I've used here because of suspecting possible 3rd = sign char at the end of the string. –  TLama Oct 18 '12 at 13:38
1  
+1. I think that IsValidBase64EncodedString is better name than CanBe.... because after all, it does indicate that the input string is in fact a valid base64 encoded string. –  kobik Oct 18 '12 at 14:21
    
@kobik, you're right, I'll change that... Thanks! –  TLama Oct 18 '12 at 14:23

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