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I never used TPerlRegEx before and it is my first time for regex expressions.

I am looking for a small example using TPerlRegEx in Delphi Xe2 to remove the brackets and quotes as follows:

input string:

["some text"]


some text

single line, no nested brackets or quotes. I have used Regexbuddy to create and test the regex however it is not giving me the result.

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Will those characters always be in the input string? If so, you don't need regular expressions. s := Copy(s, 3, Length(s) - 4) –  Rob Kennedy Apr 11 '13 at 4:57
Here is an example of removing matching () pairs, RegEx remove brackets from string. Change it to remove matching [] square brackets and "" quotes. –  LU RD Apr 11 '13 at 7:01
@Rob Kennedy, sure I can do that way, but I have not found a regex example with delphi that I could learn like that –  Eduardo E Apr 11 '13 at 12:28
@LU RD: I have tried that. However I could not make the TPerlRegEx give me back only the matched expression. I am missing something, this is why I am looking for a delphi example –  Eduardo E Apr 11 '13 at 12:29
Why don't you use built in regex classes –  David Heffernan Apr 12 '13 at 7:29

2 Answers 2

up vote 3 down vote accepted

This works in Regex Buddy:





Use like this:

  RegEx: TPerlRegEx;
  RegEx := TPerlRegEx.Create(nil);
    Regex.RegEx := '\["(.+?)"\]';
    Regex.Subject := SubjectString;  // ["any text between brackets and quotes"]
    Regex.Replacement := '$1';
    Result := Regex.Subject;

How it works:

Match the character "[" literally «\[»
Match the character """ literally «"»
Match the regular expression below and capture its match into backreference number 1 «(.+?)»
   Match any single character that is not a line break character «.+?»
      Between one and unlimited times, as few times as possible, expanding as needed (lazy) «+?»
Match the character """ literally «"»
Match the character "]" literally «\]»

Created with RegexBuddy
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Why is it needed to set Replacement to '$1'? –  Eduardo E Apr 11 '13 at 14:04
@eelias because what is matched with (.+?) pattern i.e. between double quotes becomes a capturing group. You can reference capturing groups by index. In the case of ["some text"] the text <some text> will be captured as group 1. Then he replaces all occurrences of ["(.+?)"] with contents of capturing group 1 (i.e. $1) which is <some text> in your case. You can find more info here: –  iPath ツ Apr 11 '13 at 14:55

Examples abound, including one in the documentation, so I assume the question is really about what values to assign to which properties to get the specific desired output.

Set the RegEx property to the regular expression that you want to match, and set Replacement to the value you want the matched sequences to be replaced with. One way might be to set RegEx to \[|\]|" and Replacement to the empty string. That will remove all brackets and quotation marks from anywhere in the string.

To instead remove just the pairs of brackets and quotation marks that surround the string, try setting RegEx to ^\["(.*)"\]$ and Replacement to \1. That will match the entire string, and then replace it with the first matched subexpression, which excludes the four surrounding characters. To turn a string like ["foo"] ["bar"] into foo bar, then remove the start and end anchors and add a non-greedy qualifier: \["(.*?)"\].

Once you've set up the regular expression and the replacement, then you're ready to assign Subject to the string you want to process. Finally, call ReplaceAll, and when it's finished, the new string will be in Subject again.

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Thank you to take time to explain. I have learned from that. –  Eduardo E Apr 11 '13 at 13:43

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