37

Is there any method in Java or any open source library for escaping (not quoting) a special character (meta-character), in order to use it as a regular expression?

This would be very handy in dynamically building a regular expression, without having to manually escape each individual character.

For example, consider a simple regex like \d+\.\d+ that matches numbers with a decimal point like 1.2, as well as the following code:

String digit = "d";
String point = ".";
String regex1 = "\\d+\\.\\d+";
String regex2 = Pattern.quote(digit + "+" + point + digit + "+");

Pattern numbers1 = Pattern.compile(regex1);
Pattern numbers2 = Pattern.compile(regex2);

System.out.println("Regex 1: " + regex1);

if (numbers1.matcher("1.2").matches()) {
    System.out.println("\tMatch");
} else {
    System.out.println("\tNo match");
}

System.out.println("Regex 2: " + regex2);

if (numbers2.matcher("1.2").matches()) {
    System.out.println("\tMatch");
} else {
    System.out.println("\tNo match");
}

Not surprisingly, the output produced by the above code is:

Regex 1: \d+\.\d+
    Match
Regex 2: \Qd+.d+\E
    No match

That is, regex1 matches 1.2 but regex2 (which is "dynamically" built) does not (instead, it matches the literal string d+.d+).

So, is there a method that would automatically escape each regex meta-character?

If there were, let's say, a static escape() method in java.util.regex.Pattern, the output of

Pattern.escape('.')

would be the string "\.", but

Pattern.escape(',')

should just produce ",", since it is not a meta-character. Similarly,

Pattern.escape('d')

could produce "\d", since 'd' is used to denote digits (although escaping may not make sense in this case, as 'd' could mean literal 'd', which wouldn't be misunderstood by the regex interpeter to be something else, as would be the case with '.').

6
  • How would such a method determine the difference beween a d meant as meta character and a d in text to match? (quote("d+ Dollars?") would become "\\d+ \\Dollar\\s?" in a trivial quoting method.)
    – rsp
    May 19 '12 at 10:49
  • Correct, which is exactly why I am asking for a method that would escape individual characters! :-)
    – PNS
    May 19 '12 at 10:52
  • To escape only individual characters you might play around with matching a word boundary, something like: s/\b([dswDSW])\b/\\$1/g;
    – rsp
    May 19 '12 at 10:55
  • 1
    Can you take a step back and explain why you want this method? Why don't you just use "\\d"? If you know you want a digit, why not just have a constant string which does that. Why have a whole method that just prepends "\\"?
    – Gray
    May 19 '12 at 12:22
  • 1
    Because, as the question mentions, I want to dynamically build the regular expression, base on user input.
    – PNS
    May 19 '12 at 16:36
35

Is there any method in Java or any open source library for escaping (not quoting) a special character (meta-character), in order to use it as a regular expression?

If you are looking for a way to create constants that you can use in your regex patterns, then just prepending them with "\\" should work but there is no nice Pattern.escape('.') function to help with this.

So if you are trying to match "\\d" (the string \d instead of a decimal character) then you would do:

// this will match on \d as opposed to a decimal character
String matchBackslashD = "\\\\d";
// as opposed to
String matchDecimalDigit = "\\d";

The 4 slashes in the Java string turn into 2 slashes in the regex pattern. 2 backslashes in a regex pattern matches the backslash itself. Prepending any special character with backslash turns it into a normal character instead of a special one.

matchPeriod = "\\.";
matchPlus = "\\+";
matchParens = "\\(\\)";
... 

In your post you use the Pattern.quote(string) method. This method wraps your pattern between "\\Q" and "\\E" so you can match a string even if it happens to have a special regex character in it (+, ., \\d, etc.)

1
  • 1
    I know about quote() and if you look at the sample output above it includes \Q and \E. Indeed, I was just looking for a method to produce the escaped version of a character for a Java regex. So, for instance, the escaped comma would remain a comma, but the escaped period should become \. and so on.
    – PNS
    May 19 '12 at 14:21
31

I wrote this pattern:

Pattern SPECIAL_REGEX_CHARS = Pattern.compile("[{}()\\[\\].+*?^$\\\\|]");

And use it in this method:

String escapeSpecialRegexChars(String str) {

    return SPECIAL_REGEX_CHARS.matcher(str).replaceAll("\\\\$0");
}

Then you can use it like this, for example:

Pattern toSafePattern(String text)
{
    return Pattern.compile(".*" + escapeSpecialRegexChars(text) + ".*");
}

We needed to do that because, after escaping, we add some regex expressions. If not, you can simply use \Q and \E:

Pattern toSafePattern(String text)
{
    return Pattern.compile(".*\\Q" + text + "\\E.*")
}
2
  • 3
    This one didn't work for me (at least in Scala), but this one did: "[\\{\\}\\(\\)\\[\\]\\.\\+\\*\\?\\^\\$\\\\\\|]"
    – redent84
    Oct 14 '14 at 12:23
  • There's a complete list of special chars here: stackoverflow.com/a/27454382/1490986
    – Dan King
    Sep 29 '16 at 11:43
8

The only way the regex matcher knows you are looking for a digit and not the letter d is to escape the letter (\d). To type the regex escape character in java, you need to escape it (so \ becomes \\). So, there's no way around typing double backslashes for special regex chars.

3
  • 1
    Exactly, so I want a method that would escape a character into a regex (i.e., not a literal) string.
    – PNS
    May 19 '12 at 10:54
  • You could write your own escape() method that prepends "\\" to its parameter
    – Attila
    May 19 '12 at 11:00
  • 2
    To be clear about terminology, adding a backslash to a non-special character is not called escaping. To write \d does not in any way "escape the letter" d. It instead creates a completely distinct concept, a character class that represents digits. An example of escaping would be your second case, writing `\` to represent the slash character.
    – AndrewF
    Feb 18 '16 at 17:22
5

The Pattern.quote(String s) sort of does what you want. However it leaves a little left to be desired; it doesn't actually escape the individual characters, just wraps the string with \Q...\E.

There is not a method that does exactly what you are looking for, but the good news is that it is actually fairly simple to escape all of the special characters in a Java regular expression:

regex.replaceAll("[\\W]", "\\\\$0")

Why does this work? Well, the documentation for Pattern specifically says that its permissible to escape non-alphabetic characters that don't necessarily have to be escaped:

It is an error to use a backslash prior to any alphabetic character that does not denote an escaped construct; these are reserved for future extensions to the regular-expression language. A backslash may be used prior to a non-alphabetic character regardless of whether that character is part of an unescaped construct.

For example, ; is not a special character in a regular expression. However, if you escape it, Pattern will still interpret \; as ;. Here are a few more examples:

  • > becomes \> which is equivalent to >
  • [ becomes \[ which is the escaped form of [
  • 8 is still 8.
  • \) becomes \\\) which is the escaped forms of \ and ( concatenated.

Note: The key is is the definition of "non-alphabetic", which in the documentation really means "non-word" characters, or characters outside the character set [a-zA-Z_0-9].

2
3

Use this Utility function escapeQuotes() in order to escape strings in between Groups and Sets of a RegualrExpression.

List of Regex Literals to escape <([{\^-=$!|]})?*+.>

public class RegexUtils {
    static String escapeChars = "\\.?![]{}()<>*+-=^$|";
    public static String escapeQuotes(String str) {
        if(str != null && str.length() > 0) {
            return str.replaceAll("[\\W]", "\\\\$0"); // \W designates non-word characters
        }
        return "";
    }
}

From the Pattern class the backslash character ('\') serves to introduce escaped constructs. The string literal "\(hello\)" is illegal and leads to a compile-time error; in order to match the string (hello) the string literal "\\(hello\\)" must be used.

Example: String to be matched (hello) and the regex with a group is (\(hello\)). Form here you only need to escape matched string as shown below. Test Regex online

public static void main(String[] args) {
    String matched = "(hello)", regexExpGrup = "(" + escapeQuotes(matched) + ")";
    System.out.println("Regex : "+ regexExpGrup); // (\(hello\))
}
2

Agree with Gray, as you may need your pattern to have both litrals (\[, \]) and meta-characters ([, ]). so with some utility you should be able to escape all character first and then you can add meta-characters you want to add on same pattern.

1

use

pattern.compile("\"");
String s= p.toString()+"yourcontent"+p.toString();

will give result as yourcontent as is

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