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Regular expressions provide a declarative language to match patterns within strings. They are commonly used for string validation, parsing, and transformation. Since regular expressions are not fully standardized, all questions with this tag should also include a tag specifying the applicable programming language or tool. NOTE: Asking for HTML, JSON, etc. regexes tends to be met with negative reactions. If there is a parser for it, use that instead.

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103
votes
There are several libraries. Here are two examples: ❐ Apache Commons Lang Apache Commons Lang includes a special class to escape or unescape strings (CSV, EcmaScript, HTML, Java, Json, XML): org.a …
answered May 4 '12 by Paul Vargas
0
votes
If you are using Java, String normalizeSpace = str.replaceAll("\\s+", " "); Commons Lang 2.6 in the class StringUtils contains the method normalizeSpace with the same function (inclusive control ch …
answered Apr 24 '12 by Paul Vargas
2
votes
You can try the following regular expression: (?:^|\s)if(?:\s) Explanation of the regular expression: NODE EXPLANATION ------------------------------------------------------------ (?: …
answered May 26 '17 by Paul Vargas
8
votes
Maybe you want to use Google Guava: Code: import static com.google.common.base.CaseFormat.LOWER_CAMEL; import static com.google.common.base.CaseFormat.LOWER_UNDERSCORE; public class Main { publ …
answered Mar 31 '14 by Paul Vargas
16
votes
May be you want to use the POSIX character class \p{XDigit}, so: ^\p{XDigit}+$ Additionally, if you plan to use the regular expression very often, it is recommended to use a constant in order to avo …
answered Feb 14 '16 by Paul Vargas
9
votes
You can try the following regular expression: \s*;\s*(?=([^']*'[^']*')*[^']*$) Here is the example: public static void main(String[] args) { String input = "select * from table1 where col1 = …
answered Mar 3 '15 by Paul Vargas
13
votes
If it is a function that continuously you are using, there is a problem. Each regular expression is compiled again for each call. It is best to create them as constants. You could have something like …
answered May 31 '13 by Paul Vargas
8
votes
You don't need reinvent the wheel. You can use org.apache.commons.lang3.StringEscapeUtils for unescape Java strings. Unescapes any Java literals found in the String. For example, it will turn a sequen …
answered Apr 27 '12 by Paul Vargas
3
votes
You can try the following regular expression: (?i)\bvirtue('?s)?\b Additionally, if you plan to use the regular expression very often, it is recommended to use a constant in order to avoid recomp …
answered Sep 29 '15 by Paul Vargas
1
vote
Try the next: ^(.*)(?:(\r|\r?\n){2})(.*)$
answered Sep 5 '13 by Paul Vargas
2
votes
You can try the following regular expression: (?<=")[^"]*(?="\s|"$)|[^\s"]+ Additionally, if you plan to use the regular expression very often, it is recommended to use a constant in order to avoid …
answered Aug 5 '15 by Paul Vargas
0
votes
If you want count the parent brackets, you can try the next: public static void main(String[] args) { String input = "[[]] [[]] [[[]]]"; int parents = 0; Deque<Character> deque = new Li …
answered Aug 21 '13 by Paul Vargas
2
votes
You can try the regular expression: // (0[1-9]|[12][0-9]|[3][01])[._-](0[1-9]|1[0-2])[._-](2[0-9]{3}) "(0[1-9]|[12][0-9]|[3][01])[._-](0[1-9]|1[0-2])[._-](2[0-9]{3})"
answered Dec 13 '14 by Paul Vargas
2
votes
For as is, use: String str = Pattern.compile(cmd, Pattern.LITERAL) .matcher(message) .replaceFirst("");
answered Dec 27 '13 by Paul Vargas
1
vote
What about the next: (?<=<)[^@]* e.g.: private static final Pattern REGEX_PATTERN = Pattern.compile("(?<=<)[^@]*"); public static void main(String[] args) { String input = "<1001@10. …
answered Aug 27 '13 by Paul Vargas

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