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5

Depending on your needs, you can use re.sub().. >>> import re >>> re.sub(r'(?<=\t)(?=\t)', '999999999', 'foo\tbar\t\tbaz') 'foo\tbar\t999999999\tbaz' Or the replace() method to do this: >>> s = 'foo\tbar\t\tbaz' >>> s.replace('\t\t', '\t999999999\t') 'foo\tbar\t999999999\tbaz' Edit >>> import fileinput ...


4

Python's re module only allows fixed-length strings using look-behinds. If you want to experiment and be able to use variable length look-behinds in regexes, use the alternative regex module: >>> import regex >>> s = '123abc456someword 0001abde19999anotherword' >>> regex.findall(r'(?i)(?<=\d+[a-z]+\d+)[a-z]+', s) ['someword', ...


3

The problem is that the .+ in your regex ^(.+)&gt;.+ Debuggex Demo is greedy, meaning (as you have discovered), that it greedily consumes all instances of &gt; except the last. Changing this to reluctant ^(.+?)&gt;.+ Debuggex Demo is what you want: it reluctantly captures only up through the first &gt; Elements that are greedy ...


3

You need to make the pattern to does a non-greedy match by adding ? quatifier after +, ^(.+?)&gt;.*$ DEMO Your Java code would be, str = str.replaceAll("^(.+?)&gt;.*$", "$1"); Then replace the whole string with the first captured group.


3

Convert it to Non-capturing group and get the matched group from index 1. (?:\d+\w+\d+)(\w+\b) here is DEMO If you are interested in [a-z] only then change \w to [a-z] in above regex pattern. Here \b is added to assert position at a word boundary. sample code: import re p = re.compile(ur'(?:\d+\w+\d+)(\w+\b)', re.IGNORECASE) test_str = ...


3

Possible... with Regex Trickery! Disclaimer: This is not meant to be a practical solution, but an illustration of a way to use an extension of a terrific regex hack. Moreover, it only works on regex engines that allow capture groups to refer to themselves. For instance, you could use it in Notepad++, as it uses the PCRE engine—but not in Java. Let's say ...


3

Use this in multi-line mode (m flag in non-Ruby flavor): ^(?!.*>\s*$).* See the matches in the demo To set the m flag, depending on flavor: (?m)^(?!.*>\s*$).* or /^(?!.*>\s*$).*/m Explanation (?m) turns on multi-line mode, allowing ^ and $ to match on each line The ^ anchor asserts that we are at the beginning of the string The $ anchor ...


3

If you are using a field that you know is in one of these formats, you can retrieve the match from Group 1 using this regex: ^(?:https?://)?(?:www\.)?([^.]+) In VB.NET: Dim ResultString As String Try ResultString = Regex.Match(SubjectString, "^(?:https?://)?(?:www\.)?([^.]+)", RegexOptions.Multiline).Groups(1).Value Catch ex As ArgumentException ...


2

If you want to match the entire URL against your pattern, you can use '^' and '$' to match the beginning and the end of the string to match. In your example you could use f = re.compile('|'.join( '(^'+p+'$)' for p in pat )) to get the regular expression '(^/FoodListAdminCP/Login[/]?$)|(^/FoodListAdminCP[/]?$)' from your pat list.


2

If the file paths are in a single file, then you can write perl -ne'$w='old';print if /[a-z]$w|$w[a-z]|[0-9]$w[0-9]/i' myfile or, if you prefer perl -ne'print if /(.)old(.)/i && "$1$2" =~ /[a-z]|[0-9]{2}/i' myfile Actually, it looks like you want to filter out members of the PATH environment variable, so you would want perl -E'say for grep ...


2

You can use the \K feature that removes all on the left from the match result: (?:var\s+)?\K([A-Za-z_]\w*)\s*=\s*([A-Za-z_]\w*) (Note that this feature is only available in recent versions of np++)


2

Get the matched group from index 2 and 4. /(?:(My Name is|Me) )(.*?) and (?:my (Hobby|interest) is )([^\\.]*)./i Online demo sample code: import re p = re.compile(ur'(?:(My Name is|Me) )(.*?) and (?:my (Hobby|interest) is )([^\\.]*).', re.IGNORECASE) test_str = u"..." re.findall(p, test_str)


2

You are mixing SQL parameters with string formatting, and that doesn't work. Pass in the parameters as a separate argument: cursor.execute('''INSERT into Details (Names, Hobby) values (%s, %s)''', (name, hobby)) db.commit() You need to use %s for the placeholders when using the MySQLdb database adapter, and you need to commit the ...


2

I believe following regex should work for you: \bSOURCE\b:?(?!( +[A-Z]+){2}\b)((?: +\w+){2,}) Online Regex Demo Basically this regex just discards any text after literal text SOURCE if that text contains 2 consecutive all capital words.


2

If you want to remove the to_timestamp(...) you can use the following regex to_timestamp\(.*?\) Here you have the working example: http://regex101.com/r/zK6lC5/1


2

Your inner condition is checked only if the value is empty. If it is not empty then your inner condition check is not even made. see outer check - if ($('input[name="nama"]').val() === "") { update: Also, better to use the JQuery match as @Valentin Mercier has suggested. That's a good one Remove the above line and your errors show up properly Edit: ...


2

Remove the parent condition if ($('input[name="nama"]').val() === "") as it is nonsense if you want to analyse your input value. And for matching the regex, use the jQuery style method: $('input[name="nama"]').val().match(justChar);


2

The space character in 123 Lane is not considered to be alphanumeric. You need /^[a-z0-9 ]+$/i The i turns on case-insensitive matching. In JS: if (/^[a-z0-9 ]+$/i.test(yourString)) { // It matches! } else { // Nah, no match... }


2

You have the right idea. $1, however, is not a variable where you use it. Change the second argument to replace to this: function (match, $1) { return il8n[userLang.toLowerCase()][$1.toLowerCase()]; } replace can take a function as an argument. Then, shorten the capture group in the regex to this: /{T_(.*?)}/g This saves you some unnecessary string ...


2

Search (http://\S+/)video(/\S+), replace with $1swf$2 In VB.NET: Dim ResultString As String Try ResultString = Regex.Replace(SubjectString, "(http://\S+/)video(/\S+)", "$1swf$2", RegexOptions.IgnoreCase) Catch ex As ArgumentException 'Syntax error in the regular expression End Try Explanation The regex matches the string in three parts: Group ...


2

(.?*) should be (.*?) - that's the source of your error. Also, remember to escape the dot unless you want it to match any character. And since the www. part is optional, you need to add a ? quantifier to that group as well.


2

Since there is only one number in the file, how about simply using this: \d+ In C#: var myRegex = new Regex(@"\d+"); string resultString = myRegex.Match(yourString).Value; Console.WriteLine(resultString);


1

Your regex check is misplaced, it is under the condition if ($('input[name="nama"]').val() === "") So the regex will never be checked I got this working: $(document).ready(function(){ var justChar = /^[a-zA-Z]+$/; $('input[name="submit"]').click(function(){ if($('input[name="nama"]').val() === "") { ...


1

str = str.replaceAll("^(.+?)&gt;.+", "$1"); Non-greedy! Alternatively, you could use str = str.replaceAll("&gt;.*", ""); which should leave you with all characters up to the first &gt;. Also String[] parts = str.split( "&lt;", 2 ); would have been an option, as you don't want to chnge str.


1

Is the user agent always the last quoted string on each line (as implied by the examples)? If so, choose your preferred option from the following: User agent in quotes (simplest) "[^"]*"$ Unquoted user agent in first capturing group: "([^"]*)"$ Unquoted user agent using lookahead: [^"]*(?="$) Debuggex Demo


1

The upcoming Unicode Emoji data files would help with this. At the moment these are still drafts, but they might still help you out. By parsing http://www.unicode.org/reports/tr51/emoji-data.txt you could get quite easily get a list of all emoji in the Unicode standard. (Note that some of these emoji consist of multiple code points.) Once you have such a ...


1

This should work: var derPro = ['mak','mind', 'mass']; var searchTerm = new RegExp('\\b((?:' + derPro.join('|') + ')(?:er?)?)\\b', "gi"); //=> /\b((?:mak|mind|mass)(?:er?)?)\b/gi // now match the regex in a while loop var matches=[] while (m = searchTerm.exec('mass maker minde')) matches.push(m[1]); console.log(matches); //=> ["mass", "maker", ...


1

You can run a search on the string using the search expression [^0-9()+\-*/] defined as C++ string as "[^0-9()+\\-*/]" which finds any character which is NOT a digit, a round bracket, a plus or minus sign (in real hyphen), an asterisk or a slash. The search with this regular expression search string should not return anything otherwise the string contains a ...


1

You cannot use query string in Redirect directive. You need RewriteCond in mod_rewrite like this: RewriteEngine On RewriteCond %{THE_REQUEST} \s/+comp_all\.php\?vid_mod=([0-9]+) [NC] RewriteRule ^ /comparatif-voiture/Audi/A4/%1? [R=301,L] RewriteCond %{REQUEST_FILENAME} !-f RewriteCond %{REQUEST_FILENAME} !-d RewriteRule ...


1

+ quantifier is greedy so it will try to find maximal possible match like .+b will match abababcd ^^^^^^ instead of abababcd ^^ If you want to make this quantifier find minimal possible match make it reluctant by adding ? after it. This time .+?b would match abababcd ^^ So change your regex to ^(.+?)&gt;.+. You can also use some simpler ...



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