I need to split a String based on comma as seperator, but if the part of string is enclosed with " the splitting has to stop for that portion from starting of " to ending of it even it contains commas in between.
Can anyone please help me to solve this using regex with look around.
Resurrecting this question because it had a simple regex solution that wasn't mentioned. This situation sounds very similar to ["regex-match a pattern unless..."][4]
\"[^\"]*\"|(,)
The left side of the alternation matches complete double-quoted strings. We will ignore these matches. The right side matches and captures commas to Group 1, and we know they are the right ones because they were not matched by the expression on the left.
Here is working code (see online demo):
import java.util.regex.*;
import java.util.List;
class Program {
public static void main (String[] args) {
String subject = "\"Messages,Hello\",World,Hobbies,Java\",Programming\"";
Pattern regex = Pattern.compile("\"[^\"]*\"|(,)");
Matcher m = regex.matcher(subject);
StringBuffer b = new StringBuffer();
while (m.find()) {
if(m.group(1) != null) m.appendReplacement(b, "SplitHere");
else m.appendReplacement(b, m.group(0));
}
m.appendTail(b);
String replaced = b.toString();
String[] splits = replaced.split("SplitHere");
for (String split : splits)
System.out.println(split);
} // end main
} // end Program
Reference
How to match pattern except in situations s1, s2, s3
Please try this:
(?<!\G\s*"[^"]*),
If you put this regex in your program, it should be:
String regex = "(?<!\\G\\s*\"[^\"]*),";
But 2 things are not clear:
Does the " only start near the ,, or it can start in the middle of content, such as AAA, BB"CC,DD" ? The regex above only deal with start neer , .
If the content has " itself, how to escape? use "" or \"? The regex above does not deal any escaped " format.
Related
I'm pretty new to java, trying to find a way to do this better. Potentially using a regex.
String text = test.get(i).toString()
// text looks like this in string form:
// EnumOption[enumId=test,id=machine]
String checker = text.replace("[","").replace("]","").split(",")[1].split("=")[1];
// checker becomes machine
My goal is to parse that text string and just return back machine. Which is what I did in the code above.
But that looks ugly. I was wondering what kinda regex can be used here to make this a little better? Or maybe another suggestion?
Use a regex' lookbehind:
(?<=\bid=)[^],]*
See Regex101.
(?<= ) // Start matching only after what matches inside
\bid= // Match "\bid=" (= word boundary then "id="),
[^],]* // Match and keep the longest sequence without any ']' or ','
In Java, use it like this:
import java.util.regex.*;
class Main {
public static void main(String[] args) {
Pattern pattern = Pattern.compile("(?<=\\bid=)[^],]*");
Matcher matcher = pattern.matcher("EnumOption[enumId=test,id=machine]");
if (matcher.find()) {
System.out.println(matcher.group(0));
}
}
}
This results in
machine
Assuming you’re using the Polarion ALM API, you should use the EnumOption’s getId method instead of deparsing and re-parsing the value via a string:
String id = test.get(i).getId();
Using the replace and split functions don't take the structure of the data into account.
If you want to use a regex, you can just use a capturing group without any lookarounds, where enum can be any value except a ] and comma, and id can be any value except ].
The value of id will be in capture group 1.
\bEnumOption\[enumId=[^=,\]]+,id=([^\]]+)\]
Explanation
\bEnumOption Match EnumOption preceded by a word boundary
\[enumId= Match [enumId=
[^=,\]]+, Match 1+ times any char except = , and ]
id= Match literally
( Capture group 1
[^\]]+ Match 1+ times any char except ]
)\]
Regex demo | Java demo
Pattern pattern = Pattern.compile("\\bEnumOption\\[enumId=[^=,\\]]+,id=([^\\]]+)\\]");
Matcher matcher = pattern.matcher("EnumOption[enumId=test,id=machine]");
if (matcher.find()) {
System.out.println(matcher.group(1));
}
Output
machine
If there can be more comma separated values, you could also only match id making use of negated character classes [^][]* before and after matching id to stay inside the square bracket boundaries.
\bEnumOption\[[^][]*\bid=([^,\]]+)[^][]*\]
In Java
String regex = "\\bEnumOption\\[[^][]*\\bid=([^,\\]]+)[^][]*\\]";
Regex demo
A regex can of course be used, but sometimes is less performant, less readable and more bug-prone.
I would advise you not use any regex that you did not come up with yourself, or at least understand completely.
PS: I think your solution is actually quite readable.
Here's another non-regex version:
String text = "EnumOption[enumId=test,id=machine]";
text = text.substring(text.lastIndexOf('=') + 1);
text = text.substring(0, text.length() - 1);
Not doing you a favor, but the downvote hurt, so here you go:
String input = "EnumOption[enumId=test,id=machine]";
Matcher matcher = Pattern.compile("EnumOption\\[enumId=(.+),id=(.+)\\]").matcher(input);
if(!matcher.matches()) {
throw new RuntimeException("unexpected input: " + input);
}
System.out.println("enumId: " + matcher.group(1));
System.out.println("id: " + matcher.group(2));
I'm new to regular expressions and would appreciate your help. I'm trying to put together an expression that will split the example string using all spaces that are not surrounded by single or double quotes. My last attempt looks like this: (?!") and isn't quite working. It's splitting on the space before the quote.
Example input:
This is a string that "will be" highlighted when your 'regular expression' matches something.
Desired output:
This
is
a
string
that
will be
highlighted
when
your
regular expression
matches
something.
Note that "will be" and 'regular expression' retain the space between the words.
I don't understand why all the others are proposing such complex regular expressions or such long code. Essentially, you want to grab two kinds of things from your string: sequences of characters that aren't spaces or quotes, and sequences of characters that begin and end with a quote, with no quotes in between, for two kinds of quotes. You can easily match those things with this regular expression:
[^\s"']+|"([^"]*)"|'([^']*)'
I added the capturing groups because you don't want the quotes in the list.
This Java code builds the list, adding the capturing group if it matched to exclude the quotes, and adding the overall regex match if the capturing group didn't match (an unquoted word was matched).
List<String> matchList = new ArrayList<String>();
Pattern regex = Pattern.compile("[^\\s\"']+|\"([^\"]*)\"|'([^']*)'");
Matcher regexMatcher = regex.matcher(subjectString);
while (regexMatcher.find()) {
if (regexMatcher.group(1) != null) {
// Add double-quoted string without the quotes
matchList.add(regexMatcher.group(1));
} else if (regexMatcher.group(2) != null) {
// Add single-quoted string without the quotes
matchList.add(regexMatcher.group(2));
} else {
// Add unquoted word
matchList.add(regexMatcher.group());
}
}
If you don't mind having the quotes in the returned list, you can use much simpler code:
List<String> matchList = new ArrayList<String>();
Pattern regex = Pattern.compile("[^\\s\"']+|\"[^\"]*\"|'[^']*'");
Matcher regexMatcher = regex.matcher(subjectString);
while (regexMatcher.find()) {
matchList.add(regexMatcher.group());
}
There are several questions on StackOverflow that cover this same question in various contexts using regular expressions. For instance:
parsings strings: extracting words and phrases
Best way to parse Space Separated Text
UPDATE: Sample regex to handle single and double quoted strings. Ref: How can I split on a string except when inside quotes?
m/('.*?'|".*?"|\S+)/g
Tested this with a quick Perl snippet and the output was as reproduced below. Also works for empty strings or whitespace-only strings if they are between quotes (not sure if that's desired or not).
This
is
a
string
that
"will be"
highlighted
when
your
'regular expression'
matches
something.
Note that this does include the quote characters themselves in the matched values, though you can remove that with a string replace, or modify the regex to not include them. I'll leave that as an exercise for the reader or another poster for now, as 2am is way too late to be messing with regular expressions anymore ;)
If you want to allow escaped quotes inside the string, you can use something like this:
(?:(['"])(.*?)(?<!\\)(?>\\\\)*\1|([^\s]+))
Quoted strings will be group 2, single unquoted words will be group 3.
You can try it on various strings here: http://www.fileformat.info/tool/regex.htm or http://gskinner.com/RegExr/
The regex from Jan Goyvaerts is the best solution I found so far, but creates also empty (null) matches, which he excludes in his program. These empty matches also appear from regex testers (e.g. rubular.com).
If you turn the searches arround (first look for the quoted parts and than the space separed words) then you might do it in once with:
("[^"]*"|'[^']*'|[\S]+)+
(?<!\G".{0,99999})\s|(?<=\G".{0,99999}")\s
This will match the spaces not surrounded by double quotes.
I have to use min,max {0,99999} because Java doesn't support * and + in lookbehind.
It'll probably be easier to search the string, grabbing each part, vs. split it.
Reason being, you can have it split at the spaces before and after "will be". But, I can't think of any way to specify ignoring the space between inside a split.
(not actual Java)
string = "This is a string that \"will be\" highlighted when your 'regular expression' matches something.";
regex = "\"(\\\"|(?!\\\").)+\"|[^ ]+"; // search for a quoted or non-spaced group
final = new Array();
while (string.length > 0) {
string = string.trim();
if (Regex(regex).test(string)) {
final.push(Regex(regex).match(string)[0]);
string = string.replace(regex, ""); // progress to next "word"
}
}
Also, capturing single quotes could lead to issues:
"Foo's Bar 'n Grill"
//=>
"Foo"
"s Bar "
"n"
"Grill"
String.split() is not helpful here because there is no way to distinguish between spaces within quotes (don't split) and those outside (split). Matcher.lookingAt() is probably what you need:
String str = "This is a string that \"will be\" highlighted when your 'regular expression' matches something.";
str = str + " "; // add trailing space
int len = str.length();
Matcher m = Pattern.compile("((\"[^\"]+?\")|('[^']+?')|([^\\s]+?))\\s++").matcher(str);
for (int i = 0; i < len; i++)
{
m.region(i, len);
if (m.lookingAt())
{
String s = m.group(1);
if ((s.startsWith("\"") && s.endsWith("\"")) ||
(s.startsWith("'") && s.endsWith("'")))
{
s = s.substring(1, s.length() - 1);
}
System.out.println(i + ": \"" + s + "\"");
i += (m.group(0).length() - 1);
}
}
which produces the following output:
0: "This"
5: "is"
8: "a"
10: "string"
17: "that"
22: "will be"
32: "highlighted"
44: "when"
49: "your"
54: "regular expression"
75: "matches"
83: "something."
I liked Marcus's approach, however, I modified it so that I could allow text near the quotes, and support both " and ' quote characters. For example, I needed a="some value" to not split it into [a=, "some value"].
(?<!\\G\\S{0,99999}[\"'].{0,99999})\\s|(?<=\\G\\S{0,99999}\".{0,99999}\"\\S{0,99999})\\s|(?<=\\G\\S{0,99999}'.{0,99999}'\\S{0,99999})\\s"
Jan's approach is great but here's another one for the record.
If you actually wanted to split as mentioned in the title, keeping the quotes in "will be" and 'regular expression', then you could use this method which is straight out of Match (or replace) a pattern except in situations s1, s2, s3 etc
The regex:
'[^']*'|\"[^\"]*\"|( )
The two left alternations match complete 'quoted strings' and "double-quoted strings". We will ignore these matches. The right side matches and captures spaces to Group 1, and we know they are the right spaces because they were not matched by the expressions on the left. We replace those with SplitHere then split on SplitHere. Again, this is for a true split case where you want "will be", not will be.
Here is a full working implementation (see the results on the online demo).
import java.util.*;
import java.io.*;
import java.util.regex.*;
import java.util.List;
class Program {
public static void main (String[] args) throws java.lang.Exception {
String subject = "This is a string that \"will be\" highlighted when your 'regular expression' matches something.";
Pattern regex = Pattern.compile("\'[^']*'|\"[^\"]*\"|( )");
Matcher m = regex.matcher(subject);
StringBuffer b= new StringBuffer();
while (m.find()) {
if(m.group(1) != null) m.appendReplacement(b, "SplitHere");
else m.appendReplacement(b, m.group(0));
}
m.appendTail(b);
String replaced = b.toString();
String[] splits = replaced.split("SplitHere");
for (String split : splits) System.out.println(split);
} // end main
} // end Program
If you are using c#, you can use
string input= "This is a string that \"will be\" highlighted when your 'regular expression' matches <something random>";
List<string> list1 =
Regex.Matches(input, #"(?<match>\w+)|\""(?<match>[\w\s]*)""|'(?<match>[\w\s]*)'|<(?<match>[\w\s]*)>").Cast<Match>().Select(m => m.Groups["match"].Value).ToList();
foreach(var v in list1)
Console.WriteLine(v);
I have specifically added "|<(?[\w\s]*)>" to highlight that you can specify any char to group phrases. (In this case I am using < > to group.
Output is :
This
is
a
string
that
will be
highlighted
when
your
regular expression
matches
something random
1st one-liner using String.split()
String s = "This is a string that \"will be\" highlighted when your 'regular expression' matches something.";
String[] split = s.split( "(?<!(\"|').{0,255}) | (?!.*\\1.*)" );
[This, is, a, string, that, "will be", highlighted, when, your, 'regular expression', matches, something.]
don't split at the blank, if the blank is surrounded by single or double quotes
split at the blank when the 255 characters to the left and all characters to the right of the blank are neither single nor double quotes
adapted from original post (handles only double quotes)
I'm reasonably certain this is not possible using regular expressions alone. Checking whether something is contained inside some other tag is a parsing operation. This seems like the same problem as trying to parse XML with a regex -- it can't be done correctly. You may be able to get your desired outcome by repeatedly applying a non-greedy, non-global regex that matches the quoted strings, then once you can't find anything else, split it at the spaces... that has a number of problems, including keeping track of the original order of all the substrings. Your best bet is to just write a really simple function that iterates over the string and pulls out the tokens you want.
A couple hopefully helpful tweaks on Jan's accepted answer:
(['"])((?:\\\1|.)+?)\1|([^\s"']+)
Allows escaped quotes within quoted strings
Avoids repeating the pattern for the single and double quote; this also simplifies adding more quoting symbols if needed (at the expense of one more capturing group)
You can also try this:
String str = "This is a string that \"will be\" highlighted when your 'regular expression' matches something";
String ss[] = str.split("\"|\'");
for (int i = 0; i < ss.length; i++) {
if ((i % 2) == 0) {//even
String[] part1 = ss[i].split(" ");
for (String pp1 : part1) {
System.out.println("" + pp1);
}
} else {//odd
System.out.println("" + ss[i]);
}
}
The following returns an array of arguments. Arguments are the variable 'command' split on spaces, unless included in single or double quotes. The matches are then modified to remove the single and double quotes.
using System.Text.RegularExpressions;
var args = Regex.Matches(command, "[^\\s\"']+|\"([^\"]*)\"|'([^']*)'").Cast<Match>
().Select(iMatch => iMatch.Value.Replace("\"", "").Replace("'", "")).ToArray();
When you come across this pattern like this :
String str = "2022-11-10 08:35:00,470 RAV=REQ YIP=02.8.5.1 CMID=caonaustr CMN=\"Some Value Pyt Ltd\"";
//this helped
String[] str1= str.split("\\s(?=(([^\"]*\"){2})*[^\"]*$)\\s*");
System.out.println("Value of split string is "+ Arrays.toString(str1));
This results in :[2022-11-10, 08:35:00,470, PLV=REQ, YIP=02.8.5.1, CMID=caonaustr, CMN="Some Value Pyt Ltd"]
This regex matches spaces ONLY if it is followed by even number of double quotes.
I need to replace all spaces with html code, i.e.  , in a string. Currently following, does the replacement but it also replaces the spaces with in html tags like <a href="http://google.com" />.
string.replaceAll(" ", " ")
But I need it to not change the tags.
Example:
String s1 = "Hello!, Check out this <^a href=\"http://www.entrepreneur.com/article/234538\">10 Movies Every Entrepreneur Needs to Watch <^/a>"
After replacment, it should be like;
String s1 = "Hello!, Check out this <^a href=\"http://www.entrepreneur.com/article/234538\">10 Movies Every Entrepreneur Needs to Watch <^/a>"
Can anybody suggest a more intelligent regex to accomplish the task?
I know you have already accepted an answer, but your problem has another simple solution that wasn't mentioned. This situation sounds very similar to this question to "regex-match a pattern, excluding..."
With all the disclaimers about using regex to parse html, here is a simple way to do it.
We can solve it with a beautifully-simple regex:
<[^<>]*>|( )
The left side of the alternation | matches complete <tags>. We will ignore these matches. The right side matches and captures spaces to Group 1, and we know they are the right spaces because they were not matched by the expression on the left.
This full Java program shows how to use the regex (see the results at the bottom of the online demo):
import java.util.*;
import java.io.*;
import java.util.regex.*;
import java.util.List;
class Program {
public static void main (String[] args) throws java.lang.Exception {
String subject = "Hello!, Check out this <^a href=\"http://www.entrepreneur.com/article/234538\">10 Movies Every Entrepreneur Needs to Watch <^/a>";
Pattern regex = Pattern.compile("<[^<>]*>|( )");
Matcher m = regex.matcher(subject);
StringBuffer b= new StringBuffer();
while (m.find()) {
if(m.group(1) != null) m.appendReplacement(b, " ");
else m.appendReplacement(b, m.group(0));
}
m.appendTail(b);
String replaced = b.toString();
System.out.println(replaced);
} // end main
} // end Program
Reference
How to match (or replace) a pattern except in situations s1, s2, s3...
How to match a pattern unless...
If we can assume that the only use of > and < in the string is for the tags, then this regex will work:
(?![^<]*>)
It works for your example.
How it works:
matches the space character. This is exactly like what you did.
(?! starts a negative lookahead. This means that this regex will match only if it is not followed by something that matches the regex in the lookahead.
[^<]* matches any character that is not <, multiple times
> matches >
) closes the lookahead.
In other words, this regex matches any space, but with the requirement there must be a < before every > after the space.
I want to do a startStr.replaceAll(searchStr, replaceStr) and I have two requirements.
The searchStr must be a whole word, meaning it must have a space, beginning of string or end of string character around it.
e.g.
startStr = "ON cONfirmation, put ON your hat"
searchStr = "ON"
replaceStr = ""
expected = " cONfirmation, put your hat"
The searchStr may contain a regex pattern
e.g.
startStr = "remove this * thing"
searchStr = "*"
replaceStr = ""
expected = "remove this thing"
For requirement 1, I've found that this works:
startStr.replaceAll("\\b"+searchStr+"\\b",replaceStr)
For requirement 2, I've found that this works:
startStr.replaceAll(Pattern.quote(searchStr), replaceStr)
But I can't get them to work together:
startStr.replaceAll("\\b"+Pattern.quote(searchStr)+"\\b", replaceStr)
Here is the simple test case that's failing
startStr = "remove this * thing but not this*"
searchStr = "*"
replaceStr = ""
expected = "remove this thing but not this*"
actual = "remove this * thing but not this*"
What am I missing?
Thanks in advance
First off, the \b, or word boundary, is not going to work for you with the asterisks. The reason is that \b only detects boundaries of word characters. A regex parser won't acknowledge * as a word character, so a wildcard-endowed word that begins or ends with a regex won't be surrounded by valid word boundaries.
Reference pages:
http://www.regular-expressions.info/wordboundaries.html
http://docs.oracle.com/javase/tutorial/essential/regex/bounds.html
An option you might like is to supply wildcard permutations in a regex:
(?<=\s|^)(ON|\*N|O\*|\*)(?=\s|$)
Here's a Java example:
import java.util.regex.Pattern;
import java.util.regex.Matcher;
class RegExTest
{
public static void main(String[] args){
String sourcestring = "ON cONfirmation, put * your hat";
sourcestring = sourcestring.replaceAll("(?<=\\s|^)(ON|\\*N|O\\*|\\*)(?=\\s|$)","").replaceAll(" "," ").trim();
System.out.println("sourcestring=["+sourcestring+"]");
}
}
You can write a little function to generate the wildcard permutations automatically. I admit I cheated a little with the spaces, but I don't think that was a requirement anyway.
Play with it online here: http://ideone.com/7uGfIS
The pattern "\\b" matches a word boundary, with a word character on one side and a non-word character on the other. * is not a word character, so \\b\\*\\b won't work. Look-behind and look-ahead match but do not consume patterns. You can specify that the beginning of the string or whitespace must come before your pattern and that whitespace or the end of the string must follow:
startStr.replaceAll("(?<=^|\\s)"+Pattern.quote(searchStr)+"(?=\\s|$)", replaceStr)
Try this,
For removing "ON"
StringBuilder stringBuilder = new StringBuilder();
String[] splittedValue = startStr.split(" ");
for (String value : splittedValue)
{
if (!value.equalsIgnoreCase("ON"))
{
stringBuilder.append(value);
stringBuilder.append(" ");
}
}
System.out.println(stringBuilder.toString().trim());
For removing "*"
String startStr1 = "remove this * thing";
System.out.println(startStr1.replaceAll("\\*[\\s]", ""));
You can use (^| )\*( |$) instead of using \\b
Try this startStr.replaceAll("(^| )youSearchString( |$)", replaceStr);
I have this string :
<meis xmlns:xsi="http://www.w3.org/2001/XMLSchema-instance" uri="localhost/naro-nei" onded="flpSW531213" identi="lemenia" id="75" lastStop="bendi" xsi:noNamespaceSchemaLocation="http://localhost/xsd/postat.xsd xsd/postat.xsd">
How can I get lastStop property value in JAVA?
This regex worked when tested on http://www.myregexp.com/
But when I try it in java I don't see the matched text, here is how I tried :
import java.util.regex.Pattern;
import java.util.regex.Matcher;
public class SimpleRegexTest {
public static void main(String[] args) {
String sampleText = "<meis xmlns:xsi=\"http://www.w3.org/2001/XMLSchema-instance\" uri=\"localhost/naro-nei\" onded=\"flpSW531213\" identi=\"lemenia\" id=\"75\" lastStop=\"bendi\" xsi:noNamespaceSchemaLocation=\"http://localhost/xsd/postat.xsd xsd/postat.xsd\">";
String sampleRegex = "(?<=lastStop=[\"']?)[^\"']*";
Pattern p = Pattern.compile(sampleRegex);
Matcher m = p.matcher(sampleText);
if (m.find()) {
String matchedText = m.group();
System.out.println("matched [" + matchedText + "]");
} else {
System.out.println("didn’t match");
}
}
}
Maybe the problem is that I use escape char in my test , but real string doesn't have escape inside. ?
UPDATE
Does anyone know why this doesn't work when used in java ? or how to make it work?
(?<=lastStop=[\"']?)[^\"]+
The reason it doesn't work as you expect is because of the * in [^\"']*. The lookbehind is matching at the position before the " in lastStop=", which is permitted because the quote is optional: [\"']?. The next part is supposed to match zero or more non-quote characters, but because the next character is a quote, it matches zero characters.
If you change that * to a +, the second part will fail to match at that position, forcing the regex engine to bump ahead one more position. The lookbehind will match the quote, and [^\"']+ will match what follows. However, you really shouldn't be using a lookbehind for this in the first place. It's much easier to just match the whole sequence in the normal way and extract the part you want to keep via a capturing group:
String sampleRegex = "lastStop=[\"']?([^\"']*)";
Pattern p = Pattern.compile(sampleRegex);
Matcher m = p.matcher(sampleText);
if (m.find()) {
String matchedText = m.group(1);
System.out.println("matched [" + matchedText + "]");
} else {
System.out.println("didn’t match");
}
It will also make it easier to deal with the problem #Kobi mentioned. You're trying to allow for values contained in double-quotes, single-quotes or no quotes, but your regex is too simplistic. For one thing, a quoted value can contain whitespace, but an unquoted one can't. To deal with all three possibilities, you'll need two or three capturing groups, not just one.