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I need to remove commas within a String only when enclosed by quotes.

example:

String a = "123, \"Anders, Jr.\", John, john.anders@company.com,A"

after replacement should be

String a = "123, Anders Jr., John, john.anders@company.com,A"

Can you please give me sample java code to do this?

Thanks much,

Lina

share|improve this question
    
Do you mean, remove quotes when they are escaped? –  strager Mar 12 '09 at 15:55
    
@stager : comma after "Anders" is also removed. @ Lina : what programming language do you use ? There are sometime differences... –  ybo Mar 12 '09 at 15:58
    
@ybo, Thanks for pointing that out. –  strager Mar 12 '09 at 16:07

9 Answers 9

up vote 0 down vote accepted

Probably grossly inefficiënt but it seems to work.

import java.util.regex.*;

StringBuffer ResultString = new StringBuffer();

try {
    Pattern regex = Pattern.compile("(.*)\"(.*),(.*)\"(.*)", Pattern.CASE_INSENSITIVE | Pattern.UNICODE_CASE);
    Matcher regexMatcher = regex.matcher(a);
    while (regexMatcher.find()) {
    	try {
    		// You can vary the replacement text for each match on-the-fly
    		regexMatcher.appendReplacement(ResultString, "$1$2$3$4");
    	} catch (IllegalStateException ex) {
    		// appendReplacement() called without a prior successful call to find()
    	} catch (IllegalArgumentException ex) {
    		// Syntax error in the replacement text (unescaped $ signs?)
    	} catch (IndexOutOfBoundsException ex) {
    		// Non-existent backreference used the replacement text
    	} 
    }
    regexMatcher.appendTail(ResultString);
} catch (PatternSyntaxException ex) {
    // Syntax error in the regular expression
}
share|improve this answer
    
Thanks much! This worked perfectly! (I had to remove the extra back slashes though so that in the pattern there is just one slash before each quote). –  Lina Vuppala Mar 12 '09 at 18:20
    
Yeah, " is not a special character in regex, it only needs escaping once for Java. –  bobince Mar 12 '09 at 18:39
    
Thanks, I didn't know that. Ill adjust the answer. –  Lieven Keersmaekers Mar 12 '09 at 20:43
1  
You don't need the CASE_INSENSITIVE or UNICODE_CASE modifiers, either; there are no letters in the regex. –  Alan Moore Mar 13 '09 at 2:24

It also seems you need to remove the quotes, judging by your example.

You can't do that in a single regexp. You would need to match over each instance of

"[^"]*"

then strip the surrounding quotes and replace the commas. Are there any other characters which are troublesome? Can quote characters be escaped inside quotes, eg. as ‘""’?

It looks like you are trying to parse CSV. If so, regex is insufficient for the task and you should look at one of the many free Java CSV parsers.

share|improve this answer
    
I have this working in perl: $row =~ m#(.*)"(.*),(.*)"(.*)#; $row = $1.$2.$3.$4; But not familiar with the syntax to do something like this in Java... sample code would be much appreciated! Yes I am dealing with a csv - I will look at using a Java CSV parsers as well. –  Lina Vuppala Mar 12 '09 at 18:00
    
That expression — and Lieven's answer — only matches a single occurrence of a comma in "s. It won't remove multiple commas, and won't remove quotes where there is no comma. –  bobince Mar 12 '09 at 18:41
    
My answer removes one commas with every loop. You are right it doesn't remove quotes where there is no comma but that wasn't requested. –  Lieven Keersmaekers Mar 12 '09 at 20:45

I believe you asked for a regex trying to get an "elegant" solution, nevertheless maybe a "normal" answer is better fitted to your needs... this one gets your example perfectly, although I didn't check for border cases like two quotes together, so if you're going to use my example, check it thoroughly

boolean deleteCommas = false;
for(int i=0; i > a.length(); i++){
    if(a.charAt(i)=='\"'){
    	a = a.substring(0, i) + a.substring(i+1, a.length());
    	deleteCommas = !deleteCommas;
    }
    if(a.charAt(i)==','&&deleteCommas){
    	a = a.substring(0, i) + a.substring(i+1, a.length());
    }
}
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There are two major problems with the accepted answer. First, the regex "(.*)\"(.*),(.*)\"(.*)" will match the whole string if it matches anything, so it will remove at most one comma and two quotation marks.

Second, there's nothing to ensure that the comma and quotes will all be part of the same field; given the input ("foo", "bar") it will return ("foo "bar). It also doesn't account for newlines or escaped quotation marks, both of which are permitted in quoted fields.

You can use regexes to parse CSV data, but it's much trickier than most people expect. But why bother fighting with it when, as bobince pointed out, there are several free CSV libraries out there for the downloading?

share|improve this answer

Should work:

s/(?<="[^"]*),(?=[^"]*")//g
s/"//g
share|improve this answer
    
Java doesn't support unbounded lookbehinds. You would have to replace the asterisk with something like {0,<n>} where <n> is either an arbitrarily large number, or (my preference) the length of the original string. –  Alan Moore Mar 13 '09 at 2:36

This looks like a line from a CSV file, parsing it through any reasonable CSV library would automatically deal with this issue for you. At least by reading the quoted value into a single 'field'.

share|improve this answer

This works fine. '<' instead of '>'

boolean deleteCommas = false;
for(int i=0; i < text.length(); i++){
    if(text.charAt(i)=='\''){
        text = text.substring(0, i) + text.substring(i+1, text.length());
        deleteCommas = !deleteCommas;
    }
    if(text.charAt(i)==','&&deleteCommas){
        text = text.substring(0, i) + text.substring(i+1, text.length());
    }
}
share|improve this answer
    
Try that with the string "'test,test'" (since you also changed the double-quote to a single-quote). If the last character in the string is a quote, you remove it in the first "if" block, then try to test it again in the second "if" block. Rule of thumb: never try to alter a string while you're iterating through it; use a StringBuilder to construct a new string instead. –  Alan Moore Apr 23 '09 at 10:53

A simpler approach would be replacing the matches of this regular expression:

("[^",]+),([^"]+")

By this:

$1$2
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The following perl works for most cases:

open(DATA,'in/my.csv');
while(<DATA>){
  if(/(,\s*|^)"[^"]*,[^"]*"(\s*,|$)/){
    print "Before: $_";
    while(/(,\s*|^)"[^"]*,[^"]*"(\s*,|$)/){
      s/((?:^|,\s*)"[^"]*),([^"]*"(?:\s*,|$))/$1 $2/
    }
    print "After: $_";
  }
}

It's looking for:

  • (comma plus optional spaces) or start of line
  • a quote
  • 0 or more non-quotes
  • a comma
  • 0 or more non-quotes
  • (optional spaces plus comma) or end of line

If found, it will then keep replacing the comma with a space until it can find no more examples.

It works because of an assumption that the opening quote will be preceded by a comma plus optional spaces (or will be at the start of the line), and the closing quote will be followed by optional spaces plus a comma, or will be the end of the line.

I'm sure there are cases where it will fail - if anyone can post 'em, I'd be keen to see them...

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