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I have a string like

"ABC def" xxy"u

I want to replace the double quote which is not in pair.

So in above example I want to replace only xxy"u double quote not first two which is in pair.

Output should be in this format.

"ABC def" xxy\"u

Should work with every non pair double quote - "111" "222" "333" "4 so here " before 4 should be replaced with \"

Thanks in advance.

It would be great if it will detect the actual pair too, instead of last double quote. EX: "AAA" "bbb" "CCC "DDD" -> should be replaced by "AAA" "bbb" \"CCC "DDD"

This is what I am using

    int totalCountOfDQ = countOccurence(s, '"');
    int lastIndexOfDQ = s.lastIndexOf('"');
    if(totalCountOfDQ % 2 == 1){
        String start = s.substring(0, lastIndexOfDQ);
        String end = s.substring(lastIndexOfDQ+1);
        s = start + "\\\"" + end;
    }

and it is working for my example Thought it is not working "4 "111" "222" for correctly

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2  
Check the count of " and if its odd remove the last one. –  Subir Kumar Sao Aug 26 '13 at 8:40
    
Can you share what code have you tried so far? –  sanbhat Aug 26 '13 at 8:40
    
Thanx @SubirKumarSao, I want the same. I am new to it, I am using java 1.6, I cant find any direct function for the string to count quotes. –  Akshay Aug 26 '13 at 8:44
    
@SubirKumarSao, That would fail for "4 "111" "222". –  Ravi Thapliyal Aug 26 '13 at 8:47
    
your input values are alway seperated by " "? Then your Inputstring looks like [(")value(") ]+ ? –  pad Aug 26 '13 at 9:07

4 Answers 4

Do you mean this algorithm?

Count the number of double quotes. If there is an even number, do nothing. If there is an odd number, replace the last double quote with a \"

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1  
Yes @Words exactly. –  Akshay Aug 26 '13 at 8:44
    
Okay, don't forget to upvote/accept :) –  Words Like Jared Aug 26 '13 at 8:44
3  
How would it handle "4 "111" "222"? –  Ravi Thapliyal Aug 26 '13 at 8:48
    
Can you share me a good algorithm, I can make it but I am afraid that I will make it too much fuzzy. Thanx –  Akshay Aug 26 '13 at 8:48
    
@RaviThapliyal I will give ideally (with respect to my question) "4 "111" "222\" but you would wonder it should do \"4 "111" "222" then that would be greate. –  Akshay Aug 26 '13 at 8:50

I would suggest using a regex matching to check for this.

Pattern myPattern = Pattern.compile("\".*\"");
Pattern myPattern1 = Pattern.compile("\"([^\"]*)$");
var input=yourString;//assign your string to a new variable
input=input.replaceAll(myPattern,' match ');//replace all portions in " with your own string
if(input.matches("\"")) {
   yourString.replaceAll(myPattern1,/\\/);//if there is a dangling ", replace with a \ in your original string
}
share|improve this answer
    
Thanx @Aashray, but I am very much new to regexes, can you kindly explain? –  Akshay Aug 26 '13 at 9:20
    
I have included comments as to what it is doing. –  Aashray Aug 26 '13 at 9:27
    
I need this for java –  Akshay Aug 26 '13 at 9:40
    
This should work for Java. –  Aashray Aug 26 '13 at 9:47

You can try the next:

private static final Pattern REGEX_PATTERN =
        Pattern.compile("\\B\"\\w*( \\w*)*\"\\B");

private static String replaceNotPairs(String input) {
    StringBuffer sb = new StringBuffer();
    Matcher matcher = REGEX_PATTERN.matcher(input);
    int start = 0;
    int last = 0;
    while (matcher.find()) {
        start = matcher.start();
        sb.append(input.substring(last, start).replace("\"", "\\\""));
        last = matcher.end();
        sb.append(matcher.group());
    }
    sb.append(input.substring(last).replace("\"", "\\\""));
    return sb.toString();
}

e.g.:

public static void main(String[] args) {
    System.out.printf("src: %s%nout: %s%n%n",
            "\"ABC def\" xxy\"u",
            replaceNotPairs("\"ABC def\" xxy\"u"));
    System.out.printf("src: %s%nout: %s%n%n",
            "\"111\" \"222\" \"333\" \"4",
            replaceNotPairs("\"111\" \"222\" \"333\" \"4"));
    System.out.printf("src: %s%nout: %s%n%n",
            "\"AAA\" \"bbb\" \"CCC \"DDD\"",
            replaceNotPairs("\"AAA\" \"bbb\" \"CCC \"DDD\""));
    System.out.printf("src: %s%nout: %s%n%n",
            "\"4 \"111\" \"222\"",
            replaceNotPairs("\"4 \"111\" \"222\""));
    System.out.printf("src: %s%nout: %s%n%n",
            "\"11\" \"2 \"333\"",
            replaceNotPairs("\"11\" \"2 \"333\""));
}

The output for the example input:

src: "ABC def" xxy"u
out: "ABC def" xxy\"u

src: "111" "222" "333" "4
out: "111" "222" "333" \"4

src: "AAA" "bbb" "CCC "DDD"
out: "AAA" "bbb" \"CCC "DDD"

src: "4 "111" "222"
out: \"4 "111" "222"

src: "11" "2 "333"
out: "11" \"2 "333"

See the explanation for the regex:

\B\"\w*( \w*)*\"\B

Regular expression visualization

(from http://rick.measham.id.au/paste/explain.pl?regex):

NODE                     EXPLANATION
----------------------------------------------------------------------------
  \B                       the boundary between two word chars (\w)
                           or two non-word chars (\W)
----------------------------------------------------------------------------
  \"                       '"'
----------------------------------------------------------------------------
  \w*                      word characters (a-z, A-Z, 0-9, _) (0 or
                           more times (matching the most amount
                           possible))
----------------------------------------------------------------------------
  (                        group and capture to \1 (0 or more times
                           (matching the most amount possible)):
----------------------------------------------------------------------------
                             ' '
----------------------------------------------------------------------------
    \w*                      word characters (a-z, A-Z, 0-9, _) (0 or
                             more times (matching the most amount
                             possible))
----------------------------------------------------------------------------
  )*                       end of \1 (NOTE: because you are using a
                           quantifier on this capture, only the LAST
                           repetition of the captured pattern will be
                           stored in \1)
----------------------------------------------------------------------------
  \"                       '"'
----------------------------------------------------------------------------
  \B                       the boundary between two word chars (\w)
                           or two non-word chars (\W)
share|improve this answer

Without using a loop following code should work:

String s = "\"111 \" \" 222\" \" 333\" \"4";
// s.replaceAll("[^\"]+", "").length() gives count of " in String
if (s.replaceAll("[^\"]+", "").length() % 2 == 1) {
    int i = s.lastIndexOf('"');
    s = s.substring(0, i) + "\\\"" + s.substring(i+1);
}
System.out.println(s); // "111 " " 222" " 333" \"4
share|improve this answer
1  
This wont work for following case "AAA" "bbb" "CCC "DDD" -> should be replaced by "AAA" "bbb" \"CCC "DDD" –  Prabhakaran Aug 26 '13 at 9:18
    
@anubhava thanx, the solution will work for my case P.S. this will work for my, but not for every case if double quote comes in between –  Akshay Aug 26 '13 at 9:18
    
@Prabhakaran: That's wrong. OP wants to replace only last unmatched double quote not the middle one. –  anubhava Aug 26 '13 at 10:03
    
@Akshay: Please elaborate what you mean by if double quote comes in between. An example: "4 "111" "222" can be considered as pairs: 1: "4 ", 2: " ", 3: 222" hence 222" is unbalanced. –  anubhava Aug 26 '13 at 10:06
    
My edited answer gives: 4 "111" \"222 for input of: 4 "111" "222 –  anubhava Aug 26 '13 at 10:18

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