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How do I check if string contains \n or new line character ?

word.contains("\\n")
word.contains("\n")
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3 Answers 3

up vote 9 down vote accepted

If the string was constructed in the same program, I would recommend using this:

String newline = System.getProperty("line.separator");
boolean hasNewline = word.contains(newline);

But if you are specced to use \n, this driver illustrates what to do:

class NewLineTest {
    public static void main(String[] args) {
        String hasNewline = "this has a newline\n.";
        String noNewline = "this doesn't";

        System.out.println(hasNewline.contains("\n"));
        System.out.println(hasNewline.contains("\\n"));
        System.out.println(noNewline.contains("\n"));
        System.out.println(noNewline.contains("\\n"));

    }

}

Resulted in

true
false
false
false

In reponse to your comment:

class NewLineTest {
    public static void main(String[] args) {
        String word = "test\n.";
        System.out.println(word.length());
        System.out.println(word);
        word = word.replace("\n","\n ");
        System.out.println(word.length());
        System.out.println(word);

    }

}

Results in

6
test
.
7
test
 .
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Works but s = s.replace("\n", " \n "); does not replace new line with new line and spaces. –  Pit Digger Apr 1 '11 at 20:45
    
Yes it does. Updating my answer. It clearly shows a space after the newline. –  corsiKa Apr 1 '11 at 20:47

For portability, you really should do something like this:

public static final String NEW_LINE = System.getProperty("line.separator")
.
.
.
word.contains(NEW_LINE);

unless you're absolutely certain that "\n" is what you want.

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The second one:

word.contains("\n");
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I tried that but It Doesnt work –  Pit Digger Apr 1 '11 at 20:29
    
could you clarify why it doesn't work. What is your input, what is the result and what is the expected result? –  Kris Babic Apr 1 '11 at 20:30
    
Sorry about that I had not restarted my tomcat after rebuilding JAr so it didnt make effect.It works now although Replace s = s.replace("\n", " \n "); is not working . –  Pit Digger Apr 1 '11 at 20:49

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