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How can I trim characters in Java?
e.g.

String j = “\joe\jill\”.Trim(new char[] {“\”});

j should be

"joe\jill"

String j = “jack\joe\jill\”.Trim("jack");

j should be

"\joe\jill\"

etc

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What should \\\\joe\\jill\\\\` should return? joe\\jill` ?? –  OscarRyz Jan 18 '10 at 17:56
    
@Oscar yes. Like the trim in .net –  Quintin Par Jan 18 '10 at 17:58
8  
I don't think this operation is called trimming... –  Esko Jan 18 '10 at 17:59

11 Answers 11

up vote 40 down vote accepted

Apache Commons has a great StringUtils class. In StringUtils there is a strip(String, String) method that will do what you want.

I highly recommend using Apache Commons anyway, especially the Collections and Lang libraries.

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This does what you want:

public static void main (String[] args) {
    String a = "\\joe\\jill\\";
    String b = a.replaceAll("\\\\$", "").replaceAll("^\\\\", "");
    System.out.println(b);
}

The $ is used to remove the sequence in the end of string. The ^ is used to remove in the beggining.

As an alternative, you can use the syntax:

String b = a.replaceAll("\\\\$|^\\\\", "");

The | means "or".

In case you want to trim other chars, just adapt the regex:

String b = a.replaceAll("y$|^x", ""); // will remove all the y from the end and x from the beggining
share|improve this answer

For now, I'd second Colins' Apache commons-lang answer, but once Google's guava-libraries is released, the CharMatcher class will do what you want quite nicely:

String j = CharMatcher.is('\\').trimFrom("\\joe\\jill\\"); 
// j is now joe\jill

CharMatcher has a very simple + powerful set of APIs as well as some predefined constants which make manipulation very easy:

CharMatcher.is(':').countIn("a:b:c"); // returns 2
CharMatcher.isNot(':').countIn("a:b:c"); // returns 3
CharMatcher.inRange('a', 'b').countIn("a:b:c"); // returns 2
CharMatcher.DIGIT.retainFrom("a12b34"); // returns "1234"
CharMatcher.ASCII.negate().removeFrom("a®¶b"); // returns "ab";

etc. Very nice stuff.

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it appears that there is no ready to use java api that makes that but you can write a method to do that for you. this link might be usefull

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Regex is the ready-to-use api :-) –  Paulo Guedes Jan 18 '10 at 18:13
    
sure it is :D i meant a trim function that takes string as the question says –  Ahmed Kotb Jan 18 '10 at 18:38

EDIT: Amended by answer to replace just the first and last '\' character.

System.err.println("\\joe\\jill\\".replaceAll("^\\\\|\\\\$", ""));
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You could use removeStart and removeEnd from Apache Commons Lang StringUtils

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I would actually write my own little function that does the trick by using plain old char access:

public static String trimBackslash( String str )
{
    int len, left, right;
    return str == null || ( len = str.length() ) == 0 
                           || ( ( left = str.charAt( 0 ) == '\\' ? 1 : 0 ) |
           ( right = len > left && str.charAt( len - 1 ) == '\\' ? 1 : 0 ) ) == 0
        ? str : str.substring( left, len - right );
}

This behaves similar to what String.trim() does, only that it works with '\' instead of space.

Here is one alternative that works and actually uses trim(). ;) Althogh it's not very efficient it will probably beat all regexp based approaches performance wise.

String j = “\joe\jill\”;
j = j.replace( '\\', '\f' ).trim().replace( '\f', '\\' );
share|improve this answer

I don't think there is any built in function to trim based on a passed in string. Here is a small example of how to do this. This is not likely the most efficient solution, but it is probably fast enough for most situations, evaluate and adapt to your needs. I recommend testing performance and optimizing as needed for any code snippet that will be used regularly. Below, I've included some timing information as an example.

public String trim( String stringToTrim, String stringToRemove )
{
    String answer = stringToTrim;

    while( answer.startsWith( stringToRemove ) )
    {
        answer = answer.substring( stringToRemove.length() );
    }

    while( answer.endsWith( stringToRemove ) )
    {
        answer = answer.substring( 0, answer.length() - stringToRemove.length() );
    }

    return answer;
}

This answer assumes that the characters to be trimmed are a string. For example, passing in "abc" will trim out "abc" but not "bbc" or "cba", etc.

Some performance times for running each of the following 10 million times.

" mile ".trim(); runs in 248 ms included as a reference implementation for performance comparisons.

trim( "smiles", "s" ); runs in 547 ms - approximately 2 times as long as java's String.trim() method.

"smiles".replaceAll("s$|^s",""); runs in 12,306 ms - approximately 48 times as long as java's String.trim() method.

And using a compiled regex pattern Pattern pattern = Pattern.compile("s$|^s"); pattern.matcher("smiles").replaceAll(""); runs in 7,804 ms - approximately 31 times as long as java's String.trim() method.

share|improve this answer
    
"answer.length - trimChar.length - 1" actually –  Brett Widmeier Jan 18 '10 at 18:02
    
Not really optimized. I wouldn't use this. –  Pindatjuh Jan 18 '10 at 18:06
    
why not use regex? –  Paulo Guedes Jan 18 '10 at 18:13
    
@BrettWidmeier I think I've got this write. trim( "smiles", "les" ) yields smi and trim( "smiles", "s" ) yields mile. –  Alex B Jan 18 '10 at 18:14
1  
I can't imagine a more inefficient way to solve this problem. –  Lawrence Dol Jan 18 '10 at 19:25

Here is another non-regexp, non-super-awesome, non-super-optimized, however very easy to understand non-external-lib solution:

public static String trimStringByString(String text, String trimBy) {
    int beginIndex = 0;
    int endIndex = text.length();

    while (text.substring(beginIndex, endIndex).startsWith(trimBy)) {
        beginIndex += trimBy.length();
    } 

    while (text.substring(beginIndex, endIndex).endsWith(trimBy)) {
        endIndex -= trimBy.length();
    }

    return text.substring(beginIndex, endIndex);
}

Usage:

String trimmedString = trimStringByString(stringToTrim, "/");
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Here's how I would do it.

I think it's about as efficient as it reasonably can be. It optimizes the single character case and avoids creating multiple substrings for each subsequence removed.

Note that the corner case of passing an empty string to trim is handled (some of the other answers would go into an infinite loop).

/** Trim all occurrences of the string <code>rmvval</code> from the left and right of <code>src</code>.  Note that <code>rmvval</code> constitutes an entire string which must match using <code>String.startsWith</code> and <code>String.endsWith</code>. */
static public String trim(String src, String rmvval) {
    return trim(src,rmvval,rmvval,true);
    }

/** Trim all occurrences of the string <code>lftval</code> from the left and <code>rgtval</code> from the right of <code>src</code>.  Note that the values to remove constitute strings which must match using <code>String.startsWith</code> and <code>String.endsWith</code>. */
static public String trim(String src, String lftval, String rgtval, boolean igncas) {
    int                                 str=0,end=src.length();

    if(lftval.length()==1) {                                                    // optimize for common use - trimming a single character from left
        char chr=lftval.charAt(0);
        while(str<end && src.charAt(str)==chr) { str++; }
        }
    else if(lftval.length()>1) {                                                // handle repeated removal of a specific character sequence from left
        int vallen=lftval.length(),newstr;
        while((newstr=(str+vallen))<=end && src.regionMatches(igncas,str,lftval,0,vallen)) { str=newstr; }
        }

    if(rgtval.length()==1) {                                                    // optimize for common use - trimming a single character from right
        char chr=rgtval.charAt(0);
        while(str<end && src.charAt(end-1)==chr) { end--; }
        }
    else if(rgtval.length()>1) {                                                // handle repeated removal of a specific character sequence from right
        int vallen=rgtval.length(),newend;
        while(str<=(newend=(end-vallen)) && src.regionMatches(igncas,newend,rgtval,0,vallen)) { end=newend; }
        }

    if(str!=0 || end!=src.length()) {
        if(str<end) { src=src.substring(str,end); }                            // str is inclusive, end is exclusive
        else        { src="";                     }
        }

    return src;
    }
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Hand made for the first option:

public class Rep {
    public static void main( String [] args ) {
       System.out.println( trimChar( '\\' , "\\\\\\joe\\jill\\\\\\\\" )  ) ;
       System.out.println( trimChar( '\\' , "joe\\jill" )  ) ;
    }
    private static String trimChar( char toTrim, String inString ) { 
        int from = 0;
        int to = inString.length();

        for( int i = 0 ; i < inString.length() ; i++ ) {
            if( inString.charAt( i ) != toTrim) {
                from = i;
                break;
            }
        }
        for( int i = inString.length()-1 ; i >= 0 ; i-- ){ 
            if( inString.charAt( i ) != toTrim ){
                to = i;
                break;
            }
        }
        return inString.substring( from , to );
    }
}

Prints

joe\jil

joe\jil

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1  
umh .. a comment please on the downvote? –  OscarRyz Jan 19 '10 at 3:42

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