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I need to trim a String in java so that:

The quick brown fox jumps over the laz dog.

becomes

The quick brown...

In the example above, I'm trimming to 12 characters. If I just use substring I would get:

The quick br...

I already have a method for doing this using substring, but I wanted to know what is the fastest (most efficient) way to do this because a page may have many trim operations.

The only way I can think off is to split the string on spaces and put it back together until its length passes the given length. Is there an other way? Perhaps a more efficient way in which I can use the same method to do a "soft" trim where I preserve the last word (as shown in the example above) and a hard trim which is pretty much a substring.

Thanks,

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6 Answers

up vote 7 down vote accepted

Below is a method I use to trim long strings in my webapps. The "soft" boolean as you put it, if set to true will preserve the last word. This is the most concise way of doing it that I could come up with that uses a StringBuffer which is a lot more efficient than recreating a string which is immutable.

public static String trimString(String string, int length, boolean soft) {
    if(string == null || string.trim().isEmpty()){
        return string;
    }

    StringBuffer sb = new StringBuffer(string);
    int actualLength = length - 3;
    if(sb.length() > actualLength){
        // -3 because we add 3 dots at the end. Returned string length has to be length including the dots.
        if(!soft)
            return escapeHtml(sb.insert(actualLength, "...").substring(0, actualLength+3));
        else {
            int endIndex = sb.indexOf(" ",actualLength);
            return escapeHtml(sb.insert(endIndex,"...").substring(0, endIndex+3));
        }
    }
    return string;
}

Update

I've changed the code so that the ... is appended in the StringBuffer, this is to prevent needless creations of String implicitly which is slow and wasteful.

Note: escapeHtml is a static import from apache commons:

import static org.apache.commons.lang.StringEscapeUtils.escapeHtml;

You can remove it and the code should work the same.

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How StringBuffer helps performance here? There is no reason why substring, indexOf and length would be faster on StringBuffer than on String. –  Banthar Oct 12 '11 at 10:03
    
Let me clarify, the asker said it was tokenizing and then putting the string back together. Each time he appends a new token back on the string the entire string is destroyed and recreated. For long strings this operation is far more expensive than using a StringBuffer. Though I agree, the performance difference is probably negligible considering that the StringBuffer is created and when we return we are effectively creating a string at least 3 times (substring, append dots, escape [, trim]). –  Ali Oct 12 '11 at 10:08
1  
The problem is that in your code you are not appending anything to StringBuffer. –  Banthar Oct 12 '11 at 10:17
    
I can not test your code because of escapeHtml method –  Tran Dinh Thoai Oct 12 '11 at 10:18
    
Thanks, you're absolutely right the dots should be appended in the StringBuffer at the very least. I'll update my answer after testing the make sure there are no bugs. –  Ali Oct 12 '11 at 10:19
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Here is a simple, regex-based, 1-line solution:

str.replaceAll("(?<=.{12})\\b.*", "..."); // How easy was that!? :)

Explanation:

  • (?<=.{12}) is a negative look behind, which asserts that there are at least 12 characters to the left of the match, but it is a non-capturing (ie zero-width) match
  • \b.* matches the first word boundary (after at least 12 characters - above) to the end

This is replaced with "..."

Here's a test:

public static void main(String[] args) {
    String input = "The quick brown fox jumps over the lazy dog.";
    String trimmed = input.replaceAll("(?<=.{12})\\b.*", "...");
    System.out.println(trimmed);
}

Output:

The quick brown...
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Can you explain the regex? I like the solution, though I'll have to see how it stacks up speed wise to Ali's answer below. –  AMZFR Oct 12 '11 at 9:59
    
@AMZFR don't use regex if you worry about speed. It's going to be much slower than indexOf + substring (10-100 times slower). –  Banthar Oct 12 '11 at 10:28
    
Thanks @Banthar, I was leaning against simply because I like knowing whats going on in the code, still the regex solution is quite elegant. –  AMZFR Oct 12 '11 at 10:30
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Please try following code:

private String trim(String src, int size) {
    if (src.length() <= size) return src;
    int pos = src.lastIndexOf(" ", size - 3);
    if (pos < 0) return src.substring(0, size);
    return src.substring(0, pos) + "...";
}
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Try searching for the last occurence of a space that is in a position less or more than 11 and trim the string there, by adding "...".

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Your requirements aren't clear. If you have trouble articulating them in a natural language, it's no surprise that they'll be difficult to translate into a computer language like Java.

"preserve the last word" implies that the algorithm will know what a "word" is, so you'll have to tell it that first. The split is a way to do it. A scanner/parser with a grammar is another.

I'd worry about making it work before I concerned myself with efficiency. Make it work, measure it, then see what you can do about performance. Everything else is speculation without data.

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Fair enough. What I meant by "preserve the last word" is I do not want to truncate a string on any character except a white space? Does that make sense? –  AMZFR Oct 12 '11 at 10:03
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How about:

mystring = mystring.replaceAll("^(.{12}.*?)\b.*$", "$1...");
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Can you explain the regex? Would this preserve the last word or not? Your regex is different from Bohemian's. –  AMZFR Oct 12 '11 at 10:00
    
Take the first 12 characters, and the minimum after that to complete the word, and add ... –  Highly Irregular Oct 13 '11 at 2:25
    
I actually forgot to add something to the end of the pattern to remove the rest of the string. Editing now to fix. –  Highly Irregular Oct 13 '11 at 2:25
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