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Using the code of a question I just answered as an example

Starting with the string

30-Nov-2012 30-Nov-2012 United Kingdom, 31-Oct-2012 31-Oct-2012 United
Arab Emirates, 29-Oct-2012 31-Oct-2012 India 

What if we wanted to replace the space after every four-digit number with an @ such that you end up with something like this:

30-Nov-2012@30-Nov-2012@United Kingdom, 31-Oct-2012@31-Oct-2012@United
Arab Emirates, 29-Oct-2012@31-Oct-2012@India  

How much more efficient is it to use a back-reference rather than a positive lookbehind (if at all)?

back-reference:

inputString.replaceAll("(\\d{4})\\s", "$1@");

positive lookbehind:

inputString.replaceAll("(?<=\\d{4})\\s", "@");
share|improve this question
    
Have you tried it? –  Keppil Oct 31 '12 at 8:00

2 Answers 2

up vote 5 down vote accepted

I admit my testing methodology is crude and may be flawed (furthermore I don't know Java, only learning enough to write this answer), but my initial evidence proves contrary to @dasblinkenlight's answer. I ran the following code:

import java.util.*;
import java.lang.*;

class Main
{
    private static void test (String regex, String replace, int repetitions)
    {
        long startTime = System.currentTimeMillis();
        for (int i = 0; i < repetitions; i++)
        {
            String str = "30-Nov-2012 United Kingdom, 31-Oct-2012 31-Oct-2012 United Arab Emirates, 29-Oct-2012 31-Oct-2012 India, ";
            str.replaceAll(regex, replace);
        }
        long endTime = System.currentTimeMillis();
        System.out.println("Execution time: " + Long.toString(endTime - startTime));
    }

    public static void main (String[] args) throws java.lang.Exception
    {
        test("(\\d{4})\\s", "$1@", 10000);
        test("(?<=\\d{4})\\s", "@", 10000);
        test("(\\d{4})\\s", "$1@", 10000);
        test("(?<=\\d{4})\\s", "@", 10000);
        test("(\\d{4})\\s", "$1@", 10000);
        test("(?<=\\d{4})\\s", "@", 10000);
        test("(\\d{4})\\s", "$1@", 10000);
        test("(?<=\\d{4})\\s", "@", 10000);
    }
}

...here, http://ideone.com/WkHLMN, and the output was:

Execution time: 164
Execution time: 140
Execution time: 96
Execution time: 135
Execution time: 95
Execution time: 133
Execution time: 94
Execution time: 130

Ignoring the first set of cases as outliers having to do with initialization, the remainder cases seem to indicate that the latter expression, using the positive lookbehind assertion, might do as much as 50% more work! I suspect this may be the case because backreferences would require going back to check whether an assertion is true, after passing the characters of interest.

share|improve this answer
    
nice analysis... –  Anirudha Oct 31 '12 at 8:55
2  
Finding things out through actually measuring. I approve! –  Donal Fellows Oct 31 '12 at 9:02
    
+1 nice testing –  Ria Oct 31 '12 at 9:06

There is no back-reference in your first example, it's a reference to a numbered capturing group in the output.

The efficiency of the search in both cases is the same; the difference is only in what is captured. Therefore, the overall difference in performance will boil down to the differences in replacing string content: in the first case, two strings are combined to form a replacement, while in the second case only one string is used. Theoretically, the first case should require slightly more work, but in practice it is unlikely that the difference would be noticeable.

EDIT: As the tests by acheong87 show, using positive lookahead is nearly 50% less efficient in Java. Moreover, this inefficiency does not appear to be Java-specific (although its magnitude in Java is overwhelming: a C# program equivalent to acheong87's shows a slowdown of about 24% under Mono and about 21% under Windows).

I guess the take-home lesson of this exercise is that theoretical near-equivalence of expressions does not guarantee equivalent timing in practice: there is no substitution to profiling of the actual implementation.

share|improve this answer
    
Thanks, exactly the kind of answer that I was looking for. –  Michael M. Oct 31 '12 at 8:08
2  
@Michael The tutorial is slightly misleading: back reference happens when you refer to the capturing group within the same expression, for example "([A-Z])-\\1". This will match A-A, B-B, C-C, and so on; in this case, \\1 is a back reference, because it refers "back" to a group that has been captured previously. When you use $1 syntax in a replacement string, it's simply a way to refer to a capturing group. –  dasblinkenlight Oct 31 '12 at 8:16
    
Thanks for the explanation! –  Michael M. Oct 31 '12 at 8:19
    
@dasblinkenlight - I trust your intuition more than I trust my testing; would you kindly examine my answer and let me know your thoughts? –  Andrew Cheong Oct 31 '12 at 8:39
    
@acheong87 Very interesting -- it looks like there is some additional work associated with not capturing the content of the positive look-behind. This looks very strange, because the efficiency of the two should be the same, at least theoretically. –  dasblinkenlight Oct 31 '12 at 8:50

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