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I must elaborate a regexp that should match string with the following restrictions :

  • The string candidate must not start with foo
  • The string candidate must not contain with /foo
  • The string candidate must end with bar

I came up with the following pattern, but I am pretty sure there are more elegant and/or efficient solutions.

String match = "quxfoobar";
String notMatch = "qux/foobar";
String notMatch2 = "fooquxbar";
String pattern = "(?!foo)(?!.+/foo).*bar";
boolean m = match.matches(pattern);

Thanks for your inputs.

NB : Please, note that I am using Java with the String#matches method to match my pattern against my candidates strings

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I don't see anything glaringly wrong with your current one. If you want to debug, you can check out this question. –  Brian Feb 6 '13 at 17:14
1  
Please, use a constant of Pattern for avoid recompile the regular expression in every call of matches. –  Paul Vargas Feb 6 '13 at 17:18
1  
Like @PaulVargas if you're concerned about efficiency, compile your pattern once into a Pattern and put it in a static variable, then do pattern.matcher(match).matches –  Brian Feb 6 '13 at 17:19
    
The regepx is called inside a for loop. I declared the String pattern just above the for loop as follows : final String p = "...";. I guess that means there is a regexp compilation at each iteration in the loop while using final Pattern p = Pattern.compile("..."); would avoid recompilation. As for the static modifier, I am not sure I need it for my use case. –  zoom Feb 6 '13 at 21:54
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3 Answers

up vote 2 down vote accepted

Why regex? For fixed string, there are already built-in functions, which should be much faster than regex approach.

if (!str.startsWith("foo") && str.endsWith("bar") && !str.contains("/foo")) {
    // Do your stuff here
}
share|improve this answer
    
+1, regex isn't always the best solution for text matching when you can basically just do linear searching like this. –  Brian Feb 6 '13 at 18:05
    
I was hesitating about using this approach at first glance but I should not. It is obviously more efficient and way clearer (enhancing code maintainability). –  zoom Feb 6 '13 at 21:42
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Regular expressions perform less well the longer and more complicated that they get. For something like this, it should be better performing and easier to understand to match the input against three regular expressions.

String match = "quxfoobar";
Pattern start = Pattern.compile("^foo");
Pattern contain = Pattern.compile("\\/foo");
Pattern end = Pattern.compile("bar$");
boolean m = (
   !start.matcher(match).find() &&
   !contain.matcher(match).find() &&
   end.matcher(match).find()
);

Edit: since there is some question as to whether three regex would be faster in this case, I wrote a benchmark. When I run it, the single regular expression (taken from another answer) is three times as slow as running with three separate regular expressions.

import java.util.regex.*;
import java.util.*;

public class Test {

    private static final Pattern START = Pattern.compile("^foo");
    private static final Pattern CONTAIN = Pattern.compile("\\/foo");
    private static final Pattern END = Pattern.compile("bar$");

    private static final Pattern ONEPATTERN = Pattern.compile("^(?!foo)(\\/(?!foo)|[^\\/])*bar$");



    public static void main(String[] args){
        String[] in = createInput();
        timeOnePattern(in);
        timeThreePatterns(in);
        System.exit(0);
    }

    public static String[] createInput(){
        String[] words = {"foo","bar","baz","biz","/foo"};
        Random rand = new Random();
        String[] in = new String[10000];
        for (int i=0; i<in.length; i++){
            StringBuilder sb = new StringBuilder();
            for (int j=0; j<4; j++){
                sb.append(words[rand.nextInt(words.length)]);
            }
            in[i] = sb.toString();
        }
        return in;
    }

    public static void timeThreePatterns(String[] in){
        long startTime = System.nanoTime();
        for (String s: in){
            boolean b = (!START.matcher(s).find() && !CONTAIN.matcher(s).find() && END.matcher(s).find());
        }
        long endTime = System.nanoTime();
        System.out.println("Three regular expressionv took " + (endTime - startTime) + " nanoseconds.");
    }

    public static void timeOnePattern(String[] in){
        long startTime = System.nanoTime();
        for (String s: in){
            ONEPATTERN.matcher(s).matches();
        }
        long endTime = System.nanoTime();
        System.out.println("Single regular expression took " + (endTime - startTime) + " nanoseconds.");
    }
}
share|improve this answer
    
-1 unless you can provide a citation for your first sentence. They're implemented using state machines which have a finite running time. Running multiple expressions like this may actually take longer because you have to compile 3 different expressions. –  Brian Feb 6 '13 at 17:16
    
Java regex is implement using the same techniques that Perl uses, NOT using state machines. Here is a good artcle about Perl regex vs NFA: swtch.com/~rsc/regexp/regexp1.html –  Stephen Ostermiller Feb 6 '13 at 17:19
    
Fair enough, well-written regular expressions is what I should have said. In any case, do the look-aheads get compiled to an NFA? I believe they do, at which point having multiple expressions is unnecessary. –  Brian Feb 6 '13 at 17:23
    
I added code to my answer that benchmarks three vs one. Three is indeed faster. –  Stephen Ostermiller Feb 6 '13 at 17:49
    
Use the expression from the OP's question. As the other answer states in the comments: "After some tests, his is better than mine..." –  Brian Feb 6 '13 at 17:51
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This one could suit your needs too:

^(?!foo)(/(?!foo)|[^/])*bar$
  • ^(?!foo): the start of the string must not be followed by foo
  • (/(?!foo)|[^/])*: either a / that isn't followed by foo, or any char but a /, n times
  • bar$: the string must end with bar

Demo

But after some tests, yours is quicker than mine. Since I can't see any other relevant solution based on a regexp, I guess yours is finally the most elegant and/or efficient one ;)

share|improve this answer
    
Does this perform better than his current one, though? Can you elaborate on this? His solution works, AFAIK. –  Brian Feb 6 '13 at 17:17
    
@Brian Good point. After some tests, his is better than mine... –  sp00m Feb 6 '13 at 17:33
1  
@sp00m: Try to swap [^/] to front. The ordering affects which one the regex engine chooses to explore first. –  nhahtdh Feb 6 '13 at 17:54
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