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I want to compare an URI String over different patterns in java and I want fastest code possible.

Should I use :

if(uri.contains("/br/fab") || uri.contains("/br/err") || uri.contains("/br/sts")

Or something like :

if(uri.matches(".*/br/(fab|err|sts).*"))

Note that I can have a lot more uri and this method is called very often.

What is the best answer between my choices ?

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4  
In the immortal words of Harry Hill: "There's only one way to find out..." –  Dan Dyer Jan 7 '10 at 21:28
1  
why don't you make some iterations so you can measure it by yourself... explanations will then make it richer. –  Oso Jan 7 '10 at 21:28
    
Good idea, I'm trying it right now. –  Mike Jan 7 '10 at 21:30
    
Better try a non-greedy [^/]*(?:/[^/]*)*?/br/(fab|err|sts).*. –  Gumbo Jan 7 '10 at 21:31
1  
For the first option, you may want to study your data so that you know the expected frequency of 'fab', 'err', and 'sts'. In this way, you can order the expressions in the if condition accordingly. This might help constructing with the regex as well, though I doubt it. ps. I strongly doubt if this is a bottleneck. –  Michael Easter Jan 7 '10 at 21:48

6 Answers 6

up vote 12 down vote accepted

They're both fast enough to be over before you know it. I'd go for the one that you can read more easily.

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If you're going to use a regular expression, create it up-front and reuse the same Pattern object:

private static final Pattern pattern = Pattern.compile(".*/br/(fab|err|sts).*");

Do you actually need the ".*" at each end? I wouldn't expect it to be required, if you use Matcher.find().

Which is faster? The easiest way to find out is to measure it against some sample data - with as realistic samples as possible. (The fastest solution may very well depend on

Are you already sure this is a bottleneck though? If you've already measured the code enough to find out that it's a bottleneck, I'm surprised you haven't just tried both already. If you haven't verified that it's a problem, that's the first thing to do before worrying about the "fastest code possible".

If it's not a bottleneck, I would personally opt for the non-regex version unless you're a regex junkie. Regular expressions are very powerful, but also very easy to get wrong.

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3  
Let's say it's a theory question. Optimization can be interesting even if it's not a bottleneck. –  OverMachoGrande Jan 7 '10 at 21:35
    
@Robert: It can be, but this is likely to depend on the actual data. You could come up with a test showing one approach to be faster - and then with the OP's real data you could get the other answer. I think it's actually more important to learn the lesson that you should check for bottlenecks before you assume you need the "fastest code possible". –  Jon Skeet Jan 7 '10 at 22:04

Ok as many as suggested, I've done a test and it is faster to use contains. As Ewan Todd said, they both fast enough to don't really bother with that.

Thank you everyone.

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I would expect contains() to be faster since it won't have to compile and iterate through a (relatively) complex regular expression, but rather simply look for a sequence of characters.

But (as with all optimisations) you should measure this. Your particular situation may impact results, to a greater or lesser degree.

Furthermore, is this known to be causing you grief (wrt. performance) ? If not, I wouldn't worry about it too much, and choose the most appropriate solution for your requirements regardless of performance issues. Premature optimisation will cause you an inordinate amount of grief if you let it!

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If the bit you are trying to match against is always at the beginning, or end, or is in some other way predictable then: neither!

For example, if urls are like http://example.com/br/fab or http://example.com/br/err all the time, then you could store "br/fab" and "br/err" etc in a HashSet or similar, and then given an incoming URL, chop off the last part of it and query the Set to see if it contains it. This will scale better than either method you gave (with a HashSet it should get no slower to lookup entries no matter how many there are).

If you do need to match against substrings appearing in arbitrary locations... it depends what you mean by "a lot more". One thing you should do regardless of the specifics of the problem is try things out and benchmark them!

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1  
If it's only a few entries, using a HashSet would be slower than just using "endsWith" three times... A hashset would scale well in terms of number of entries to match against, but there's no indication that there will be a large number of these. It won't scale any better than the other methods for large numbers of URIs to check. –  Jon Skeet Jan 7 '10 at 21:34
    
I was under the impression he meant that he might be matching against many more entries. Yes, if it's just lots of uris and few entries, any method will scale linearly. –  ZoFreX Jan 8 '10 at 1:45

As this is first I'll add up some benchmark information.

The below code produced the following output

 contains took: 70 
 matches took: 113 
 matches with pre pattern took: 419

The test class

public class MatchesTester {

public static void main(String[] args) {

    String typeStr = "Nunc rhoncus odio ac tellus pulvinar, et volutpat sapien aliquet. Nam sed libero nec ex laoreet pretium sed id mi. Aliquam erat volutpat. Aenean at erat vitae massa iaculis mattis. Quisque sagittis massa orci, sit amet vestibulum turpis tempor a. Etiam eget venenatis arcu. Nunc enim augue, pulvinar at nulla ut, pellentesque porta sapien. Maecenas ut erat id nisi tincidunt faucibus eget vel erat. Morbi quis magna et massa pharetra venenatis ut a lacus. Vivamus egestas vitae nulla eget tristique. Praesent consectetur, tellus quis bibendum suscipit, nisl turpis mattis sapien, ultrices mollis leo quam eu eros.application/binaryNunc rhoncus odio ac tellus pulvinar, et volutpat sapien aliquet. Nam sed libero nec ex laoreet pretium sed id mi. Aliquam erat volutpat. Aenean at erat vitae massa iaculis mattis. Quisque sagittis massa orci, sit amet vestibulum turpis tempor a. Etiam eget venenatis arcu. Nunc enim augue, pulvinar at nulla ut, pellentesque porta sapien. Maecenas ut erat id nisi tincidunt faucibus eget vel erat. Morbi quis magna et massa pharetra venenatis ut a lacus. Vivamus egestas vitae nulla eget tristique. Praesent consectetur, tellus quis bibendum suscipit, nisl turpis mattis sapien, ultrices mollis leo quam eu eros.";

    int timesToTest = 10000;
    long start =  System.currentTimeMillis();
    int count = 0;
    //test contains
    while(count < timesToTest){
        if (typeStr.contains("image") || typeStr.contains("audio") || typeStr.contains("video") || typeStr.contains("application")) {
            //do something non expensive like creating a simple native var
            int a = 10;
        }
        count++;
    }
    long end = System.currentTimeMillis();
    System.out.println("contains took: "+ (end - start));

    long start2 =  System.currentTimeMillis();
    count = 0;
    while(count < timesToTest){
        if (typeStr.matches("(image|audio|video|application)")) {
            //do something non expensive like creating a simple native var
            int a = 10;
        }
        count++;
    }
    long end2 = System.currentTimeMillis(); //new var to have the same cost as contains
    System.out.println("matches took: "+ (end2 - start2));


    long start3 =  System.currentTimeMillis();
    count = 0;
    Pattern pattern = Pattern.compile("(image|audio|video|application)");
    while(count < timesToTest){
        if (pattern.matcher(typeStr).find()) {
            //do something non expensive like creating a simple native var
            int a = 10;
        }
        count++;
    }
    long end3 = System.currentTimeMillis(); //new var to have the same cost as contains
    System.out.println("matches with pre pattern took: "+ (end3 - start3));


}
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This benchmark is not really accurate. You should use a library such as Caliper to do so. See: stackoverflow.com/questions/504103/… –  Mike Nov 17 at 18:48

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