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  String  url =    "http://search.host.com/search-ui/?mq=*%3A*&f=productLine%WS%3A+Globalstar%22%5D&f=product%5B"

I want to extract only search-ui from the above link using regular expressions. How can I do this in most efficient way. As I can parse the above url using split method. But is there any other way to achieve this.

String a[] = url.split("/");

So by this way a[3] has search-ui. Is there any other efficient way..

Any help will be appreciated.

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when you say efficient you mean fast or accurate? –  abresas Nov 11 '11 at 0:47
    
@abresas, yes I mean fast.. –  Webby Nov 11 '11 at 0:48
2  
then split will be faster than regular expressions –  abresas Nov 11 '11 at 0:48
    
Without seeing another example to get the requirements. it's hard to say. Is it the first node of the URL after the .com, the last node before the query stuff, or what??? Currently, return "agilesearch-ui; is a correct answer. :-) –  user949300 Nov 11 '11 at 0:50
    
Your example isn't clear enough. Do you want to extract just the path bit of the URL without the query or just the first section of the path? If it is always "agilesearch-ui" then why do you need to parse. Just make a constant. –  gigadot Nov 11 '11 at 0:51
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1 Answer

up vote 2 down vote accepted

using split():

urlString.split("/")[3];

or something more accurate:

urlString.split(".com/")[1].split("/?")[0];

by the way, it'll be a faster to use a for loop instead of using split but split is quite easier and more readable.

using regex:

regexes are more flexible and accurate but slower.

Pattern pattern = Pattern.compile("^http://.*?/(.*?)/.*?$");
Matcher matcher = pattern.matcher(urlString);
matcher.group(0);
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