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I have a string as : "This is a URL which should be used"

I just need to extract the URL that is starting from http and ending at pdf :

String sLeftDelimiter = "http://";
String[] tempURL = sValueFromAddAtt.split(sLeftDelimiter );
String sRequiredURL = sLeftDelimiter + tempURL[1];

This gives me the output as " which should be used"

Need help on this.

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Related to this question, please check it out: [How to detect the presence of URL in a string][1] [1]:… – Crazenezz Apr 16 '12 at 8:50

4 Answers 4

up vote 3 down vote accepted

This kind of problem is what regular expressions were made for:

Pattern findUrl = Pattern.compile("\\bhttp.*?\\.pdf\\b");
Matcher matcher = findUrl.matcher("This is a URL which should be used");
while (matcher.find()) {

The regular expression explained:

  • \b before the "http" there is a word boundary (i.e. xhttp does not match)
  • http the string "http" (be aware that this also matches "https" and "httpsomething")
  • .*? any character (.) any number of times (*), but try to use the least amount of characters (?)
  • \.pdf the literal string ".pdf"
  • \b after the ".pdf" there is a word boundary (i.e. .pdfoo does not match)

If you would like to match only http and https, try to use this instead of http in your string:

  • https?\: - this matches the string http, then an optional "s" (indicated by the ? after the s) and then a colon.
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Thanks a lot..this one really the text before after the url can be anything , so this regex for extracting the URL is what i needed. – SMA_JAVA Apr 16 '12 at 9:06
If you want to support arbitrary strings that are either URLs or strings that look like URLs but don't have a protocol handler (e.g., then use Gruber's regular expression – nd. Apr 16 '12 at 9:13

why don't you use startsWith("http://") and endsWith(".pdf") mthods of String class.

Both the method returns boolean value, if both returns true, then your condition succeed else your condition is failed.

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Try this

String StringName="This is a URL which should be used";

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You can use Regular Expression power for here. First you have to find Url in original string then remove other part.

Following code shows my suggestion:

    String regex = "\\b(http|ftp|file)://[-a-zA-Z0-9+&@#/%?=~_|!:,.;]*[-a-zA-Z0-9+&@#/%=~_|]";
    String str = "This is a URL which should be used";

    String[] splited = str.split(regex);

    for(String current_part : splited)
        str = str.replace(current_part, "");


This snippet code cans retrieve any url in any string with any pattern. You cant add customize protocol such as https to protocol part in above regular expression.

I hope my answer help you ;)

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Please note that this pattern does not match internationalized domain names such as http://مثال.إختبار – nd. Apr 17 '12 at 11:42

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