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I have a URL in a String object like this:

http://bhorowitz.com/2011/03/24/bubble-trouble-i-don't-think-so/

the URL may or may not contain unicode characters that need to be encoded. For example, the link above should be transformed to:

http://bhorowitz.com/2011/03/24/bubble-trouble-i-don%e2%80%99t-think-so/

before I redirect to it.

How do I properly escape all special characters (such as unicode) while keeping the rest of the URL structure intact? Is there something out there already that will do this or do I need to roll my own?

Edit: the tricky part is that I need to escape only invalid characters while leaving the rest of the URL untouched (e.g. http:// should remain http:// and should not be escaped). URLEncoder, as far as I can tell, does not allow me to do this.

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use URLEncoder only on the part of URI that requires encoding, not the whole URI. –  irreputable Mar 27 '11 at 22:41

3 Answers 3

http://download.oracle.com/javase/6/docs/api/java/net/URLEncoder.html

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Thanks, I've tried that but that actually converts the URL in the example to something like this: http%3A%2F%2Fbhorowitz.com%2F2011%2F03%2F24%2Fbubble-trouble-i-don%E2%80%99t-thi‌​nk-so%2F –  bebeastie Mar 27 '11 at 21:53

JDK ships with enough tools to handle what you want. Please reffer to documentation: http://download.oracle.com/javase/6/docs/api/java/net/URLEncoder.html and http://download.oracle.com/javase/6/docs/api/java/net/URLDecoder.html

Usage is pretty straightforward.

String decoded = URLDecoder.decode("url%20to%20decode", "UTF-8");
String encoded = URLEncoder.encode("url to decode", "UTF-8");

Please notice, that proper character encoding should be provided. Both classes have single parameter versions of those methods, but they are considered deprecated.

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@Lukas thanks, I've tried that (using the proper character encoding) but the output is actually something like this: http%3A%2F%2Fbhorowitz.com%2F2011%2F03%2F24%2Fbubble-trouble-i-don%E2%80%99t-th‌​ink-so%2F . The problem is that I only need the special characters (like the apostrophe in this case) to be escaped, while keeping the rest of the URL (like : and /) intact. –  bebeastie Mar 27 '11 at 22:03
    
Why? Any correct receiver of the URL should just decode all of the %-escapes. –  bmargulies Mar 28 '11 at 0:04
    
I agree with bmargulies. I guess if You wish just to perform some text replacement, You should be good simply by using String.replaceAll(String regex, Stringe replacement); See: download.oracle.com/javase/6/docs/api/java/lang/…, java.lang.String) –  ŁukaszBachman Mar 28 '11 at 12:31

I believe this does what you want. It'll encode anything not a / in the path though. It's not perhaps the most elegant solution, yet it should be safe to use.

    // make sure url is valid before parsing it
    try {
        new URL(url);
    } catch (MalformedURLException e) {
        return;
    }

    StringBuilder sb = new StringBuilder();
    Scanner scanner = new Scanner(url).useDelimiter("/");

    // append the protocol part, e.g. http://
    sb.append(scanner.next());
    sb.append('/');

    // append the hostname part
    sb.append(scanner.next());
    sb.append('/');

    // encode each part of path
    while (scanner.hasNext()) {
        String part = scanner.next();
        sb.append(URLEncoder.encode(part, "UTF-8"));
        sb.append('/');
    }

    // remove trailing slash if original doesn't have one
    if (!url.endsWith("/")) {
        sb.deleteCharAt(sb.length() - 1);
    }

    String encoded = sb.toString();
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