323

How do you encode a URL in Android?

I thought it was like this:

final String encodedURL = URLEncoder.encode(urlAsString, "UTF-8");
URL url = new URL(encodedURL);

If I do the above, the http:// in urlAsString is replaced by http%3A%2F%2F in encodedURL and then I get a java.net.MalformedURLException when I use the URL.

614

You don't encode the entire URL, only parts of it that come from "unreliable sources".

String query = URLEncoder.encode("apples oranges", "utf-8");
String url = "http://stackoverflow.com/search?q=" + query;

Alternatively, you can use Strings.urlEncode(String str) of DroidParts that doesn't throw checked exceptions.

Or use something like

String uri = Uri.parse("http://...")
                .buildUpon()
                .appendQueryParameter("key", "val")
                .build().toString();
  • 1
    What if the whole url is unreliable? Should I encode everything except the protocol? I kind of expected a convenience method to do this. – hpique Jul 20 '10 at 0:28
  • 5
    Then it's just a broken url. The idea is to prevent the query part from breaking the url. – yanchenko Jul 20 '10 at 0:37
  • 5
    @hgpc - take a look at section 3 of RFC3986 (tools.ietf.org/html/rfc3986#section-3). It tells you how to encode the various portions of a URI. Unfortunately each portion of the URI (host, path, query, etc.) has slightly different encoding rules. – D.Shawley Jul 20 '10 at 1:49
  • 2
    This is fine in you are just dealing with a specific part of a URL and you know how to construct or reconstruct the URL. For a more general approach which can handle any url string, see my answer below. – Craig B Jan 22 '12 at 17:08
  • 8
    Why am I getting a deprecation warning using this? Used Uri.encode(query); instead. – prasanthv Apr 6 '14 at 16:13
162

I'm going to add one suggestion here. You can do this which avoids having to get any external libraries.

Give this a try:

String urlStr = "http://abc.dev.domain.com/0007AC/ads/800x480 15sec h.264.mp4";
URL url = new URL(urlStr);
URI uri = new URI(url.getProtocol(), url.getUserInfo(), url.getHost(), url.getPort(), url.getPath(), url.getQuery(), url.getRef());
url = uri.toURL();

You can see that in this particular URL, I need to have those spaces encoded so that I can use it for a request.

This takes advantage of a couple features available to you in Android classes. First, the URL class can break a url into its proper components so there is no need for you to do any string search/replace work. Secondly, this approach takes advantage of the URI class feature of properly escaping components when you construct a URI via components rather than from a single string.

The beauty of this approach is that you can take any valid url string and have it work without needing any special knowledge of it yourself.

  • 19
    This should be the correct answer. this is the formal and clear way to do this – Asanka Senavirathna Aug 29 '12 at 12:27
  • 3
    It can also be a good idea to urldecode urlStr before sending it to the URL constructor. URLDecoder.decode(urlStr) – Jakob Eriksson Sep 30 '12 at 11:31
  • 3
    Surely this should be correct answer. – Arun Badole Oct 12 '12 at 11:59
  • 2
    @berserk If it is already encoded, don't encode it. You shouldn't get into a state where it is partially encoded, or you aren't sure whether it is or isn't encoded. – user207421 Jan 17 '14 at 7:00
  • 3
    This method doesn't encode characters like ğ to %C4%9F. Accepted one encodes! – Alexander Prokofyev May 30 '15 at 15:11
68

For android, I would use String android.net.Uri.encode(String s)

Encodes characters in the given string as '%'-escaped octets using the UTF-8 scheme. Leaves letters ("A-Z", "a-z"), numbers ("0-9"), and unreserved characters ("_-!.~'()*") intact. Encodes all other characters.

Ex/

String urlEncoded = "http://stackoverflow.com/search?q=" + Uri.encode(query);
  • 2
    Unfortunately Uri.encode("a=1&b=1") produces a%3D1%26b%3D1 but expected a=1&b=1 – loentar Apr 23 '15 at 12:06
  • 11
    @loentar That's the expected result. If the user enters a=1&b=1 as a query, you want to query exactly that. – Anubian Noob Aug 21 '15 at 1:06
  • How different this with URLEncoder.encode(StringHere,"UTF-8") – stuckedoverflow Jul 18 at 15:38
49

Also you can use this

private static final String ALLOWED_URI_CHARS = "@#&=*+-_.,:!?()/~'%";
String urlEncoded = Uri.encode(path, ALLOWED_URI_CHARS);

it's the most simple method

2
try {
                    query = URLEncoder.encode(query, "utf-8");
                } catch (UnsupportedEncodingException e) {
                    // TODO Auto-generated catch block
                    e.printStackTrace();
                }
1

you can use below methods

public static String parseUrl(String surl) throws Exception
{
    URL u = new URL(surl);
    return new URI(u.getProtocol(), u.getAuthority(), u.getPath(), u.getQuery(), u.getRef()).toString();
}

or

public String parseURL(String url, Map<String, String> params)
{
    Builder builder = Uri.parse(url).buildUpon();
    for (String key : params.keySet())
    {
        builder.appendQueryParameter(key, params.get(key));
    }
    return builder.build().toString();
}

the second one is better than first.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.