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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 when I use the URL.

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5 Answers 5

up vote 401 down vote accepted

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 = "" + 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://...")
                .appendQueryParameter("key", "val")
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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
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
@hgpc - take a look at section 3 of RFC3986 ( 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
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
Why am I getting a deprecation warning using this? Used Uri.encode(query); instead. – prasanthv Apr 6 '14 at 16:13

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 = " 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.

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This should be the correct answer. this is the formal and clear way to do this – Asanka Senavirathna Aug 29 '12 at 12:27
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
Surely this should be correct answer. – AB1209 Oct 12 '12 at 11:59
Thanks! this is the correct answer – Roger Garzon Nieto May 17 '13 at 17:31
Thanks for the post :) But I am facing a problem. If the url is already encoded partially, it is encoding the already encoded parts. What should I do? For example:… The %20 is coded to %2520 – berserk Jan 7 '14 at 7:17

For android, I would use 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.


String urlEncoded = "" + Uri.encode(query);
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Unfortunately Uri.encode("a=1&b=1") produces a%3D1%26b%3D1 but expected a=1&b=1 – loentar Apr 23 at 12:06
@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 at 1:06

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

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this is not the best solution, but it is definitely a nice quick fix...thanx – Perroloco Mar 30 '14 at 19:39
This is the quickest fix when the whole URL is unreliable. Thanks! – user1032613 Jul 17 '14 at 0:08
Are you sure the % should be allowed? Should it not be encoded? – MediumOne May 28 at 12:23
How to encode this url to be possible to share and then user be able to open the link and see the page :استند-آب-كمدي-حسن-ريوندي-در-يزد.html – Ahmad Ebrahimi Nov 2 at 21:21
try {
                    query = URLEncoder.encode(query, "utf-8");
                } catch (UnsupportedEncodingException e) {
                    // TODO Auto-generated catch block
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