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I am trying to get a java.net.URI object from a String. The string has some characters which will need to be replaced by their percentage escape sequences. But when I use URLEncoder to encode the String with UTF-8 encoding, even the / are replaced with their escape sequences.

How can I get a valid encoded URL from a String object?

http://www.google.com?q=a b gives http%3A%2F%2www.google.com... whereas I want the output to be http://www.google.com?q=a%20b

Can someone please tell me how to achieve this.

I am trying to do this in an Android app. So I have access to a limited number of libraries.

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9 Answers

up vote 38 down vote accepted

You might try: org.apache.commons.httpclient.util.URIUtil.encodeQuery in Apache commons-httpclient project

Like this (see URIUtil):

URIUtil.encodeQuery("http://www.google.com?q=a b")

will become:

http://www.google.com?q=a%20b

You can of course do it yourself, but URI parsing can get pretty messy...

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Thanks Hans. I am trying to do this in an Android app. So I have access to a limited number of libraries. Do you have any other suggestions? Thanks again –  lostInTransit Feb 21 '09 at 20:53
2  
Perhaps you could have a look at the source of the URIUtil class (it is open source after all). I would assume that it is possible to extract the necessary code from that class. –  Hans Doggen Feb 22 '09 at 15:39
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You can use the multi-argument constructors of the URI class. From the URI javadoc:

The multi-argument constructors quote illegal characters as required by the components in which they appear. The percent character ('%') is always quoted by these constructors. Any other characters are preserved.

So if you use

URI uri = new URI("http", "www.google.com?q=a b");

Then you get http:www.google.com?q=a%20b which isn't quite right, but it's a little closer.

If you know that your string will not have URL fragments (e.g. http://example.com/page#anchor), then you can use the following code to get what you want:

String s = "http://www.google.com?q=a b";
String[] parts = s.split(":",2);
URI uri = new URI(parts[0], parts[1], null);

To be safe, you should scan the string for # characters, but this should get you started.

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The java.net blog had a class the other day that might have done what you want (but it is down right now so I cannot check).

This code here could probably be modified to do what you want:

http://svn.apache.org/repos/asf/incubator/shindig/trunk/java/common/src/main/java/org/apache/shindig/common/uri/UriBuilder.java

Here is the one I was thinking of from java.net: https://urlencodedquerystring.dev.java.net/

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If you don't like libraries, how about this?

Note that you should not use this function on the whole URL, instead you should use this on the components...e.g. just the "a b" component, as you build up the URL - otherwise the computer won't know what characters are supposed to have a special meaning and which ones are supposed to have a literal meaning.

/** Converts a string into something you can safely insert into a URL. */
public static String encodeURIcomponent(String s)
{
    StringBuilder o = new StringBuilder();
    for (char ch : s.toCharArray()) {
        if (isUnsafe(ch)) {
            o.append('%');
            o.append(toHex(ch / 16));
            o.append(toHex(ch % 16));
        }
        else o.append(ch);
    }
    return o.toString();
}

private static char toHex(int ch)
{
    return (char)(ch < 10 ? '0' + ch : 'A' + ch - 10);
}

private static boolean isUnsafe(char ch)
{
    if (ch > 128 || ch < 0)
        return true;
    return " %$&+,/:;=?@<>#%".indexOf(ch) >= 0;
}
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This does not work (at least in some cases). E.g. character 'Š' is encoded as '%M1', but should be encoded as '%C5%A0'. –  mindas May 10 '11 at 10:47
    
This also doesn't work for characters such as tab. I would suggest that this be changed to be unsafe if it doesn't match [A-Za-z0-9_-.~]. See en.wikipedia.org/wiki/Percent-encoding –  Gray Jul 19 '11 at 20:06
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Or perhaps you could use this class:

http://developer.android.com/reference/java/net/URLEncoder.html

Which is present in Android since API level 1.

Annoyingly however, it treats spaces specially (replacing them with + instead of %20). To get round this we simply use this fragment:

URLEncoder.encode(value, "UTF-8").replace("+", "%20");

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This would give google.com?q=a+b not google.com?q=a%20b as desired. –  rpcutts Mar 7 '11 at 14:42
    
Ah, yes, found that myself a few weeks afterwards. Will modify answer to reflect what we actually end up using –  MrCranky Mar 8 '11 at 9:39
1  
This method is now depreciated, users should specify a method on encoding see: docs.oracle.com/javase/1.4.2/docs/api/java/net/URLEncoder.html –  Aidanc Nov 12 '13 at 18:49
    
True, I missed that. Answer amended. –  MrCranky Nov 14 '13 at 10:06
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Android has always had the Uri class as part of the SDK: http://developer.android.com/reference/android/net/Uri.html

You can simply do something like:

String requestURL = String.format("http://www.example.com/?a=%s&b=%s", Uri.encode("foo bar"), Uri.encode("100% fubar'd"));
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excellent suggestion - thanks –  Brian Sweeney May 2 '11 at 17:29
3  
Thanks a lot! It's ridiculous how long it takes sometimes to find a simple Java function! –  Abdo Sep 27 '12 at 7:57
1  
Unfortunately, the encode() method is crap when trying to encode forward slashes ("/"). I just used a plain old String.replace() to get the job done. That was very lame... searchQuery.replace("/", "%2f"); –  Andrew Feb 28 '13 at 17:12
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I had similar problems for one of my projects to create a URI object from a string. I couldn't find any clean solution either. Here's what I came up with :

public static URI encodeURL(String url) throws MalformedURLException, URISyntaxException  
{
    URI uriFormatted = null; 

    URL urlLink = new URL(url);
    uriFormatted = new URI("http", urlLink.getHost(), urlLink.getPath(), urlLink.getQuery(), urlLink.getRef());

    return uriFormatted;
}

You can use the following URI constructor instead to specify a port if needed:

URI uri = new URI(scheme, userInfo, host, port, path, query, fragment);
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Doesn't handle converting a question mark (I tried it with the URL: http://www.google.com/Do you like Spam? and it took care of the spaces, but not the question mark at the end) –  kentcdodds Mar 27 '12 at 18:57
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I'm going to add one suggestion here aimed at Android users. You can do this which avoids having to get any external libraries. Also, all the search/replace characters solutions suggested in some of the answers above are perilous and should be avoided.

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.

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Well I tried using

String converted = URLDecoder.decode("toconvert","UTF-8");

I hope this is what you were actually looking for?

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Thanks man. That worked! –  Robert Reiz Jan 6 at 9:44
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