789

Say I have a URL

http://example.com/query?q=

and I have a query entered by the user such as:

random word £500 bank $

I want the result to be a properly encoded URL:

http://example.com/query?q=random%20word%20%A3500%20bank%20%24

What's the best way to achieve this? I tried URLEncoder and creating URI/URL objects but none of them come out quite right.

4

11 Answers 11

1264

URLEncoder is the way to go. You only need to keep in mind to encode only the individual query string parameter name and/or value, not the entire URL, for sure not the query string parameter separator character & nor the parameter name-value separator character =.

String q = "random word £500 bank $";
String url = "https://example.com?q=" + URLEncoder.encode(q, StandardCharsets.UTF_8);

When you're still not on Java 10 or newer, then use StandardCharsets.UTF_8.toString() as charset argument, or when you're still not on Java 7 or newer, then use "UTF-8".


Note that spaces in query parameters are represented by +, not %20, which is legitimately valid. The %20 is usually to be used to represent spaces in URI itself (the part before the URI-query string separator character ?), not in query string (the part after ?).

Also note that there are three encode() methods. One without Charset as second argument and another with String as second argument which throws a checked exception. The one without Charset argument is deprecated. Never use it and always specify the Charset argument. The javadoc even explicitly recommends to use the UTF-8 encoding, as mandated by RFC3986 and W3C.

All other characters are unsafe and are first converted into one or more bytes using some encoding scheme. Then each byte is represented by the 3-character string "%xy", where xy is the two-digit hexadecimal representation of the byte. The recommended encoding scheme to use is UTF-8. However, for compatibility reasons, if an encoding is not specified, then the default encoding of the platform is used.

See also:

10
  • 1
    There can be 2 types of parameters in URL. Query string ( followed by ?) and path parameter (Typically part of URL itself). So, what about path parameters. URLEncoder produces + for space even for path parameters. In-fact it just does not handles anything other than query string. Also, this behavior is not in sync with node js servers. So for me this class is a waste and cannot be used other than for very specific / special scenarios. Jul 30 '17 at 7:15
  • 7
    @sharadendusinha: as documented and answered, URLEncoder is for URL-encoded query parameters conform application/x-www-form-urlencoded rules. Path parameters don't fit in this category. You need an URI encoder instead.
    – BalusC
    Jul 30 '17 at 13:18
  • 1
    As I predicted would happen ... users getting confused because obviously the problem is people need to encode more than just the parameter value. Its a very rare case that you only need to encode a parameter value. Its why I provided my "confused" wiki answer to help folks like @sharadendusinha.
    – Adam Gent
    Aug 3 '17 at 12:41
  • 1
    @WijaySharma: Because URL-specific characters would get encoded as well. You should only do that when you want to pass the entire URL as a query parameter of another URL.
    – BalusC
    Mar 15 '18 at 9:59
  • 2
    " +, not %20" is what I needed to hear. Thank you so much.
    – wetjosh
    Aug 8 '19 at 23:00
193

I would not use URLEncoder. Besides being incorrectly named (URLEncoder has nothing to do with URLs), inefficient (it uses a StringBuffer instead of Builder and does a couple of other things that are slow) Its also way too easy to screw it up.

Instead I would use URIBuilder or Spring's org.springframework.web.util.UriUtils.encodeQuery or Commons Apache HttpClient. The reason being you have to escape the query parameters name (ie BalusC's answer q) differently than the parameter value.

The only downside to the above (that I found out painfully) is that URL's are not a true subset of URI's.

Sample code:

import org.apache.http.client.utils.URIBuilder;

URIBuilder ub = new URIBuilder("http://example.com/query");
ub.addParameter("q", "random word £500 bank \$");
String url = ub.toString();

// Result: http://example.com/query?q=random+word+%C2%A3500+bank+%24

Since I'm just linking to other answers I marked this as a community wiki. Feel free to edit.

8
  • 2
    Why does it have nothing to do with URLs?
    – Luis Sep
    Jan 26 '15 at 14:55
  • 20
    @Luis: URLEncoder is as its javadoc says intented to encode query string parameters conform application/x-www-form-urlencoded as described in HTML spec: w3.org/TR/html4/interact/…. Some users indeed confuse/abuse it for encoding whole URIs, like the current answerer apparently did.
    – BalusC
    Feb 3 '15 at 18:15
  • 9
    @LuisSep in short URLEncoder is for encoding for form submission. It is not for escaping. Its not the exact same escaping that you would use to create URLs to be put in your web page but happens to be similar enough that people abuse it. The only time you should be using URLEncoder is if your writing a HTTP client (and even then there are far superior options for encoding).
    – Adam Gent
    Feb 3 '15 at 19:48
  • 1
    @BalusC "Some users indeed confuse/abuse it for encoding whole URIs, like the current answerer apparently did.". You assumed wrong. I never said I screwed up with it. I have just seen others that have done it, who's bugs I have to fix. The part that I screwed up is that the Java URL class will accept unescaped brackets but not the URI class. There are a lot of way to screw up constructing URLs and not everyone is brilliant like you. I would say that most users that are looking on SO for URLEncoding probably are "users indeed confuse/abuse" URI escaping.
    – Adam Gent
    Feb 3 '15 at 20:12
  • 1
    Question wasn't about that yet your answer implies that.
    – BalusC
    Feb 3 '15 at 20:14
107

You need to first create a URI like:

String urlStr = "http://www.example.com/CEREC® Materials & Accessories/IPS Empress® CAD.pdf"
URL url= new URL(urlStr);
URI uri = new URI(url.getProtocol(), url.getUserInfo(), url.getHost(), url.getPort(), url.getPath(), url.getQuery(), url.getRef());

Then convert that Uri to ASCII string:

urlStr=uri.toASCIIString();

Now your url string is completely encoded first we did simple url encoding and then we converted it to ASCII String to make sure no character outside US-ASCII are remaining in string. This is exactly how browsers do.

12
  • 8
    Thanks! It's stupid that your solution works, but built-in URL.toURI() doesn't.
    – user11153
    Mar 25 '15 at 12:45
  • 2
    Unfortunately this doesn't seem to work with "file:///" (e.g.: "file:///some/directory/a file containing spaces.html"); it bombs with MalformedURLException in "new URL()"; any idea how to fix this?
    – ZioByte
    Apr 30 '15 at 10:23
  • 1
    @tibi you can simply use uri.toString() method to convert it to string instead of Ascii string. Sep 9 '15 at 3:40
  • 1
    The API I was working with didn't accept the + replacement for spaces, but accepted the %20 so this solution worked better than BalusC, thanks! Sep 1 '17 at 12:44
  • 1
    This is a correct way to encode the path component of the URL. It is not a correct way to encode query parameter names or values, which is what the question is about.
    – user207421
    Feb 13 '18 at 1:38
35

Guava 15 has now added a set of straightforward URL escapers.

5
  • 2
    These suffer from the same goofy escaping rules as URLEncoder.
    – 2rs2ts
    Aug 28 '14 at 22:53
  • 3
    not sure they have the problem. they differentiate for instance "+" or "%20" to escape " " (form param or path param) which URLEncoder doesn't. Apr 16 '15 at 11:01
  • 1
    This worked for me I just replaced call to URLEncoder() to call to UrlEscapers.urlFragmentEscaper() and it worked, not clear if I should be using UrlEscapers.urlPathSegmentEscaper() instead. Nov 2 '15 at 12:18
  • 2
    Actually it didnt work for me because unlike URLEncoder it doesnt encode '+' it leaves it alone, server decodes '+' as space whereas if I use URLEncoder '+'s are converted to %2B and correctly decoded back to + Nov 2 '15 at 17:52
  • 2
    Link update: UrlEscapers
    – mgaert
    Jun 15 '17 at 9:50
7

Apache Http Components library provides a neat option for building and encoding query params -

With HttpComponents 4.x use - URLEncodedUtils

For HttpClient 3.x use - EncodingUtil

7
URL url= new URL("http://example.com/query?q=random word £500 bank $");
URI uri = new URI(url.getProtocol(), url.getUserInfo(), IDN.toASCII(url.getHost()), url.getPort(), url.getPath(), url.getQuery(), url.getRef());
String correctEncodedURL=uri.toASCIIString(); 
System.out.println(correctEncodedURL);

Prints

http://example.com/query?q=random%20word%20%C2%A3500%20bank%20$

What is happening here?

1. Split URL into structural parts. Use java.net.URL for it.

2. Encode each structural part properly!

3. Use IDN.toASCII(putDomainNameHere) to Punycode encode the host name!

4. Use java.net.URI.toASCIIString() to percent-encode, NFC encoded unicode - (better would be NFKC!). For more info see: How to encode properly this URL

In some cases it is advisable to check if the url is already encoded. Also replace '+' encoded spaces with '%20' encoded spaces.

Here are some examples that will also work properly

{
      "in" : "http://نامه‌ای.com/",
     "out" : "http://xn--mgba3gch31f.com/"
},{
     "in" : "http://www.example.com/‥/foo",
     "out" : "http://www.example.com/%E2%80%A5/foo"
},{
     "in" : "http://search.barnesandnoble.com/booksearch/first book.pdf", 
     "out" : "http://search.barnesandnoble.com/booksearch/first%20book.pdf"
}, {
     "in" : "http://example.com/query?q=random word £500 bank $", 
     "out" : "http://example.com/query?q=random%20word%20%C2%A3500%20bank%20$"
}

The solution passes around 100 of the testcases provided by Web Plattform Tests.

5

Here's a method you can use in your code to convert a url string and map of parameters to a valid encoded url string containing the query parameters.

String addQueryStringToUrlString(String url, final Map<Object, Object> parameters) throws UnsupportedEncodingException {
    if (parameters == null) {
        return url;
    }

    for (Map.Entry<Object, Object> parameter : parameters.entrySet()) {

        final String encodedKey = URLEncoder.encode(parameter.getKey().toString(), "UTF-8");
        final String encodedValue = URLEncoder.encode(parameter.getValue().toString(), "UTF-8");

        if (!url.contains("?")) {
            url += "?" + encodedKey + "=" + encodedValue;
        } else {
            url += "&" + encodedKey + "=" + encodedValue;
        }
    }

    return url;
}
0
5

Using Spring's UriComponentsBuilder:

UriComponentsBuilder
        .fromUriString(url)
        .build()
        .encode()
        .toUri()
1
  • 1
    For the spring users, confirming this solution work well !!!
    – cppxaxa
    Jan 21 '21 at 9:42
1

In android I would use this code:

Uri myUI = Uri.parse ("http://example.com/query").buildUpon().appendQueryParameter("q","random word A3500 bank 24").build();

Where Uri is a android.net.Uri

1
  • 11
    This is not using the standard Java API. So please specify library used.
    – rmuller
    Jul 10 '16 at 8:35
1

In my case i just needed to pass the whole url and encode only the value of each parameters. I didn't find a common code to do that so (!!) so i created this small method to do the job :

public static String encodeUrl(String url) throws Exception {
    if (url == null || !url.contains("?")) {
        return url;
    }

    List<String> list = new ArrayList<>();
    String rootUrl = url.split("\\?")[0] + "?";
    String paramsUrl = url.replace(rootUrl, "");
    List<String> paramsUrlList = Arrays.asList(paramsUrl.split("&"));
    for (String param : paramsUrlList) {
        if (param.contains("=")) {
            String key = param.split("=")[0];
            String value = param.replace(key + "=", "");
            list.add(key + "=" +  URLEncoder.encode(value, "UTF-8"));
        }
        else {
            list.add(param);
        }
    }

    return rootUrl + StringUtils.join(list, "&");
}

public static String decodeUrl(String url) throws Exception {
    return URLDecoder.decode(url, "UTF-8");
}

It uses org.apache.commons.lang3.StringUtils

-1
  1. Use this: URLEncoder.encode(query, StandardCharsets.UTF_8.displayName()); or this:URLEncoder.encode(query, "UTF-8");
  2. You can use the follwing code.

    String encodedUrl1 = UriUtils.encodeQuery(query, "UTF-8");//not change 
    String encodedUrl2 = URLEncoder.encode(query, "UTF-8");//changed
    String encodedUrl3 = URLEncoder.encode(query, StandardCharsets.UTF_8.displayName());//changed
    
    System.out.println("url1 " + encodedUrl1 + "\n" + "url2=" + encodedUrl2 + "\n" + "url3=" + encodedUrl3);
    
1
  • 4
    Not correct. You have to encode the parameter names and values separately. Encoding the entire query string will also encode the = and & separators, which is not correct.
    – user207421
    Feb 13 '18 at 1:40

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