229

I am expecting

System.out.println(java.net.URLEncoder.encode("Hello World", "UTF-8"));

to output:

Hello%20World

(20 is ASCII Hex code for space)

However, what I get is:

Hello+World

Am I using the wrong method? What is the correct method I should be using?

1
  • 3
    the class name is indeed confusing, and many people have used it wrongly. however they don't notice it, because when URLDecoder is applied, the original value is restored, so + or %20 doesn't really matter for them. Jan 19, 2011 at 21:07

19 Answers 19

249

This behaves as expected. The URLEncoder implements the HTML Specifications for how to encode URLs in HTML forms.

From the javadocs:

This class contains static methods for converting a String to the application/x-www-form-urlencoded MIME format.

and from the HTML Specification:

application/x-www-form-urlencoded

Forms submitted with this content type must be encoded as follows:

  1. Control names and values are escaped. Space characters are replaced by `+'

You will have to replace it, e.g.:

System.out.println(java.net.URLEncoder.encode("Hello World", "UTF-8").replace("+", "%20"));
14
  • 21
    well This is an answer indeed , rather than replacing isn't there a java library or a function to perform the task/?
    – 0x12
    Apr 22, 2013 at 11:59
  • 28
    @congliu that's incorrect - you're probably thinking of replaceAll() which works with regex - replace() is simple character sequence replacement.
    – CupawnTae
    Sep 25, 2013 at 13:57
  • 14
    Yes @congliu the good way is : URLEncoder.encode("Myurl", "utf-8").replaceAll("\\+", "%20");
    – eento
    Oct 9, 2013 at 17:10
  • 8
    Downvoted because short-sighted solutions like this are dangerous. It's not just about the space character, see the RFC 3986 regarding URL encoding.
    – pyb
    Sep 23, 2016 at 15:48
  • 16
    @ClintEastwood This answer encourages the use of java.net.URLEncoder which does not the job of what was originally asked. And so this answer suggests a patch, using replace(), on top of it. Why not? Because this solution is bug prone and could lead to 20 other similar questions but with a different character. That's why I said this was shortsighted.
    – pyb
    May 17, 2017 at 13:31
73

A space is encoded to %20 in URLs, and to + in forms submitted data (content type application/x-www-form-urlencoded). You need the former.

Using Guava:

dependencies {
     compile 'com.google.guava:guava:23.0'
     // or, for Android:
     compile 'com.google.guava:guava:23.0-android'
}

You can use UrlEscapers:

String encodedString = UrlEscapers.urlFragmentEscaper().escape(inputString);

Don't use String.replace, this would only encode the space. Use a library instead.

4
  • It also works for Android, com.google.guava:guava:22.0-rc1-android.
    – Bevor
    May 12, 2017 at 19:22
  • 1
    @Bevor rc1 means 1st Release Candidate, i.e. a version not yet approved for general release. If you can, pick a version without snapshot, alpha, beta, rc as they are known to contain bugs.
    – pyb
    May 16, 2017 at 22:02
  • 1
    @pyb Thanks, but I will update the libs anyway when my project will be finished. Means, I will not go to prod without final versions. And it still takes a lot of weeks, so I guess there is a final version then.
    – Bevor
    May 17, 2017 at 16:36
  • 1
    Unfortunately, Guava doesn't provide a decoder, unlike Apache's URLCodec. Mar 9, 2018 at 10:58
26

This class perform application/x-www-form-urlencoded-type encoding rather than percent encoding, therefore replacing with + is a correct behaviour.

From javadoc:

When encoding a String, the following rules apply:

  • The alphanumeric characters "a" through "z", "A" through "Z" and "0" through "9" remain the same.
  • The special characters ".", "-", "*", and "_" remain the same.
  • The space character " " is converted into a plus sign "+".
  • 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.
2
  • @axtavt Nice explanation. But I still have some questions. In the url, the space should be interpreted as %20. So we need to do url.replaceAll("\\+", "%20")? And if it's javascript, we shouldn't use escape function. Use encodeURI or encodeURIComponent instead. That's what I thought.
    – Alston
    Oct 3, 2014 at 10:41
  • 2
    @Stallman this is Java, not JavaScript. Totally different languages. Nov 24, 2014 at 22:28
24

Encode Query params

org.apache.commons.httpclient.util.URIUtil
    URIUtil.encodeQuery(input);

OR if you want to escape chars within URI

public static String escapeURIPathParam(String input) {
  StringBuilder resultStr = new StringBuilder();
  for (char ch : input.toCharArray()) {
   if (isUnsafe(ch)) {
    resultStr.append('%');
    resultStr.append(toHex(ch / 16));
    resultStr.append(toHex(ch % 16));
   } else{
    resultStr.append(ch);
   }
  }
  return resultStr.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;
 }
2
  • 5
    Using org.apache.commons.httpclient.util.URIUtil seems to be the most efficient way to solve the issue ! Jan 29, 2018 at 10:38
  • 1
    URIUtil seems to be gone in current versions, any alternatives?
    – wutzebaer
    Sep 15, 2020 at 7:33
11

Hello+World is how a browser will encode form data (application/x-www-form-urlencoded) for a GET request and this is the generally accepted form for the query part of a URI.

http://host/path/?message=Hello+World

If you sent this request to a Java servlet, the servlet would correctly decode the parameter value. Usually the only time there are issues here is if the encoding doesn't match.

Strictly speaking, there is no requirement in the HTTP or URI specs that the query part to be encoded using application/x-www-form-urlencoded key-value pairs; the query part just needs to be in the form the web server accepts. In practice, this is unlikely to be an issue.

It would generally be incorrect to use this encoding for other parts of the URI (the path for example). In that case, you should use the encoding scheme as described in RFC 3986.

http://host/Hello%20World

More here.

6

Just been struggling with this too on Android, managed to stumble upon Uri.encode(String, String) while specific to android (android.net.Uri) might be useful to some.

static String encode(String s, String allow)

https://developer.android.com/reference/android/net/Uri.html#encode(java.lang.String, java.lang.String)

6

The other answers either present a manual string replacement, URLEncoder which actually encodes for HTML format, Apache's abandoned URIUtil, or using Guava's UrlEscapers. The last one is fine, except it doesn't provide a decoder.

Apache Commons Lang provides the URLCodec, which encodes and decodes according to URL format rfc3986.

String encoded = new URLCodec().encode(str);
String decoded = new URLCodec().decode(str);

If you are already using Spring, you can also opt to use its UriUtils class as well.

2
  • 8
    URLCodec is not a good solution here because it encodes spaces as pluses, but the question is asking for spaces to be encoded as %20. Dec 2, 2018 at 23:57
  • Spring's UriUtil.encodeQuery (for query string) worked for me.
    – Raf
    Nov 12, 2021 at 6:30
4

If you want to encode URI path components, you can also use standard JDK functions, e.g.

public static String encodeURLPathComponent(String path) {
    try {
        return new URI(null, null, path, null).toASCIIString();
    } catch (URISyntaxException e) {
        // do some error handling
    }
    return "";
}

The URI class can also be used to encode different parts of or whole URIs.

1
  • 1
    Thanks! This worked for me. Yes, a bit roundabout, but better than pulling Guava into my small project for this one feature. May 16 at 22:06
3

Although quite old, nevertheless a quick response:

Spring provides UriUtils - with this you can specify how to encoded and which part is it related from an URI, e.g.

encodePathSegment
encodePort
encodeFragment
encodeUriVariables
....

I use them cause we already using Spring, i.e. no additonal library is required!

2
  • 1
    Is there anything else in Spring that does URL encoding? I ask because when I make a test request using getForObject (part of RestTemplate) the URL it writes out leaves commas unencoded, but UriUtils.encode(...) encodes commas, which means my MockRestServiceServer doesn't match the path if I use the output from UriUtils.encode.
    – IpsRich
    Oct 16, 2020 at 10:56
  • I think this answers my question: stackoverflow.com/a/20885702/1999993
    – IpsRich
    Oct 16, 2020 at 11:58
3

If you are using jetty then org.eclipse.jetty.util.URIUtil will solve the issue.

String encoded_string = URIUtil.encodePath(not_encoded_string).toString();
2

This worked for me

org.apache.catalina.util.URLEncoder ul = new org.apache.catalina.util.URLEncoder().encode("MY URL");
2

"+" is correct. If you really need %20, then replace the Plusses yourself afterwards.

Warning: This answer is heavily disputed (+8 vs. -6), so take this with a grain of salt.

5
  • 7
    There may be a problem if the initial string really contained a + character. Jun 11, 2013 at 15:29
  • 20
    @Traroth - Not really. A + character in the original text is supposed to be encoded as %2B.
    – Ted Hopp
    Aug 19, 2013 at 21:22
  • saying that + is correct without knowing the context is, at least, pedantic. Downvoted. Read other answers to know about when + or %20 are to be used. May 17, 2017 at 13:47
  • @ClintEastwood: Can you tell me about any usecase in that the + character for spaces isn't correct in URLs? Except when there is a non-conforming URL parser on the other side?
    – Daniel
    May 18, 2017 at 19:31
  • @Daniel sure, not saying "incorrect" but unsuitable? yes. Analytics tools often use query params with values separated by a certain character, for example "+". In that case, using "+" instead of "%20" would be wrong. "+" is used for escaping spaces in a form, while the "percentage encoding" (a.k.a. URL encoding) is more oriented to URLs. May 19, 2017 at 17:38
2

It's not one-liner, but you can use:

URL url = new URL("https://some-host.net/dav/files/selling_Rosetta Stone Case Study.png.aes");
URI uri = new URI(url.getProtocol(), url.getUserInfo(), url.getHost(), url.getPort(), url.getPath(), url.getQuery(), url.getRef());
System.out.println(uri.toString());

This will give you an output:

https://some-host.net/dav/files/selling_Rosetta%20Stone%20Case%20Study.png.aes
1
  • This works. Also I was able to get URL object back from URI object as I needed an input stream from it. I did it this way uri.toURL().openStream();
    – Oliver
    Apr 19 at 8:02
1

I was already using Feign so UriUtils was available to me but Spring UrlUtils was not.

<!-- https://mvnrepository.com/artifact/io.github.openfeign/feign-core -->
<dependency>
    <groupId>io.github.openfeign</groupId>
    <artifactId>feign-core</artifactId>
    <version>11.8</version>
</dependency>

My Feign test code:

import feign.template.UriUtils;

System.out.println(UriUtils.encode("Hello World"));

Outputs:

Hello%20World

As the class suggests, it encodes URIs and not URLs but the OP asked about URIs and not URLs.

System.out.println(UriUtils.encode("https://some-host.net/dav/files/selling_Rosetta Stone Case Study.png.aes"));

Outputs:

https%3A%2F%2Fsome-host.net%2Fdav%2Ffiles%2Fselling_Rosetta%20Stone%20Case%20Study.png.aes

0

Try below approach:

Add a new dependency

<!-- https://mvnrepository.com/artifact/org.apache.tomcat/tomcat-catalina -->
<dependency>
    <groupId>org.apache.tomcat</groupId>
    <artifactId>tomcat-catalina</artifactId>
    <version>10.0.13</version>
</dependency>

Now do as follows:

String str = "Hello+World"; // For "Hello World", decoder is not required
// import java.net.URLDecoder;
String newURL = URLDecoder.decode(str, StandardCharsets.UTF_8);
// import org.apache.catalina.util.URLEncoder;
System.out.println(URLEncoder.DEFAULT.encode(newURL, StandardCharsets.UTF_8));

You'll get the output as:

Hello%20World
-1

Check out the java.net.URI class.

-1

USE MyUrlEncode.URLencoding(String url , String enc) to handle the problem

    public class MyUrlEncode {
    static BitSet dontNeedEncoding = null;
    static final int caseDiff = ('a' - 'A');
    static {
        dontNeedEncoding = new BitSet(256);
        int i;
        for (i = 'a'; i <= 'z'; i++) {
            dontNeedEncoding.set(i);
        }
        for (i = 'A'; i <= 'Z'; i++) {
            dontNeedEncoding.set(i);
        }
        for (i = '0'; i <= '9'; i++) {
            dontNeedEncoding.set(i);
        }
        dontNeedEncoding.set('-');
        dontNeedEncoding.set('_');
        dontNeedEncoding.set('.');
        dontNeedEncoding.set('*');
        dontNeedEncoding.set('&');
        dontNeedEncoding.set('=');
    }
    public static String char2Unicode(char c) {
        if(dontNeedEncoding.get(c)) {
            return String.valueOf(c);
        }
        StringBuffer resultBuffer = new StringBuffer();
        resultBuffer.append("%");
        char ch = Character.forDigit((c >> 4) & 0xF, 16);
            if (Character.isLetter(ch)) {
            ch -= caseDiff;
        }
        resultBuffer.append(ch);
            ch = Character.forDigit(c & 0xF, 16);
            if (Character.isLetter(ch)) {
            ch -= caseDiff;
        }
         resultBuffer.append(ch);
        return resultBuffer.toString();
    }
    private static String URLEncoding(String url,String enc) throws UnsupportedEncodingException {
        StringBuffer stringBuffer = new StringBuffer();
        if(!dontNeedEncoding.get('/')) {
            dontNeedEncoding.set('/');
        }
        if(!dontNeedEncoding.get(':')) {
            dontNeedEncoding.set(':');
        }
        byte [] buff = url.getBytes(enc);
        for (int i = 0; i < buff.length; i++) {
            stringBuffer.append(char2Unicode((char)buff[i]));
        }
        return stringBuffer.toString();
    }
    private static String URIEncoding(String uri , String enc) throws UnsupportedEncodingException { //对请求参数进行编码
        StringBuffer stringBuffer = new StringBuffer();
        if(dontNeedEncoding.get('/')) {
            dontNeedEncoding.clear('/');
        }
        if(dontNeedEncoding.get(':')) {
            dontNeedEncoding.clear(':');
        }
        byte [] buff = uri.getBytes(enc);
        for (int i = 0; i < buff.length; i++) {
            stringBuffer.append(char2Unicode((char)buff[i]));
        }
        return stringBuffer.toString();
    }

    public static String URLencoding(String url , String enc) throws UnsupportedEncodingException {
        int index = url.indexOf('?');
        StringBuffer result = new StringBuffer();
        if(index == -1) {
            result.append(URLEncoding(url, enc));
        }else {
            result.append(URLEncoding(url.substring(0 , index),enc));
            result.append("?");
            result.append(URIEncoding(url.substring(index+1),enc));
        }
        return result.toString();
    }

}
1
  • 11
    re-inventing the wheel, adding super error-prone code to a code-base is almost always a bad decision. May 17, 2017 at 13:48
-2

Am I using the wrong method? What is the correct method I should be using?

Yes, this method java.net.URLEncoder.encode wasn't made for converting " " to "20%" according to spec (source).

The space character " " is converted into a plus sign "+".

Even this is not the correct method, you can modify this to: System.out.println(java.net.URLEncoder.encode("Hello World", "UTF-8").replaceAll("\\+", "%20"));have a nice day =).

4
  • You are suggesting to use a method that is not adequate (URLEncoder.encode) and patch it using replaceAll which would only work in this specific case. Use the correct class and method instead, see other answers.
    – pyb
    Aug 2, 2017 at 21:10
  • @pyb looks like you can't understand what I've written. I've never said "I suggest using it", I said "you can". Please read and understand before you write.
    – Pregunton
    Aug 21, 2017 at 20:56
  • 1
    This is a questions and answers website, not a regular message board where people chat. If you have side comments, use the comments. Longer talk? Use the chat. Don't post code you disagree with as an answer. Please read and understand the rules of this site before contributing and lecturing others.
    – pyb
    Aug 21, 2017 at 22:10
  • 1
    I'm upvoting it back because most other solutions provide the same advice. No "specific cases" were provided to prove this method wrong. Using apache commons with try-catch blocks or dependencies is too much of a hassle for a method that can be effectively patched with replaceAll. Jul 15, 2018 at 23:21
-7

use character-set "ISO-8859-1" for URLEncoder

0

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