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My Java standalone application gets a URL (which points to a file) from the user and I need to hit it and download it. The problem I am facing is that I am not able to encode the HTTP URL address properly...

Example:

URL:  http://search.barnesandnoble.com/booksearch/first book.pdf

java.net.URLEncoder.encode(url.toString(), "ISO-8859-1");

returns me:

http%3A%2F%2Fsearch.barnesandnoble.com%2Fbooksearch%2Ffirst+book.pdf

But, what I want is

http://search.barnesandnoble.com/booksearch/first%20book.pdf

(space replaced by %20)

I guess URLEncoder is not designed to encode HTTP URLs... The JavaDoc says "Utility class for HTML form encoding"... Is there any other way to do this?

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19 Answers 19

up vote 196 down vote accepted

The java.net.URI class can help; in the documentation of URL you find

Note, the URI class does perform escaping of its component fields in certain circumstances. The recommended way to manage the encoding and decoding of URLs is to use an URI

Use one of the constructors with more than one argument, like:

URI uri = new URI(
    "http", 
    "search.barnesandnoble.com", 
    "/booksearch/first book.pdf",
    null);
URL url = uri.toURL();
//or String request = uri.toString();

(the single-argument constructor of URI does NOT escape illegal characters)


EDIT: added fully qualified class name to avoid confusion with other URI classes (like apaches httpclient)


EDIT 2:
Only illegal characters get escaped by above code - it does NOT escape non-ASCII characters (see fatih's comment).
The toASCIIString method can be used to get a String only with US-ASCII characters:

URI uri = new URI(
    "http", 
    "search.barnesandnoble.com", 
    "/booksearch/é",
    null);
String request = uri.toASCIIString();

EDIT 3:
For an URL with a query like http://www.google.com/ig/api?weather=São Paulo, use the 5-parameter version of the constructor:

URI uri = new URI(
        "http", 
        "www.google.com", 
        "/ig/api",
        "weather=São Paulo",
        null);
String request = uri.toASCIIString();
share|improve this answer
3  
Please note, the URI class mentioned here is from "org.apache.commons.httpclient.URI" not "java.net" , the "java.net" doesn't URI doesn't accept the illegal characters, unless you will use constructors that builds URL from its components , like the way mentioned in Matt comment below –  Mohamed Faramawi Jun 2 '10 at 20:47
3  
@Mohamed: the class I mentioned and used for testing actually is java.net.URI: it worked perfectly (Java 1.6). I would mention the fully qualified class name if it was not the standard Java one and the link points to the documentation of java.net.URI. And, by the comment of Sudhakar, it solved the problem without including any "commons libraries"! –  Carlos Heuberger Jun 2 '10 at 21:07
1  
URI uri = new URI("http", "search.barnesandnoble.com", "/booksearch/é",null); Does not do correct escaping with this sample? This should have been escaped with % escapes –  fmucar Jan 19 '11 at 12:36
    
@fatih - that's correct, thanks! Normally that should not be a problem, but there is a simple solution - almost same as I wrote before. See 2nd edit. –  Carlos Heuberger Jan 19 '11 at 13:31
2  
Don't forget the null at the end, like I did... lol.- –  Jbecwar Jul 9 '12 at 19:48

Please be warned that most of the answers above are INCORRECT.

The URLEncoder class, despite is name, is NOT what needs to be here. It's unfortunate that Sun named this class so annoyingly. URLEncoder is meant for passing data as parameters, not for encoding the URL itself.

In other words, "http://search.barnesandnoble.com/booksearch/first book.pdf" is the URL. Parameters would be, for example, "http://search.barnesandnoble.com/booksearch/first book.pdf?parameter1=this&param2=that". The parameters are what you would use URLEncoder for.

The following two examples highlights the differences between the two.

The following produces the wrong parameters, according to the HTTP standard. Note the ampersand (&) and plus (+) are encoded incorrectly.

uri = new URI("http", null, "www.google.com", 80, 
"/help/me/book name+me/", "MY CRZY QUERY! +&+ :)", null);

// URI: http://www.google.com:80/help/me/book%20name+me/?MY%20CRZY%20QUERY!%20+&+%20:)

The following will produce the correct parameters, with the query properly encoded. Note the spaces, ampersands, and plus marks.

uri = new URI("http", null, "www.google.com", 80, "/help/me/book name+me/", URLEncoder.encode("MY CRZY QUERY! +&+ :)", "UTF-8"), null);

// URI: http://www.google.com:80/help/me/book%20name+me/?MY+CRZY+QUERY%2521+%252B%2526%252B+%253A%2529

-Matt

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20  
This is wrong - you're double encoding your query part. –  Draemon Jul 6 '11 at 23:39
2  
That's right, the URI constructor already encodes the querystring, according to the documentation docs.oracle.com/javase/1.4.2/docs/api/java/net/…, java.lang.String, java.lang.String, int, java.lang.String, java.lang.String, java.lang.String) –  madoke Oct 10 '12 at 14:17
3  
@Draemon The answer is correct but uses the query string in an uncommon way; a more normal example might be query = URLEncoder.encode(key) + "=" + URLEncoder.encode(value). The docs merely say that "any character that is not a legal URI character is quoted". –  tc. Mar 13 '13 at 19:45
    
I agree with Matt here. If you type this URL: "google.com/help/me/book name+me/?MY CRZY QUERY! +&+ :)" in a browser, it automatically encodes the spaces but the "&" is used as query value separator and "+" are lost. –  arcot Jan 30 at 22:31

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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1  
Nice approach, but I would like to point out that this code does not prevent double encoding, e.g. %20 got encoded into %2520. Scott's answer does not suffer from this. –  nattster Aug 3 at 8:12
    
It can't handle #. –  Stallman Oct 2 at 9:21
    
Or if you just want to do path quoting: new URI(null, null, "/path with spaces", null, null).toString() –  user1050755 Nov 9 at 5:54

a solution i developed and much more stable than any other:

public class URLParamEncoder {

    public static String encode(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;
    }

}
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2  
that also requires you to break the url into pieces. There is no way for a computer to know which part of the url to encode. See my above edit –  fmucar Aug 11 '11 at 16:34
4  
@fmucar Thanks for that piece of code! It should be noted that this isn't UTF-8. To get UTF-8 just pre-process the input with String utf8Input = new String(Charset.forName("UTF-8").encode(input).array()); (taken from here) –  neo Oct 8 '11 at 19:44
    
Actually, I use it with a trim() and explicit encoding now although the latter is probably unnecessary: new String(Charset.forName("UTF-8").encode(q).array(), "ISO-8859-1").trim(); The trim() is needed as encode() appends null bytes at the end which the String constructor doesn't remove. Don't know if it's fully correct, but works for me... –  neo Oct 8 '11 at 21:40
1  
You only pass what you need to encode, not the whole URL. There is no way to pass one whole URL string and expect correct encoding. In all cases, you need to break the url into its logical pieces. –  fmucar Jun 25 '13 at 13:36
1  
I had problems with this answer because it doesn't encode unsafe chars to UTF-8.. may be dependent on the peer application though. –  Tarnschaf Oct 9 '13 at 12:07

If you have a URL, you can pass url.toString() into this method. First decode, to avoid double encoding (for example, encoding a space results in %20 and encoding a percent sign results in %25, so double encoding will turn a space into %2520). Then, use the URI as explained above, adding in all the parts of the URL (so that you don't drop the query parameters).

public URL convertToURLEscapingIllegalCharacters(String string){
    try {
        String decodedURL = URLDecoder.decode(string, "UTF-8");
        URL url = new URL(decodedURL);
        URI uri = new URI(url.getProtocol(), url.getUserInfo(), url.getHost(), url.getPort(), url.getPath(), url.getQuery(), url.getRef()); 
        return uri.toURL(); 
    } catch (Exception ex) {
        ex.printStackTrace();
        return null;
    }
}
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Yeah URL encoding is going to encode that string so that it would be passed properly in a url to a final destination. For example you could not have http://stackoverflow.com?url=http://yyy.com. UrlEncoding the parameter would fix that parameter value.

So i have two choices for you:

  1. Do you have access to the path separate from the domain? If so you may be able to simply UrlEncode the path. However, if this is not the case then option 2 may be for you.

  2. Get commons-httpclient-3.1. This has a class URIUtil:

    System.out.println(URIUtil.encodePath("http://example.com/x y", "ISO-8859-1"));

This will output exactly what you are looking for, as it will only encode the path part of the URI.

FYI, you'll need commons-codec and commons-logging for this method to work at runtime.

share|improve this answer
    
Sidenote apache commons stopped maintaining URIUtil in 4.x branches apparently, recommending you use JDK's URI class instead. Just means you have to break up the string yourself. –  Nicholi Jul 23 at 22:44

URLEncoding can encode HTTP URLs just fine, as you've unfortunately discovered. The string you passed in, "http://search.barnesandnoble.com/booksearch/first book.pdf", was correctly and completely encoded into a URL-encoded form. You could pass that entire long string of gobbledigook that you got back as a parameter in a URL, and it could be decoded back into exactly the string you passed in.

It sounds like you want to do something a little different than passing the entire URL as a parameter. From what I gather, you're trying to create a search URL that looks like "http://search.barnesandnoble.com/booksearch/whateverTheUserPassesIn". The only thing that you need to encode is the "whateverTheUserPassesIn" bit, so perhaps all you need to do is something like this:

String url = "http://search.barnesandnoble.com/booksearch/" + 
       URLEncoder.encode(userInput,"UTF-8");

That should produce something rather more valid for you.

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11  
That would replace the spaces in userInput with "+". The poster needs them replaced with "%20". –  vocaro Oct 26 '10 at 23:51
    
@vocaro: that is a very good point. URLEncoder escapes like the arguments are query parameters, not like the rest of the URL. –  Brandon Yarbrough Feb 14 at 6:02

Nitpicking: a string containing a whitespace character by definition is not a URI. So what you're looking for is code that implements the URI escaping defined in Section 2.1 of RFC 3986.

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4  
Good point. And how to do that efficiently in Java? –  Jan Sep 29 '10 at 9:35

Unfortunately, org.apache.commons.httpclient.util.URIUtil is deprecated, and the replacement org.apache.commons.codec.net.URLCodec does coding suitable for form posts, not in actual URL's. So I had to write my own function, which does a single component (not suitable for entire query strings that have ?'s and &'s)

public static String encodeURLComponent(final String s)
{
  if (s == null)
  {
    return "";
  }

  final StringBuilder sb = new StringBuilder();

  try
  {
    for (int i = 0; i < s.length(); i++)
    {
      final char c = s.charAt(i);

      if (((c >= 'A') && (c <= 'Z')) || ((c >= 'a') && (c <= 'z')) ||
          ((c >= '0') && (c <= '9')) ||
          (c == '-') ||  (c == '.')  || (c == '_') || (c == '~'))
      {
        sb.append(c);
      }
      else
      {
        final byte[] bytes = ("" + c).getBytes("UTF-8");

        for (byte b : bytes)
        {
          sb.append('%');

          int upper = (((int) b) >> 4) & 0xf;
          sb.append(Integer.toHexString(upper).toUpperCase(Locale.US));

          int lower = ((int) b) & 0xf;
          sb.append(Integer.toHexString(lower).toUpperCase(Locale.US));
        }
      }
    }

    return sb.toString();
  }
  catch (UnsupportedEncodingException uee)
  {
    throw new RuntimeException("UTF-8 unsupported!?", uee);
  }
}
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I agree with Matt. Indeed, I've never seen it well explained in tutorials, but one matter is how to encode the URL path, and a very different one is how to encode the parameters which are appended to the URL (the query part, behind the "?" symbol). They use similar encoding, but not the same.

Specially for the encoding of the white space character. The URL path needs it to be encoded as %20, whereas the query part allows %20 and also the "+" sign. The best idea is to test it by ourselves against our Web server, using a Web browser.

For both cases, I ALWAYS would encode COMPONENT BY COMPONENT, never the whole string. Indeed URLEncoder allows that for the query part. For the path part you can use the class URI, although in this case it asks for the entire string, not a single component.

Anyway, I believe that the best way to avoid these problems is to use a personal non-conflictive design. How? For example, I never would name directories or parameters using other characters than a-Z, A-Z, 0-9 and _ . That way, the only need is to encode the value of every parameter, since it may come from an user input and the used characters are unknown.

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2  
sample code using the URL in the question would be a good thing to put in your answer –  Martin Serrano Nov 20 '12 at 12:56

There is still a problem if you have got an encoded "/" (%2F) in your URL.

RFC 3986 - Section 2.2 says: "If data for a URI component would conflict with a reserved character's purpose as a delimiter, then the conflicting data must be percent-encoded before the URI is formed." (RFC 3986 - Section 2.2)

But there is an Issue with Tomcat:

http://tomcat.apache.org/security-6.html - Fixed in Apache Tomcat 6.0.10

important: Directory traversal CVE-2007-0450

Tomcat permits '\', '%2F' and '%5C' [...] .

The following Java system properties have been added to Tomcat to provide additional control of the handling of path delimiters in URLs (both options default to false):

  • org.apache.tomcat.util.buf.UDecoder.ALLOW_ENCODED_SLASH: true|false
  • org.apache.catalina.connector.CoyoteAdapter.ALLOW_BACKSLASH: true|false

Due to the impossibility to guarantee that all URLs are handled by Tomcat as they are in proxy servers, Tomcat should always be secured as if no proxy restricting context access was used.

Affects: 6.0.0-6.0.9

So if you have got an URL with the %2F character, Tomcat returns: "400 Invalid URI: noSlash"

You can switch of the bugfix in the Tomcat startup script:

set JAVA_OPTS=%JAVA_OPTS% %LOGGING_CONFIG%   -Dorg.apache.tomcat.util.buf.UDecoder.ALLOW_ENCODED_SLASH=true 
share|improve this answer

In addition to the Carlos Heuberger's reply: if a different than the default (80) is needed, the 7 param constructor should be used:

URI uri = new URI(
        "http",
        null, // this is for userInfo
        "www.google.com",
        8080, // port number as int
        "/ig/api",
        "weather=São Paulo",
        null);
String request = uri.toASCIIString();
share|improve this answer

Maybe can try UriUtils in org.springframework.web.util

UriUtils.encodeUri(input, "UTF-8")
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I've created a new project to help construct HTTP URLs. The library will automatically URL encode path segments and query parameters.

You can view the source and download a binary at https://github.com/Widen/urlbuilder

The example URL in this question:

new UrlBuilder("search.barnesandnoble.com", "booksearch/first book.pdf").toString()

produces

http://search.barnesandnoble.com/booksearch/first%20book.pdf

share|improve this answer

String url=""http://search.barnesandnoble.com/booksearch/;

This will be constant i guess and only filename changes dyamically so get filename

String filename; // get the file name

String urlEnc=url+fileName.replace(" ","%20");

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1  
What about all the other illegal characters? –  EJP Aug 22 at 23:39

I develop a library that serves this purpose: galimatias. It parses URL the same way web browsers do. That is, if a URL works in a browser, it will be correctly parsed by galimatias.

In this case:

// Parse
io.mola.galimatias.URL.parse(
    "http://search.barnesandnoble.com/booksearch/first book.pdf"
).toString()

Will give you: http://search.barnesandnoble.com/booksearch/first%20book.pdf. Of course this is the simplest case, but it'll work with anything, way beyond java.net.URI.

You can check it out at: https://github.com/smola/galimatias

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You can use a function like this. Complete and modify it to your need :

/**
     * Encode URL (except :, /, ?, &, =, ... characters)
     * @param url to encode
     * @param encodingCharset url encoding charset
     * @return encoded URL
     * @throws UnsupportedEncodingException
     */
    public static String encodeUrl (String url, String encodingCharset) throws UnsupportedEncodingException{
            return new URLCodec().encode(url, encodingCharset).replace("%3A", ":").replace("%2F", "/").replace("%3F", "?").replace("%3D", "=").replace("%26", "&");
    }

Example of use :

String urlToEncode = ""http://www.growup.com/folder/intérieur-à_vendre?o=4";
Utils.encodeUrl (urlToEncode , "UTF-8")

The result is : http://www.growup.com/folder/int%C3%A9rieur-%C3%A0_vendre?o=4

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1  
This answer is incomplete without URLCodec. –  EJP Aug 23 at 0:18

The answer from "Matt" is incorrect (though it doesn't have any votes for or against at present).

The following produces the correct URL Encoded output

uri = new URI("http", null, "www.google.com", 80, "/help/me/book name+me/", "MY CRZY QUERY! +&+ :)", null);

// URI: http://www.google.com:80/help/me/book%20name+me/?MY%20CRZY%20QUERY!%20+&+%20:)

You would not want the "&" character to be encoded (as Matt suggests), because '&' characters are considered to be query-parameter separators, and are required to be left alone in order to properly produce an encoded URL.

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1  
The reason he included the '&' in the first place was so that it would be passed as a value in a query-parameter. He is correct. –  Lincoln Feb 2 '11 at 19:00

How about:

public String UrlEncode(String in_) {

String retVal = "";

try {
    retVal = URLEncoder.encode(in_, "UTF8");
} catch (UnsupportedEncodingException ex) {
    Log.get().exception(Log.Level.Error, "urlEncode ", ex);
}

return retVal;

}

share|improve this answer
    
URLEncoder can't be used to escape ivalid URL characters. Only to encode forms. –  Archer Mar 23 '13 at 13:06

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