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i need java code to encode URL to avoid special characters such as spaces and % and & ...etc

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7  
this kind of issue is precisely the reason why some site never, ever, use characters that need escaping/encoding in their URLs. StackOverflow seems to be such a site (just look at the clean URL). I think people linking to files in URLs that have, say, spacing characters in their name (and people using spacing characters in files for that matter) deserve to be shot. And those arguing with this fact even more so ;) – SyntaxT3rr0r Dec 31 '10 at 18:25
up vote 43 down vote accepted

URL construction is tricky because different parts of the URL have different rules for what characters are allowed: for example, the plus sign is reserved in the query component of a URL because it represents a space, but in the path component of the URL, a plus sign has no special meaning and spaces are encoded as "%20".

RFC 2396 explains (in section 2.4.2) that a complete URL is always in its encoded form: you take the strings for the individual components (scheme, authority, path, etc.), encode each according to its own rules, and then combine them into the complete URL string. Trying to build a complete unencoded URL string and then encode it separately leads to subtle bugs, like spaces in the path being incorrectly changed to plus signs (which an RFC-compliant server will interpret as real plus signs, not encoded spaces).

In Java, the correct way to build a URL is with the URI class. Use one of the multi-argument constructors that takes the URL components as separate strings, and it'll escape each component correctly according to that component's rules. The toASCIIString() method gives you a properly-escaped and encoded string that you can send to a server. To decode a URL, construct a URI object using the single-string constructor and then use the accessor methods (such as getPath()) to retrieve the decoded components.

Don't use the URLEncoder class! Despite the name, that class actually does HTML form encoding, not URL encoding. It's not correct to concatenate unencoded strings to make an "unencoded" URL and then pass it through a URLEncoder. Doing so will result in problems (particularly the aforementioned one regarding spaces and plus signs in the path).

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I am trying to write it mysekf .... does it correct ? public static String encode(String str) { StringBuilder sb=new StringBuilder(); for(int i=0;i<str.length();i++){ switch(str.charAt(i)){ case ' ': sb.append("%20");break; case '!': sb.append("%21");break; case '"': sb.append("%22");break; default: sb.append(str.charAt(i)); } } return sb.toString(); } – Adham Dec 31 '10 at 17:56
1  
@adham, no, correct URL encoding is much more than just escaping those three characters. That code may produce correct results for some URLs, but there are many that it won't handle correctly. Just use the URI class. – Wyzard Dec 31 '10 at 18:03
    
yes i know there many other characters .. but plz can you givs a simplw example for URI class – Adham Dec 31 '10 at 18:08
    
From testing, it seems that you still have to manually replaces spaces in the query with '+' signs. Have I made a mistake somewhere? – Edward Falk Dec 7 '12 at 19:51
1  
@EdwardFalk, you're right, URI doesn't seem to convert spaces to '+' in a query string. I couldv'e sworn it did, because I learned about the URI class while resolving space/plus problems in my own code, but that was several years ago and I don't remember the details. Since the plus signs are really part of the application/x-www-form-urlencoded MIME type and not the URI syntax itself, I guess it'd make sense to run (only) the query string through a URLEncoder before putting it into a URI. I'll need to rethink and maybe rewrite my answer, though. – Wyzard Dec 8 '12 at 2:33

This is a duplicate of the below question. You may find more detailed information and discussion about this issue at the below question

HTTP URL Address Encoding in Java

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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If you don't want to do it manually use Apache Commons - Codec library. The class you are looking at is: org.apache.commons.codec.net.URLCodec

String final url = "http://www.google.com?...."
String final urlSafe = org.apache.commons.codec.net.URLCodec.encode(url);
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4  
Why did this answer get downvoted? – Christian Vielma Jan 23 '14 at 18:38
1  
Just a note. URLCodec is meant as a replacement for URLEncoder/URLDecoder. It is NOT MEANT to encode an entire url, which is what the example shows. Meaning even http:// turns into http%3A%2F%2F. Unless that is really what you want to do. – Nicholi Jul 23 '14 at 22:36
    
Both are giving me same "wrong" result URLCodec urlCodec = new URLCodec(); System.out.println(urlCodec.encode("FOO BAR")); // FOO+BAR System.out.println(URLEncoder.encode("FOO BAR", "UTF-8")); FOO+BAR – Topera Sep 25 '14 at 17:40

I would echo what Wyzard wrote but add that:

  • for query parameters, HTML encoding is often exactly what the server is expecting; outside these, it is correct that URLEncoder should not be used
  • the most recent URI spec is RFC 3986, so you should refer to that as a primary source

I wrote a blog post a while back about this subject: Java: safe character handling and URL building

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Simialar question can be found here:

HTTP URL Address Encoding in Java

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This should be a comment, not an answer. – javamonkey79 Nov 11 '14 at 20:03

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