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I am newbie to this and couldn't find exact answer. I have special characters in a URL such as,

"&", "#", "?" "<"

it causes a problems. (If someone can suggest how to deal with such situation then it would be an additional help). My main problem is that, how can I represent a string literal in JAVA for following kind of URL ?

"x###y"

I learned that we need to put its hex code value (using %). Can someone suggest that exact answer to fix this URL problem ?

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4 Answers 4

up vote 1 down vote accepted
java.net.URLEncoder.encode(YOUR_STRING, "UTF-8");

See also this question for a way to only encode the part of the url you need:

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You'll need to URL encode the address.

See :-

http://download.oracle.com/javase/1.5.0/docs/api/java/net/URLEncoder.html

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URLEncoder is for form encoding not for URL encoding. "...HTML form encoding...." but the I agree that the naming is very bad and causes misunderstandings –  fmucar May 27 '11 at 10:23

The answer depends on where the data is in the URL. There will be different encoding rules for different parts of the URL.

The exact form may also depend on what URI format the server is expecting.

Parameters in the query part can usually be encoded as application/x-www-form-urlencoded using the URLEncoder:

String query = URLEncoder.encode("key1", "UTF-8")
             + "="
             + URLEncoder.encode("value1", "UTF-8")
             + "&"
             + URLEncoder.encode("key2", "UTF-8")
             + "="
             + URLEncoder.encode("value2", "UTF-8");

If you need to encode in other parts of the URI (the path part, or the fragment part) read this.

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URLEncoder is not for encoding URLs it is there to encode form data

see the following link for more details

HTTP URL Address Encoding in Java

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