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Consider this following code (that retrieves the response from a HTTP request and prints it). NOTE: This code works in a standard Java application. I only experience the problem listed below when using the code in an Android application.

public class RetrieveHTMLTest {

public static void main(String [] args) {
    getListing(args[0);
}

public static void getListing(String stringURL) {

    HttpURLConnection conn = null;
    String html = "";
    String line = null;
    BufferedReader reader = null;
    URL url = null;

    try {
        url = new URL(stringURL);

        conn = (HttpURLConnection) url.openConnection();

        conn.setConnectTimeout(6000);
        conn.setReadTimeout(6000);
        conn.setRequestMethod("GET");

        reader = new BufferedReader(new InputStreamReader(conn.getInputStream()));
        conn.connect();

        while ((line = reader.readLine()) != null) {
            html = html + line;
        }

        System.out.println(html);

        reader.close();
        conn.disconnect();
    } catch (Exception ex) {
        ex.printStackTrace();
    } finally {

    }
}   
}

If I supply the URL: http://somehost/somepath/

The following code works fine. But, if I change the URL to: http://somehost/somepath [a comment]/ The code throws a timeout exception because of the "[" and "]" characters.

If I change the URL to: http://somehost/somepath%20%5Ba%20comment%5D/ The code works fine. Again, because the "[" and "]" characters aren't present.

My question is, how do I get the URL:

http://somehost/somepath [a comment]/

into the following format:

http://somehost/somepath%20%5Ba%20comment%5D/

Also, should I continue using HttpURLConnection in Android since it can't accept a URL with special characters? If the standard to always convert the URL before using HttpURLConnection?

share|improve this question
up vote 9 down vote accepted

Use the URLEncoder class :

URLEncoder.encode(value, "utf-8");

You can find more details here.

Edit : You should use this method only to encode your parameter values. DO NOT encode the entire URL. For example if you have a url like : http://www.somesite.com?param1=value1&param2=value2 then you should only encode value1 and value2 and then form the url using encoded versions of these values.

share|improve this answer
1  
This method doesn't appear to work as expected:<br> System.out.println(URLEncoder.encode("somehost/somepath [a comment]/", "utf-8")); prints: <b>http%3A%2F%2Fsomehost%2Fsomepath+%5Ba+comment%5D%2F</b> Which will cause a MalformedURLException – William Seemann Dec 6 '11 at 4:49
    
If you don't like the encoding, you can check out the different encoding schemes mentioned in the link I gave you. Your URL will vary according to your encoding scheme. For example in utf-8 spaces are encoded as + while in some other encoding scheme it maybe encoded as %20. Both are acceptable, as long as you are decoding with the same scheme which you used to encode. – Arnab Chakraborty Dec 6 '11 at 4:59
    
I appreciate the help. The encode method itself doesn't throw the MalformedURLException. If you try to create a new URL with the output of the encode method (using utf-8) this will cause the exception. – William Seemann Dec 6 '11 at 5:01
1  
Don't encode the /. – Arnab Chakraborty Dec 7 '11 at 5:09
1  
@AndrewWyld You could try this : stackoverflow.com/a/5330150/802799 – Arnab Chakraborty Dec 17 '12 at 5:50
url = URLEncoder.encode(value, "utf-8");
url = url.replaceAll("\\+", "%20");

the "+" may not be revert

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