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My application should send a https GET request.

Every time I get an exception from it. If I uncomment url = "http://www.example.com" it works perfect. Otherwise it throws an exception "Illegal character in scheme at index 3".

How to fix it?

   public class TestHttpManager {

   private final static String mask= "httрs://%s/action/?key=%s&param1=%s&param2=%s&param3=%s";

   public static void Send() throws IOException, URISyntaxException {
           if (....)
              url = String.format(UrlMask, "anyHostName.com", "keyTest", "param1", "param2", "param3");

             //url = "http://www.example.com";
             HttpClient client = new DefaultHttpClient();
             HttpGet request = new HttpGet();
             request.setURI(new URI(url));
             client.execute(request);
        }

     }

UPDATE: I have an error Tagret host must not be null, or set in parameters too.

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you want to post data to server? using http post? or you want to parse xml which you are getting after hitting that url –  Sumant Feb 22 '12 at 6:05
    
Read my question again. –  Grienders Feb 22 '12 at 6:07
    
Could you log the result of url = String.format(UrlMask, "anyHostName.com", "keyTest", "param1", "param2", "param3"); ? That would be a sure-fire way of knowing what the illegal character might be. –  curioustechizen Feb 22 '12 at 6:11
    
httрs://serverName.com/action/key=myKey&param1=param1&param2=param2&param3=param‌​3 –  Grienders Feb 22 '12 at 6:21
    
try using url = "example.com";; –  user1213202 Feb 22 '12 at 6:30

6 Answers 6

up vote 7 down vote accepted

You have done url = "http://www.example.com"+stringOfParameter;

now use this function to well format the above url,

url = new String(url.trim().replace(" ", "%20").replace("&", "%26")
.replace(",", "%2c").replace("(", "%28").replace(")", "%29")
.replace("!", "%21").replace("=", "%3D").replace("<", "%3C")
.replace(">", "%3E").replace("#", "%23").replace("$", "%24")
.replace("'", "%27").replace("*", "%2A").replace("-", "%2D")
.replace(".", "%2E").replace("/", "%2F").replace(":", "%3A")
.replace(";", "%3B").replace("?", "%3F").replace("@", "%40")
.replace("[", "%5B").replace("\\", "%5C").replace("]", "%5D")
.replace("_", "%5F").replace("`", "%60").replace("{", "%7B")
.replace("|", "%7C").replace("}", "%7D"));

and now use the formatted url.

EDIT : In your case you got httрs://serverName.com/action/key=myKey&param1=param1&param2=param2&param3=param‌​3

with mask, I dont know much about that, but you can do

String urlLink = "httрs://serverName.com/action/";
String paramLink = "key=myKey&param1=param1&param2=param2&param3=param‌​3";

and then use the above answer.

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How to use it? I have the url mask mask= "httрs://%s/action/?key=%s&param1=%s&param2=%s&param3=%s";. –  Grienders Feb 22 '12 at 6:40
    
See the Edited. –  MKJParekh Feb 22 '12 at 6:48
String host = "https://" + serverAddress + "/";
String encodedUrl = host + URLEncoder.encode(url, "utf-8");

It should encode only parameters, but not host.

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If you use like this url = "http://www.example.com" it will work fine, but if you want to add sub path then you have to do like this Uri.encode(edittext.getText()) and add it to your url like this url = "http://www.example.com" + Uri.encode(edittext.getText()). Don't try to do it manually..

Hope this helps you...

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How to fix my bug? –  Grienders Feb 22 '12 at 6:15

The URL is not well formed. There is no question mark, nor is there a reference to an actual page. It look be something like:

"httрs://%s/action.php?key=%s&param1=%s&param2=%s&param3=%s"

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a reference to an actual page isn't necessary. I added the question mark, but there's no effect. –  Grienders Feb 22 '12 at 6:25

Just a guess - but could you try connecting to your web service as HTTP instead of HTTPS? I'm not sure if DefaultHttpClient is capable of doing HTTPS without additional setup.

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Uh oh .. hold on .. at what point is the exception being thrown? Is it at new URI(url)? In that case, you could ignore my answer above. –  curioustechizen Feb 22 '12 at 6:30

This might work for you as well:

String url = "http://www.example.com";
request.setURI(new URI(URLEncoder.encode(url, "UTF-8")));
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