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I have some application that should connect to https Site, and receive some. With connection all is ok, but when i what getInputStream() comes Exception: Server returned HTTP response code: 403 for URL:

Here is the part of code:

    String query = siteURL.toExternalForm();

	URL queryURL = new URL(query);

	String data = "username="+login+"&password="+password;

	URLConnection connection = queryURL.openConnection();


	OutputStreamWriter writer = new OutputStreamWriter(connection

	BufferedReader reader = new BufferedReader(new InputStreamReader(connection.getInputStream()));
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Are you sure that username and password are as parameters? Usually (especially on secure) there are in request headers. – Trick Nov 24 '09 at 14:43
But when I try to connect to this resource via browser all is ok. For example: if query = url/WebHome data = username=Test&password=test url/WebHome?username=Test&password=test – Le_Coeur Nov 24 '09 at 14:51
I have tried so, connection.addRequestProperty("username", login); connection.addRequestProperty("password", password); but the same problem... – Le_Coeur Nov 24 '09 at 15:13

2 Answers 2

Looks like you're not allowed to do what you're trying to do, you're getting an HTTP 403: Forbidden.

Can you open the same URL in your browser?

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Funny thing, that i can open it in the browser And i have found that, actually if I try to connection.connect(); then variable connected is false... – Le_Coeur Nov 24 '09 at 14:44

I think the site have a custom authentication mechanism, in wich you have to supply our username and password as GET parameters. So your url should look like this:

URL url = new URL("<username>&password=password");
... = url.openConnection();

If you use url.openConnection, a HTTP GET request is done. If you want to send data with a request, you must use a HTTP POST request. In this case, you can use a third party library, like Apache Commons HttpClient.

BTW: why are u creating a new URL object, if you already have one?

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It doesn't works(( BTW: why are u creating a new URL object, if you already have one? >> I have only one URL object -> queryURL – Le_Coeur Nov 24 '09 at 15:35
Salandur is however probably right. You are making a GET request to the server, but try to write the request parameters in the request body, which is usually only supported with a POST request. – jarnbjo Nov 24 '09 at 16:40
@Le_Coeur: you must have an other one, since you are calling String query = siteURL.toExternalForm(); – Salandur Nov 25 '09 at 9:51
I have erased some code from the beginnig, it was String query = siteURL.toExternalForm()+"/var/start"; – Le_Coeur Nov 25 '09 at 14:27

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