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I need to work with REST api in android application which is created by my client. Below text is just copied from the pdf the client provides us.

--
In this example, a new user is created. The parts of a possible request to the server is shown below:

Message part Contents

Header POST {url-prefix}/rest/user
Content-Type: application/xml
Content-Length: 205
Body <request>
  <client>
    <id>XY</id>
    <name>myName</name>
    <password>myPassword</password>
  </client>
  <user>
    <name>myUserName</name>
    <password>myUserPassword</password>
    <groupId>12345</groupId>
  </user>
</request>

--
After searching and studying, I come to know that, the possible request code (in Java) might be:

URL url=new URL("http://api.example.com/rest/user/?name=myUserName&password=myUserPassword&groupId=12345");
            HttpURLConnection conn=(HttpURLConnection) url.openConnection();
            conn.setDoOutput(true);
            conn.setRequestMethod("Post");
            OutputStreamWriter out=new OutputStreamWriter(conn.getOutputStream());
            out.write("respose content:");
            out.close();

From the pdf manual they provide, I got to know, for every request to the server, the client (thats me) has to transmit the authentication data.
My question is, where do I put the authentication data in the query string? Please help me on this.

Edit:After posting the below code as request:

            DefaultHttpClient httpClient = new DefaultHttpClient();
        HttpPost httpPost = new HttpPost("http://api.example.com/rest/user/?name=Foysal&password=123456&groupid=12345");
            httpPost.addHeader("Accept", "text/xml");
            httpPost.setHeader("Content-Type","application/xml;charset=UTF-8");
            List<NameValuePair> nameValuePairs = new ArrayList<NameValuePair>();
            nameValuePairs.add(new BasicNameValuePair("name", "APIappDevAccount"));
            nameValuePairs.add(new BasicNameValuePair("password", "123456"));           
            httpPost.setEntity(new UrlEncodedFormEntity(nameValuePairs));
            HttpParams params = new BasicHttpParams();
            HttpConnectionParams.setStaleCheckingEnabled(params, false);
            HttpConnectionParams.setConnectionTimeout(params, 5000);
            HttpConnectionParams.setSoTimeout(params, 5000);
            httpClient.setParams(params);
            httpClient.getParams().setParameter(ClientPNames.COOKIE_POLICY, CookiePolicy.RFC_2109);
            HttpResponse response = httpClient.execute(httpPost);
            InputStream is = response.getEntity().getContent();
            ByteArrayOutputStream os = new ByteArrayOutputStream();
            byte[] buf;
            int ByteRead;
            buf = new byte[1024];
            String xmldata = null;
            double totalSize = 0;
            while ((ByteRead = is.read(buf, 0, buf.length)) != -1) {
                os.write(buf, 0, ByteRead);
                totalSize += ByteRead;                      
            }
            xmldata =  os.toString();
            os.close();
            is.close();


But I got the response as:

404 Not Found

Not Found

The requested URL /rest/user/ was not found on this server.


Apache/2.2.6 (Fedora) DAV/2 mod_ssl/2.2.6 OpenSSL/0.9.8b Server at api.example.com Port 80

share|improve this question
1  
When you get a "404 Not Found", that means you got the wrong URL. If you would have an authentication problem, "401 Unauthorized" would be the appropriate status code. –  Tim Büthe Jul 7 '11 at 7:49

2 Answers 2

up vote 0 down vote accepted

Looks to me like they want you to POST an XML document and put the authentication in that. Not much of a REST API (most REST APIS don't require an XML document).

You need to use conn.getOutputStream() to send that doc to the server and use conn.getInputStream() to read the response.

So you would have to create the XML doc like the one they show:

<request>
  <client>
    <id>XY</id>
    <name>myName</name>
    <password>myPassword</password>
  </client>
  <user>
    <name>myUserName</name>
    <password>myUserPassword</password>
    <groupId>12345</groupId>
  </user>
</request>

And then send it in your POST:

conn.setRequestProperty ( "Content-Type", "text/xml" );
out.write(requestDoc); //where requestDoc is the String containing the XML.
out.flush();
out.close();
share|improve this answer
1  
POST or better PUT some XML to create a new user seems RESTful to me. What's wrong about that? –  Tim Büthe Jul 4 '11 at 12:54
    
I think you missed the point, he asks where to put the authentication data... –  Tim Büthe Jul 4 '11 at 12:54
    
@TimButhe: Not sure I missed the point, the way I read it is they want the authentication in the xml doc itself. See how it has a client and user section? I think they want the authentication there in the client section. –  Fraggle Jul 4 '11 at 12:57
    
@TimButhe: As for it being RESTful or not, from a strict definition of REST you are probably correct. But in common usage (Facebook Legacy REST API or newer Graph API would be examples), a simple GET request is used. Others might use POST but would use simple name=value pairing like a web form. So basically get away from the overhead of using XML for everything. –  Fraggle Jul 4 '11 at 13:02
    
maybe Foysal can clear that up for us. I thought the request should create a new user, since he wrote "In this example, a new user is created". Well, let's see. –  Tim Büthe Jul 4 '11 at 13:02

You may execute a POST request like shown here: http://www.androidsnippets.com/executing-a-http-post-request-with-httpclient and put the authentication data as name value pairs:

HttpClient httpclient = new DefaultHttpClient();
HttpPost httppost = new HttpPost("http://www.yoursite.com/script.php");

try {
    // Add your data
    List<NameValuePair> nameValuePairs = new ArrayList<NameValuePair>(2);
    nameValuePairs.add(new BasicNameValuePair("name", "myUserName"));
    nameValuePairs.add(new BasicNameValuePair("password", "myUserPassword"));
    httppost.setEntity(new UrlEncodedFormEntity(nameValuePairs));

    // Execute HTTP Post Request
    HttpResponse response = httpclient.execute(httppost);

} catch (Exception e) {
    // ... handle exception here
}
share|improve this answer
    
I am using Java. Could you please change the HttpPost url for me? –  Foysal Jul 4 '11 at 13:18
    
Well, that's just an example, just change it in your implementation. –  Tim Büthe Jul 4 '11 at 13:26
    
so if i use this way, i would have to replace the HttpPost class with HttpDelete, HttpGet, HttpPut classes. Am I right? –  Foysal Jul 5 '11 at 3:53
    
Yes, that's right. The HttpClient classes are actually from the Apache http components project and were integrated into android. You can find the documentation at hc.apache.org/httpclient-3.x –  Tim Büthe Jul 5 '11 at 7:15
1  
Stop the madness ! If you want to end up with an XML doc like the one posted in the question, then you won't get that using nameValuePairs. You have to post the XML doc. Does the receiver of this post expect an XML doc or a standard name/value pairs http POST? –  Fraggle Jul 6 '11 at 16:35

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