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I am trying to send an xml file as a post request in Android.

The server accepts text/xml. I tried creating a MultipartEntity, which has a content type of multipart/form-data.

 HttpClient httpClient = new DefaultHttpClient();

    /* New Post Request */
    HttpPost postRequest = new HttpPost(url);

    byte[] data = IOUtils.toByteArray(payload);

    /* Body of the Request */
     InputStreamBody isb = new InputStreamBody(new ByteArrayInputStream(data), "uploadedFile");
    MultipartEntity multipartContent = new MultipartEntity();
    multipartContent.addPart("uploadedFile", isb);

    /* Set the Body of the Request */

    /* Set Authorization Header */
    postRequest.setHeader("Authorization", authHeader);
    HttpResponse response = httpClient.execute(postRequest);
    InputStream content = response.getEntity().getContent();
    return content;

However I get an error saying the content type cannot be consumed.

The server refused this request because the request entity is in a format not supported by the requested resource for the requested method (Cannot consume content type).

How do I change the content type of the request?


share|improve this question
What do you want to change it to? What is it now and why does the server not support it? –  Lauri Lehtinen Jun 21 '10 at 23:29
If you're sending xml, is there some specific reason you are using MultipartEntity? –  Lauri Lehtinen Jun 21 '10 at 23:58
@Lauri. I thought I would be sending a StringBody too. Is there an easier way to send an XML File only? –  unj2 Jun 22 '10 at 0:01
Do you wish the server to receive an XML file or just the XML content? –  Lauri Lehtinen Jun 22 '10 at 0:04
Tell whoever wrote the server that they should be using PUT, rather than POST, for submitting text/xml content. –  CommonsWare Jun 22 '10 at 0:13

5 Answers 5

up vote 3 down vote accepted

Long story short - use another constructor for your InputStreamBody that lets you specify the mime type you wish to use. If you don't, the parts in your multipart request will not have a Content-Type specified (see below for details). Consequently, the server does not know what type the file is, and in your case might be refusing to accept it (mine accepted them anyway, but I assume this is driven by config). If this still doesn't work, you might have a server-side issue.

Note: Changing the Content-Type of the request itself to anything but multipart/form-data; boundary=someBoundary renders the request invalid; the server will not correctly parse the multipart parts.

Long story long - here's my findings.

Given the following code:

byte[] data = "<someXml />".getBytes();
multipartContent.addPart("uploadedFile", new InputStreamBody(new ByteArrayInputStream(data), "text/xml", "somefile.xml"));
multipartContent.addPart("otherPart", new StringBody("bar", "text/plain", Charset.forName("UTF-8")));
multipartContent.addPart("foo", new FileBody(new File("c:\\foo.txt"), "text/plain"));

The HttpClient posts the following payload (captured w/ Wireshark):

POST /upload.php HTTP/1.1
Transfer-Encoding: chunked
Content-Type: multipart/form-data; boundary=SeXc6P2_uEGZz9jJG95v2FnK5a8ozU8KfbFYw3
Connection: Keep-Alive
User-Agent: Apache-HttpClient/4.1-alpha2 (java 1.5)

Content-Disposition: form-data; name="uploadedFile"; filename="someXml.xml"
Content-Type: text/xml
Content-Transfer-Encoding: binary

<someXml />
Content-Disposition: form-data; name="otherPart"
Content-Type: text/plain; charset=UTF-8
Content-Transfer-Encoding: 8bit

Content-Disposition: form-data; name="foo"; filename="foo.txt"
Content-Type: text/plain
Content-Transfer-Encoding: binary

Contents of foo.txt


On the server, the following PHP script:


spitted out the following:

    [uploadedFile] => Array
            [name] => someXml.xml
            [type] => text/xml
            [tmp_name] => /tmp/php_uploads/phphONLo3
            [error] => 0
            [size] => 11

    [foo] => Array
            [name] => foo.txt
            [type] => text/plain
            [tmp_name] => /tmp/php_uploads/php58DEpA
            [error] => 0
            [size] => 21

    [otherPart] => yo
share|improve this answer
Nah. No luck. The server still rejects my input. Is there someway I can send XML content without the making it multipart? –  unj2 Jun 22 '10 at 4:17
XML being plain text, you can use a StringEntity instead of the MultipartEntity. Wanna try pointing your Android code to and check out what it outputs (that's the page I tested with)? –  Lauri Lehtinen Jun 22 '10 at 4:22
@Foysal upload.php just contained the PHP code shown in the answer (the two print_r statements) –  Lauri Lehtinen Jul 11 '11 at 23:21
Is this a typo or a bug? You write this payload: name="uploadedFile"; filename="text/xml" Content-Type: someXml.xml but this output: [name] => someXml.xml [type] => text/xml –  Niels Feb 11 '14 at 15:18
thanks @Niels, that must have been a typo –  Lauri Lehtinen Feb 13 '14 at 3:57

you can go this way for uploading to server

        HttpClient httpclient = new DefaultHttpClient();
        HttpPost httppost = new HttpPost(url);
        InputStreamEntity reqEntity = new InputStreamEntity(new FileInputStream(filePath), -1);
        reqEntity.setChunked(true); // Send in multiple parts if needed
        HttpResponse response = httpclient.execute(httppost);
share|improve this answer

I have done something similar to access webservices. The soap request was an XML request. See the code below:

package abc.def.ghi;


import org.apache.http.HttpEntity;
import org.apache.http.HttpResponse;
import org.apache.http.client.ClientProtocolException;
import org.apache.http.client.ResponseHandler;
import org.apache.http.client.methods.HttpPost;
import org.apache.http.entity.StringEntity;
import org.apache.http.impl.client.DefaultHttpClient;
import org.apache.http.params.HttpConnectionParams;
import org.apache.http.params.HttpParams;
import org.apache.http.params.HttpProtocolParams;
import org.apache.http.util.EntityUtils;

public class WebServiceRequestHandler {

    public static final int CONNECTION_TIMEOUT=10000;
    public static final int SOCKET_TIMEOUT=15000;

    public String callPostWebService(String url,  String soapAction,   String envelope) throws Exception {
        final DefaultHttpClient httpClient=new DefaultHttpClient();
        HttpParams params = httpClient.getParams();
        HttpConnectionParams.setConnectionTimeout(params, CONNECTION_TIMEOUT);
        HttpConnectionParams.setSoTimeout(params, SOCKET_TIMEOUT);

        HttpProtocolParams.setUseExpectContinue(httpClient.getParams(), true);

        // POST
        HttpPost httppost = new HttpPost(url);
        // add headers. set content type as XML
        httppost.setHeader("soapaction", soapAction);
        httppost.setHeader("Content-Type", "text/xml; charset=utf-8");

        String responseString=null;
        try {
            // the entity holds the request
            HttpEntity entity = new StringEntity(envelope);

            ResponseHandler<String> rh=new ResponseHandler<String>() {
                // invoked on response
                public String handleResponse(HttpResponse response)
                throws ClientProtocolException, IOException {
                    HttpEntity entity = response.getEntity();

                    StringBuffer out = new StringBuffer();
                                    // read the response as byte array
                    byte[] b = EntityUtils.toByteArray(entity);
                    // write the response byte array to a string buffer
                    out.append(new String(b, 0, b.length));        
                    return out.toString();
            responseString=httpClient.execute(httppost, rh); 
        catch (UnsupportedEncodingException uee) {
            throw new Exception(uee);

        }catch (ClientProtocolException cpe){

            throw new Exception(cpe);
        }catch (IOException ioe){
            throw new Exception(ioe);

            // close the connection
        return responseString;

share|improve this answer

Using your code, the following should work:

response.setContentType("Your MIME type");
share|improve this answer
I need to change the content type of the request. –  unj2 Jun 21 '10 at 23:25

Regardless of API, content type is negotiated via a header with the 'Content-Type' key:

You cannot control what the service expects. It's a part of their contract. You're probably sending 'text/plain' and they're expecting something in the realm of 'multipart/form-data' (think html form data).

share|improve this answer
I think is more applicable in this case, multipart requests can specify more than one Content-Type. I would also think that HttpClient detects and sets the correct one for the attached file. –  Lauri Lehtinen Jun 21 '10 at 23:34
But here...I'll google it for you:… call setParameter("Content-Type", "theexpected/type") –  Droo Jun 21 '10 at 23:36

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