2

hello i am new in android devlopment i want to know how to upload an image in android i dont found any usefull tutorial for this can u give me some instruction,pls,help me out.

  • Can you be more specific what you want to do with this image? There are many ways to work with images, and I need to choose the one most suitable for your needs. With best, – Patrick Sep 27 '10 at 6:28
  • All that you want is here. – Vikas Jan 29 '11 at 9:49
5

I built this lil methods for you:

private boolean handlePicture(String filePath, String mimeType) {       
    HttpURLConnection connection = null;
    DataOutputStream outStream = null;
    DataInputStream inStream = null;

    String lineEnd = "\r\n";
    String twoHyphens = "--";
    String boundary = "*****";

    int bytesRead, bytesAvailable, bufferSize;

    byte[] buffer;

    int maxBufferSize = 1*1024*1024;

    String urlString = "http://www.yourwebserver.com/youruploadscript.php";

    try {
        FileInputStream fileInputStream = null;
        try {
            fileInputStream = new FileInputStream(new File(filePath));
        } catch(FileNotFoundException e) { }
        URL url = new URL(urlString);
        connection = (HttpURLConnection) url.openConnection();
        connection.setDoInput(true);
        connection.setDoOutput(true);
        connection.setUseCaches(false);

        connection.setRequestMethod("POST");
        connection.setRequestProperty("Connection", "Keep-Alive");
        connection.setRequestProperty("Content-Type", "multipart/form-data;boundary="+boundary);            

        outStream = new DataOutputStream(connection.getOutputStream());

        outStream.writeBytes(addParam("someparam", "content of some param", twoHyphens, boundary, lineEnd));                

        outStream.writeBytes(twoHyphens + boundary + lineEnd);
        outStream.writeBytes("Content-Disposition: form-data; name=\"uploadedfile\"; filename=\"" + filePath +"\"" + lineEnd + "Content-Type: " + mimeType + lineEnd + "Content-Transfer-Encoding: binary" + lineEnd);          
        outStream.writeBytes(lineEnd);

        bytesAvailable = fileInputStream.available();
        bufferSize = Math.min(bytesAvailable, maxBufferSize);
        buffer = new byte[bufferSize];

        bytesRead = fileInputStream.read(buffer, 0, bufferSize);

          while (bytesRead > 0) {
              outStream.write(buffer, 0, bufferSize);
            bytesAvailable = fileInputStream.available();
            bufferSize = Math.min(bytesAvailable, maxBufferSize);
            bytesRead = fileInputStream.read(buffer, 0, bufferSize);
        }

          outStream.writeBytes(lineEnd);
          outStream.writeBytes(twoHyphens + boundary + twoHyphens + lineEnd);

        fileInputStream.close();
        outStream.flush();
        outStream.close();  
    } catch (MalformedURLException e) {
        Log.e("DEBUG", "[MalformedURLException while sending a picture]");
    } catch (IOException e) {
        Log.e("DEBUG", "[IOException while sending a picture]"); 
    }

    try {
           inStream = new DataInputStream( connection.getInputStream() );
           String str;

           while (( str = inStream.readLine()) != null) {
               if(str=="1") {
                   return true;
               } else {
                   return false;
               }
           }
           inStream.close();
      } catch (IOException e){
          Log.e("DEBUG", "[IOException while sending a picture and receiving the response]");
      }
    return false;
}

private String addParam(String key, String value, String twoHyphens, String boundary, String lineEnd) {
        return twoHyphens + boundary + lineEnd + "Content-Disposition: form-data; name=\"" + key + "\"" + lineEnd + lineEnd + value + lineEnd;
}

Should work so far. On your webserver you need some PHP Script which returns a "1" for a successful upload and something else for an error. I also suggest to do this in a ASyncTask, to prevent blocking the user during the uploading. On the webserver side you've got a file in the name "uploadedfile". Hope that helps!

| improve this answer | |
  • Would you update your answer after reading this answer? stackoverflow.com/a/2926550/8418 (I was trying to upload to App Engine and after that fix.. it worked!) – Lipis Jun 7 '12 at 1:43
  • Hi, I was trying to use this code today, but the lines outStream = new DataOutputStream(connection.getOutputStream()); and inStream = new DataInputStream( connection.getInputStream() ); are throwing IOExceptions. I have no idea why! can you help? – Richard Jun 18 '12 at 16:49
  • What kind of IO Exception is it? Where do you use the code? Emulator or Phone, with an SD Card or not? Does the Connection work? – Keenora Fluffball Jun 20 '12 at 7:09
  • Hy... can i get the php function if you don't mind... thnx :) – Loshi Jul 30 '12 at 4:46
0

I don't have a tutorial bout it. Here you have an example: np.

POST / HTTP/1.1
Host: jmaster
User-Agent: Mozilla/5.0 (Windows; U; Windows NT 5.1; pl; rv:1.9.2.10) Gecko/20100914 Firefox/3.6.10
Accept: text/html,application/xhtml+xml,application/xml;q=0.9,/;q=0.8
Accept-Language: pl,en-us;q=0.7,en;q=0.3
Accept-Encoding: gzip,deflate
Accept-Charset: ISO-8859-2,utf-8;q=0.7,*;q=0.7
Referer: http://shop/index.php/index/register/b/
Content-Type: multipart/form-data; boundary=---------------------------19187836022413
X-Forwarded-For: 127.0.0.1
X-Forwarded-Host: jmaster
X-Forwarded-Server: jmaster
Connection: Keep-Alive
Content-Length: 38682
-----------------------------19187836022413
Content-Disposition: form-data; name="file2"; filename="Clipboard02.png" Content-Type: image/png
‰PNG
?
... and this is how it goes.
-----------------------------19187836022413
and you're ending transmission.
----------------------------19187836022413

hope this helps.

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.