4

Good day, I am trying to send a file from an SDCard through an OutputStream. I intend to get the URI from the file name which I have and then use an InputStream to read the URI and convert to bytes in other to send. Currently the code is stuck in get InputStream (As commented below) and nothing happens.

Also, I don't know if I am using the URI correctly to get the actual path of the file to send.

Please, any help will be greatly appreciated because I have been stuck here for some time now. Thank you.

My code:

public void sendFile() {
    Log.d(TAG, "sending data");
    InputStream inputStream = null;
    String filePath = Environment.getExternalStorageDirectory()
          .toString() + "/" + files.get(0);
    Log.d(TAG, "filepath is" + filePath);

    Uri uri = Uri.parse(filePath);

    Log.d(TAG, "obtained input stream here in Activity");
    Log.d(TAG, "Uri here is" + uri);  // nothing happens after here, Basically stuck!!
    try {
        inputStream = getContentResolver().openInputStream(uri);
        ByteArrayOutputStream byteBuffer = new ByteArrayOutputStream();
        Log.d(TAG, "obtained input stream here in Activity");

        int buffersize = 1024;
        byte[] buffer = new byte[buffersize];

        int len = 0;
        while ((len = inputStream.read(buffer)) != -1) {
            byteBuffer.write(buffer, 0, len);
        }

        AppServices.write(byteBuffer.toByteArray());

    } catch (IOException e) {
        e.printStackTrace();
    }
    finally {
        if (inputStream != null) {
            try {
                inputStream.close();
            } catch (IOException e) {
                e.printStackTrace();
            }
        }
    }
}
1

Use :

Uri uri = Uri.fromFile(new File(filePath));

or simply just use:

inputStream  = new FileInputStream(filePath);
4
  • I tried both of them, but nothing seems to happen. can't even reach the logcat output after this line inputStream = getContentResolver().openInputStream(uri);. not sure why?.
    – irobotxx
    Jan 5 '12 at 18:16
  • File is basically a reference to a file (even if it doen not yet exist). Jan 5 '12 at 19:28
  • You can try (new File(filePath)).exists() to check if file exists. Otherwise opening a stream on nonexistent file throws an exception. How do you handle exceptions? Jan 5 '12 at 19:30
  • Also, in second case you do not need to use getContentResolver().openInputStream(uri). You get input stream directly via FileInputStream Jan 5 '12 at 19:31
0

I tried using InputStream is = ctx.getContentResolver().openInputStream(Uri.parse("file://"+fileUri)); But that won't cut it. It returns wierd byte results. I tried reading this way, but that diden't work either.

while (is.available() > 0) {
            outputStream.write(is.read(b));
}

To make it work i do like this:

The fileUri param is a string like: "/mnt/sdcard/DCIM/Camera/2013-05-07 15.53.47.jpg"

public static byte[] getImageAsBytes(String fileUri) throws IOException {
    if (!Environment.MEDIA_MOUNTED.equals(Environment.getExternalStorageState())) {
        return null;
    }
    //Get file stream
    FileInputStream is = new FileInputStream(fileUri);
    //create output stream
    ByteArrayOutputStream outputStream = new ByteArrayOutputStream();
    //create buffer
    byte[] b = new byte[1024];
    //Read the input to the bytestream
    int len = 0;
    while((len = is.read(b)) != -1){
        outputStream.write(b, 0, len);
    }
    is.close();
    //convert to bytearray
    final byte[] byteArray = outputStream.toByteArray();
    outputStream.close();
    return byteArray;
}

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.