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i am trying to upload a file to the web using rest web service. i created a flow which accept a file in the form as:

@POST
@Path("/upload")
@Consumes(MediaType.MULTIPART_FORM_DATA)
public Response uploadFile(

        @FormDataParam("file") InputStream uploadInputStream,
        @FormDataParam("file") FormDataContentDisposition fileDetails,
        @FormDataParam("location") String uploadedFileLoc   ) {
        .
        .
}

Here at the end of method, i need to return the file which client uploaded and in the next method that file is converted into the byte array. Basically i am getting the file in a "InputStream" format. Does there is any way that i could get as an file itself ?

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What do you mean by 'a file itself' ? What is exactly what you're trying to do? –  Paulino III Apr 15 '13 at 13:17
    
the flow is designed in mule studio. the component "File to Byte Array Transformer" required file to transform, for which we need to send the file through the above class - by accepting through the client. –  Ravi Kumar Apr 15 '13 at 13:25
    
I think that if you want to return a File object to this other "File to Byte Array Transformer" you would have to write the InputStream into a File and then send the File. –  Paulino III Apr 15 '13 at 14:17

4 Answers 4

File is a file, Stream is a stream.

If you need a file from a stream you need to create the file and write the stream into the file.

You can use temp folder for this: How to create a temp file in java without the random number appended to the filename?

and create a temp file there.

UPD

For your needs, File.createTempFile() should be enough.

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You can use the Jersey REST API for file upload. For example,

@Path("/upload")
public class FileUploadService{
      @POST

@Consumes(MediaType.MULTIPART_FORM_DATA)
public Response uploadFile(
    @FormDataParam("file") InputStream uploadedInputStream,
    @FormDataParam("file") FormDataContentDisposition fileDetail) {

      String location = "/" + fileDetail.getFileName();

    // save it
    writeToFile(uploadedInputStream, location);

    String output = "File uploaded to : " + location;

    return Response.status(200).entity(output).build();

      }

}

And to save the file you have this method:

private void writeToFile(InputStream uploadedInputStream,
    String location) {

    try {
        OutputStream out = new FileOutputStream(new File(
                location));
        int read = 0;
        byte[] bytes = new byte[1024];

        out = new FileOutputStream(new File(location));
        while ((read = uploadedInputStream.read(bytes)) != -1) {
            out.write(bytes, 0, read);
        }
        out.flush();
        out.close();
    } catch (IOException e) {

        e.printStackTrace();
    }

}

Hope it helps!

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up vote 0 down vote accepted

Thank you all for the suggestion. The main thing i need to do is converting the file to byte array. Since i am getting the InputStream, i could pass this as the return to the next flow rather than waiting for the file itself. In the next flow rather than using a "file to byte array" transformer, just use "Object to byte array" transformer. Finally it works.

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@raviKumar See my answer this may help you ! –  U2Answer Sep 24 at 6:47

@Ravi Kumar

You can use

public Response uploadFileSimple(@FormDataParam("file") File file, @FormDataParam("file") FormDataContentDisposition formData)

It return you a File object directly, But jersey it self create File object in temp for you, So you can say there is two temp file with same size.

First MIMExxxxx.tmp from where you get you input steam

Second re234xxxx  from which you get this file object

NOTE : Before calling your resource method jersey take time to create this two file(as per file size).

And if you want to use directly MIMExx.tmp file, Then i don't think there is straightforward way you may use JAVA REFLECTION to get temp file path and use.

Using Java Reflection :

@Path("/upload/{parentfolderid}")
@Consumes(MediaType.MULTIPART_FORM_DATA)
public Response uploadFileWithPart(FormDataMultiPart form)
    {

        try
        {
            FormDataBodyPart filePart = form.getField("upload");
            BodyPartEntity bodyPart = (BodyPartEntity) filePart.getEntity();

            MIMEPart mimePart = (MIMEPart) readFieldValue("mimePart", bodyPart);
            Object dataHead = readFieldValue("dataHead", mimePart);
            Object dataFile = readFieldValue("dataFile", dataHead);
            File tempFile = null;
            if (dataFile != null)
            {
                Object weakDataFile = readFieldValue("weak", dataFile);
                tempFile = (File) readFieldValue("file", weakDataFile);
            }
            else
            {
                tempFile = filePart.getValueAs(File.class);
            }

    // Here is your *tempFile*, Do what ever you want with it
}

private static Object readFieldValue(String fieldName, Object o) throws Exception
{
    Field field = o.getClass().getDeclaredField(fieldName);
    field.setAccessible(true);
    return field.get(o);
}
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