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I have a problem with upload file in REST web service using java. I don't know how to get the source file. The curl command is like that

curl --upload-file /home/student1/text1.txt http://localhost:20260/project/resources/user1/sub-folder/text1.txt

My question is anyone know how to get the source file url "/home/student1/text1.txt" in REST web service @PUT method?Or any other way to get it?

thanks

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That file is on the client computer, therefore you can't access it from the server, or am I missing something? –  Milimetric Apr 21 '11 at 1:56
    
But inorder to upload file i need to know the URL , am i right? BufferedReader in=new BufferedReader(new FileReader("/home/student1/text1.txt"); So that I can read it. Coz I am new to web service. And I am confuse Server side and Client side –  sudo Apr 21 '11 at 1:59
    
A file comes across an HTTP request as part of a multipart form. You should dedicate some time to learning how HTTP works (GET, POST, DELETE requests and responses). In today's world, that's very valuable –  Milimetric Apr 21 '11 at 13:44
    
See my comment below, this curl example uses PUT as opposed to multipart/form-data. –  laz May 5 '11 at 12:56
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2 Answers

up vote 1 down vote accepted

I'm assuming that curl uses mltipart/form-data as content type for the upload. The filename would be part of the Content-Disposition header of the first MIME part.

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The --upload-file option to curl tells it to send the contents of the file as the body of an HTTP PUT request as opposed multipart/form-data formatting. –  laz Apr 21 '11 at 15:25
    
thanks for the correction. In this case, there is no standard mechanism to transmit the original file name –  Jochen Bedersdorfer Apr 22 '11 at 0:28
    
hi laz, do u know how to get the contents of the file from PUT request. thanks –  sudo Apr 22 '11 at 6:15
    
I'm not sure why this answer was selected as it is not correct. The example curl command does not use multipart/form-data. You should probably follow Milimetric's advice above and familiarize yourself with HTTP. –  laz May 5 '11 at 12:55
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I'm not terribly familiar with JAX-RS but I think the following code does what you are looking for:

package org.restlet.example;

import java.io.ByteArrayOutputStream;
import java.io.File;
import java.io.FileInputStream;
import java.io.FileOutputStream;
import java.io.IOException;
import java.io.InputStream;
import java.net.URISyntaxException;
import java.util.HashMap;
import java.util.Map;

import javax.ws.rs.Consumes;
import javax.ws.rs.GET;
import javax.ws.rs.PUT;
import javax.ws.rs.Path;
import javax.ws.rs.PathParam;
import javax.ws.rs.Produces;
import javax.ws.rs.QueryParam;
import javax.ws.rs.core.Context;
import javax.ws.rs.core.HttpHeaders;
import javax.ws.rs.core.MediaType;
import javax.ws.rs.core.Response;
import javax.ws.rs.core.UriInfo;

@Path("project/resources/{user}/{directory}/{filename}")
public class JaxRsResource {
    private static final int BLOCK_SIZE = 8192;
    private static final Map<String, MediaType> MEDIA_TYPE_MAP = new HashMap<String, MediaType>();

    @Context
    private UriInfo uriInfo;

    @Context
    private HttpHeaders httpHeaders;

    @PathParam("user")
    private String user;

    @PathParam("directory")
    private String directory;

    @PathParam("filename")
    private String filename;

    @QueryParam("name")
    private String name;

    @QueryParam("type")
    private String type;

    static {
        MEDIA_TYPE_MAP.put("txt", MediaType.TEXT_PLAIN_TYPE);
        MEDIA_TYPE_MAP.put("gif", MediaType.valueOf("image/gif"));
        MEDIA_TYPE_MAP.put("jpg", MediaType.valueOf("image/jpeg"));
        MEDIA_TYPE_MAP.put("png", MediaType.valueOf("image/png"));
        MEDIA_TYPE_MAP.put("zip", MediaType.valueOf("application/zip"));
    }

    public JaxRsResource() {
    }

    @PUT
    @Consumes({"text/plain", "image/jpeg", "image/png", "image/gif", "application/zip"})
    public Response upload(final byte[] contents) throws IOException, URISyntaxException {
        FileOutputStream output = null;
        try {
            final File directories = new File(user, directory);
            directories.mkdirs();
            final File file = new File(directories, filename);
            output = new FileOutputStream(file);
            output.write(contents);
        } finally {
            if (output != null) {
                output.flush();
                output.close();
            }
        }
        return Response.created(uriInfo.getAbsolutePath()).build();
    }

    @GET
    @Produces({"text/plain", "image/jpeg", "image/png", "image/gif", "application/zip"})
    public Response output() throws IOException {
        final String extension = filename.substring(filename.lastIndexOf('.') + 1);
        final ByteArrayOutputStream output = new ByteArrayOutputStream();
        InputStream input = null;
        try {
            input = new FileInputStream(new File(new File(user, directory), filename));
            final byte[] buffer = new byte[BLOCK_SIZE];
            int read = 0;
            while ((read = input.read(buffer)) > -1) {
                output.write(buffer, 0, read);
            }
        } finally {
            if (input != null) {
                input.close();
            }
        }
        final byte[] byteArray = output.toByteArray();
        output.flush();
        output.close();
        return Response.ok(byteArray, MEDIA_TYPE_MAP.get(extension)).build();
    }

}

I haven't verified that it is safe against trying to put .. for either user or directory so it might require input sanitation. Also, the errors and exceptions needs to be handled better.

I tested this out with curl and it creates the file on the server file system containing the contents of the file passed via --upload-file which can then be retrieved by issuing a GET to the same resource. I did have to add the Content-Type header to the curl request to get it working though:

curl -v -T test.txt -H "Content-Type: text/plain" http://localhost:8182/project/resources/user1/sub-folder/test.txt

I tested this out using Restlet's implementation of JAX-RS.

This new version handles your additional requirement of supporting the query parameters you mentioned in the other comment. I refactored it to use properties instead of method arguments, since the argument lists were growing unwieldy. I learned that it is thread safe to do so from the JAX-RS spec. Also, I modified the code to support plain text and binary files, though I haven't tried it with different file encodings. Since the method is expecting a byte array input I'm hoping that the JAX-RS framework does the right thing and can tell which encoding to use if one is provided in the request's Content-Type header.

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very thanks laz, that is the answer i want. –  sudo Apr 25 '11 at 1:33
    
hi laz,there is error in uploading pictures and zip file.Do you know how to solve it? –  sudo Apr 25 '11 at 2:23
    
You probably need to correct the Content-Type. The example I provided only works for Content-Type text/plain. Also, using Writer and Reader objects won't work for binary data such as images or zip files. You would need to use OutputStream and InputStream objects. –  laz Apr 25 '11 at 2:28
    
hi laz, i want to get the parameter of value "name" and "type" in url : localhost:8080/project/resources/user/… Do you know how can I get both name and type's value? I used query param ,but i only get name's value. thanks –  sudo Apr 25 '11 at 2:37
    
hi laz, Do you know how to hide the command. Now when we upload file we need to write like : curl -v -T /home/student1/file.jpg localhost:8080/project/resources/user/file.jpg . I want to know can I upload without knowing the upload path like : curl -v localhost:8080/project/resources/user/file.jpg . Do you know how to hide the source file? –  sudo Apr 28 '11 at 2:01
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