This is probably going to be a stupid question but I'm having one of those nights. In an application I am developing RESTful API and we want the client to send data as JSON. Part of this application requires the client to upload a file (usually an image) as well as information about the image.

I'm having a hard time tracking down how this happens in a single request. Is it possible to Base64 the file data into a JSON string? Am I going to need to perform 2 posts to the server? Should I not be using JSON for this?

As a side note, we're using Grails on the backend and these services are accessed by native mobile clients (iPhone, Android, etc), if any of that makes a difference.

11 Answers 11

up vote 486 down vote accepted

I asked a similar question here:

How do I upload a file with metadata using a REST web service?

You basically have three choices:

  1. Base64 encode the file, at the expense of increasing the data size by around 33%.
  2. Send the file first in a multipart/form-data POST, and return an ID to the client. The client then sends the metadata with the ID, and the server re-associates the file and the metadata.
  3. Send the metadata first, and return an ID to the client. The client then sends the file with the ID, and the server re-associates the file and the metadata.
  • 21
    If I chose option 1, do I just include the Base64 content inside the JSON string? {file:'234JKFDS#$@#$MFDDMS....', name:'somename'...} Or is there something more to it? – Gregg Nov 3 '10 at 3:06
  • 11
    Gregg, exactly as you've said, you would just include it as a property, and the value would be the base64-encoded string. This is probably the easiest method to go with, but might not be practical depending on the file size. For example, for our application, we need to send iPhone images that are 2-3 MB each. An increase of 33% is not acceptable. If you're sending only small 20KB images, that overhead might be more acceptable. – Daniel T. Nov 3 '10 at 3:14
  • 11
    I should also mention that the base64 encoding/decoding will also take some processing time. It might be the easiest thing to do, but it's certainly not the best. – Daniel T. Nov 3 '10 at 3:25
  • 6
    json with base64? hmm.. I'm thinking about sticking to multipart/form – Omnipresent May 16 '13 at 0:12
  • 7
    Why it is deny to use multipart/form-data in one request? – 1nstinct Jul 16 '15 at 6:34

You can send the file and data over in one request using the multipart/form-data content type:

In many applications, it is possible for a user to be presented with a form. The user will fill out the form, including information that is typed, generated by user input, or included from files that the user has selected. When the form is filled out, the data from the form is sent from the user to the receiving application.

The definition of MultiPart/Form-Data is derived from one of those applications...

From http://www.faqs.org/rfcs/rfc2388.html:

"multipart/form-data" contains a series of parts. Each part is expected to contain a content-disposition header [RFC 2183] where the disposition type is "form-data", and where the disposition contains an (additional) parameter of "name", where the value of that parameter is the original field name in the form. For example, a part might contain a header:

Content-Disposition: form-data; name="user"

with the value corresponding to the entry of the "user" field.

You can include file information or field information within each section between boundaries. I've successfully implemented a RESTful service that required the user to submit both data and a form, and multipart/form-data worked perfectly. The service was built using Java/Spring, and the client was using C#, so unfortunately I don't have any Grails examples to give you concerning how to set up the service. You don't need to use JSON in this case since each "form-data" section provides you a place to specify the name of the parameter and its value.

The good thing about using multipart/form-data is that you're using HTTP-defined headers, so you're sticking with the REST philosophy of using existing HTTP tools to create your service.

  • 1
    Thanks, but my question was focused on wanting to use JSON for the request and if that was possible. I already know that I could send it the way you suggest. – Gregg Nov 3 '10 at 3:05
  • 12
    Yeah that's essentially my response for "Should I not be using JSON for this?" Is there a specific reason why you want the client to use JSON? – McStretch Nov 3 '10 at 3:10
  • 3
    Most likely a business requirement or keeping with consistency. Of course, the ideal thing to do is accept both (form data and JSON response) based on the Content-Type HTTP header. – Daniel T. Nov 3 '10 at 3:17
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    Choosing JSON results much more elegant code in both client and server side, which leads to less potential bugs. Form data is so yesterday. – superarts.org May 14 '15 at 3:57
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    I apologize for what I said if it hurt some .Net developer's feeling. Although English is not my native language, it's not a valid excuse for me to say something rude about the technology itself. Using form data is awesome and if you keep using it you'll be even more awesome, too! – superarts.org Jun 10 '16 at 1:02

I know that this thread is quite old, however, I am missing here one option. If you have metadata (in any format) that you want to send along with the data to upload, you can make a single multipart/related request.

The Multipart/Related media type is intended for compound objects consisting of several inter-related body parts.

You can check RFC 2387 specification for more in-depth details.

Basically each part of such a request can have content with different type and all parts are somehow related (e.g. an image and it metadata). The parts are identified by a boundary string, and the final boundary string is followed by two hyphens.

Example:

POST /upload HTTP/1.1
Host: www.hostname.com
Content-Type: multipart/related; boundary=xyz
Content-Length: [actual-content-length]

--xyz
Content-Type: application/json; charset=UTF-8

{
    "name": "Sample image",
    "desc": "...",
    ...
}

--xyz
Content-Type: image/jpeg

[image data]
[image data]
[image data]
...
--foo_bar_baz--
  • I liked your solution the best by far. Unfortunately, there appears to be no way to create mutlipart/related requests in a browser. – Petr Baudis May 27 '16 at 22:12
  • Would it not be possible to just build up the body manually? – pip Aug 12 '16 at 9:32
  • do you have any experience in getting clients to (especially JS ones) to communicate with the api in this way – pvgoddijn Sep 29 '16 at 11:07
  • unfortunately, there's currently no reader for this kind of data on php (7.2.1) and you would have to build your own parser – dewd Jul 24 at 13:49

I know this question is old, but in the last days I had searched whole web to solution this same question. I have grails REST webservices and iPhone Client that send pictures, title and description.

I don't know if my approach is the best, but is so easy and simple.

I take a picture using the UIImagePickerController and send to server the NSData using the header tags of request to send the picture's data.

NSMutableURLRequest *request = [[NSMutableURLRequest alloc] initWithURL:[NSURL URLWithString:@"myServerAddress"]];
[request setHTTPMethod:@"POST"];
[request setHTTPBody:UIImageJPEGRepresentation(picture, 0.5)];
[request setValue:@"image/jpeg" forHTTPHeaderField:@"Content-Type"];
[request setValue:@"myPhotoTitle" forHTTPHeaderField:@"Photo-Title"];
[request setValue:@"myPhotoDescription" forHTTPHeaderField:@"Photo-Description"];

NSURLResponse *response;

NSError *error;

[NSURLConnection sendSynchronousRequest:request returningResponse:&response error:&error];

At the server side, I receive the photo using the code:

InputStream is = request.inputStream

def receivedPhotoFile = (IOUtils.toByteArray(is))

def photo = new Photo()
photo.photoFile = receivedPhotoFile //photoFile is a transient attribute
photo.title = request.getHeader("Photo-Title")
photo.description = request.getHeader("Photo-Description")
photo.imageURL = "temp"    

if (photo.save()) {    

    File saveLocation = grailsAttributes.getApplicationContext().getResource(File.separator + "images").getFile()
    saveLocation.mkdirs()

    File tempFile = File.createTempFile("photo", ".jpg", saveLocation)

    photo.imageURL = saveLocation.getName() + "/" + tempFile.getName()

    tempFile.append(photo.photoFile);

} else {

    println("Error")

}

I don't know if I have problems in future, but now is working fine in production environment.

  • I like this option of using http headers. This works especially well when there is some symmetry between the metadata and standard http headers, but you can obviously invent your own. – EJ Campbell Jan 8 '14 at 3:37

Here is my approach API (i use example) - as you can see, you I don't use any file_id (uploaded file identyicator in server) in API:

1.Create 'photo' object on server:

POST: /projects/{project_id}/photos   
params in: {name:some_schema.jpg, comment:blah}
return: photo_id

2.Upload file (note that 'file' is in singular form because it is only one per photo):

POST: /projects/{project_id}/photos/{photo_id}/file
params in: file to upload
return: -

And then for instance:

3.Read photos list

GET: /projects/{project_id}/photos
params in: -
return: array of objects: [ photo, photo, photo, ... ]

4.Read some photo details

GET: /projects/{project_id}/photos/{photo_id}
params in: -
return: photo = { id: 666, name:'some_schema.jpg', comment:'blah'}

5.Read photo file

GET: /projects/{project_id}/photos/{photo_id}/file
params in: -
return: file content

So the conclusion is that, first you create object (photo) by POST, and then you send secod request with file (again POST).

  • 2
    This seems like the more 'RESTFUL' way to achieve this. – James Webster Oct 17 '16 at 5:10
  • POST operation for newly created resources, must return location id, in simple version details of the object – ivan.proskuryakov Jan 4 '17 at 15:52
  • @ivanproskuryakov why "must"? In the example above (POST in point 2) the file id is useless. Second argument (for POST in point 2) i use singular form '/file' (not '/files') so ID is not needed because path: /projects/2/photos/3/file give FULL information to identity photo file. – Kamil Kiełczewski Jan 4 '17 at 16:27
  • From HTTP protocol specification. w3.org/Protocols/rfc2616/rfc2616-sec10.html 10.2.2 201 Created "The newly created resource can be referenced by the URI(s) returned in the entity of the response, with the most specific URI for the resource given by a Location header field." @KamilKiełczewski (one) and (two) could be combined into one POST operation POST: /projects/{project_id}/photos Will return you location header, which could be used for GET single photo(resource*) operation GET: to get a single photo with all details CGET: to get all collection of the photos – ivan.proskuryakov Jan 5 '17 at 9:06
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    If metadata and upload are separate operations, then the endpoints have these issues: For file upload POST operation used - POST is not idempotent. PUT(idempotent) must be used since you are changing the resource without creating a new one. REST works with objects called resources. POST: “../photos/“ PUT: “../photos/{photo_id}” GET: “../photos/“ GET: “../photos/{photo_id}” PS. Separating upload into separate endpoint may lead to unpredicted behavior. restapitutorial.com/lessons/idempotency.html restful-api-design.readthedocs.io/en/latest/resources.html – ivan.proskuryakov Jan 8 '17 at 10:21

Since the only missing example is the ANDROID example, I'll add it. This technique uses a custom AsyncTask that should be declared inside your Activity class.

private class UploadFile extends AsyncTask<Void, Integer, String> {
    @Override
    protected void onPreExecute() {
        // set a status bar or show a dialog to the user here
        super.onPreExecute();
    }

    @Override
    protected void onProgressUpdate(Integer... progress) {
        // progress[0] is the current status (e.g. 10%)
        // here you can update the user interface with the current status
    }

    @Override
    protected String doInBackground(Void... params) {
        return uploadFile();
    }

    private String uploadFile() {

        String responseString = null;
        HttpClient httpClient = new DefaultHttpClient();
        HttpPost httpPost = new HttpPost("http://example.com/upload-file");

        try {
            AndroidMultiPartEntity ampEntity = new AndroidMultiPartEntity(
                new ProgressListener() {
                    @Override
                        public void transferred(long num) {
                            // this trigger the progressUpdate event
                            publishProgress((int) ((num / (float) totalSize) * 100));
                        }
            });

            File myFile = new File("/my/image/path/example.jpg");

            ampEntity.addPart("fileFieldName", new FileBody(myFile));

            totalSize = ampEntity.getContentLength();
            httpPost.setEntity(ampEntity);

            // Making server call
            HttpResponse httpResponse = httpClient.execute(httpPost);
            HttpEntity httpEntity = httpResponse.getEntity();

            int statusCode = httpResponse.getStatusLine().getStatusCode();
            if (statusCode == 200) {
                responseString = EntityUtils.toString(httpEntity);
            } else {
                responseString = "Error, http status: "
                        + statusCode;
            }

        } catch (Exception e) {
            responseString = e.getMessage();
        }
        return responseString;
    }

    @Override
    protected void onPostExecute(String result) {
        // if you want update the user interface with upload result
        super.onPostExecute(result);
    }

}

So, when you want to upload your file just call:

new UploadFile().execute();
  • Hi, what is AndroidMultiPartEntity please explain... and if i want to upload pdf, word or xls file what i have to do, please give some guidance... i am new to this. – amit pandya Jan 9 at 11:09
  • 1
    @amitpandya I've changed the code to a generic file upload so it's more clear to anyone reading it – lifeisfoo Jan 10 at 9:46

FormData Objects: Upload Files Using Ajax

XMLHttpRequest Level 2 adds support for the new FormData interface. FormData objects provide a way to easily construct a set of key/value pairs representing form fields and their values, which can then be easily sent using the XMLHttpRequest send() method.

function AjaxFileUpload() {
    var file = document.getElementById("files");
    //var file = fileInput;
    var fd = new FormData();
    fd.append("imageFileData", file);
    var xhr = new XMLHttpRequest();
    xhr.open("POST", '/ws/fileUpload.do');
    xhr.onreadystatechange = function () {
        if (xhr.readyState == 4) {
             alert('success');
        }
        else if (uploadResult == 'success')
             alert('error');
    };
    xhr.send(fd);
}

https://developer.mozilla.org/en-US/docs/Web/API/FormData

I wanted send some strings to backend server. I didnt use json with multipart, I have used request params.

@RequestMapping(value = "/upload", method = RequestMethod.POST)
public void uploadFile(HttpServletRequest request,
        HttpServletResponse response, @RequestParam("uuid") String uuid,
        @RequestParam("type") DocType type,
        @RequestParam("file") MultipartFile uploadfile)

Url would look like

http://localhost:8080/file/upload?uuid=46f073d0&type=PASSPORT

I am passing two params (uuid and type) along with file upload. Hope this will help who don't have the complex json data to send.

@RequestMapping(value = "/uploadImageJson", method = RequestMethod.POST)
    public @ResponseBody Object jsongStrImage(@RequestParam(value="image") MultipartFile image, @RequestParam String jsonStr) {
-- use  com.fasterxml.jackson.databind.ObjectMapper convert Json String to Object
}

Please ensure that you have following import. Ofcourse other standard imports

import org.springframework.core.io.FileSystemResource


    void uploadzipFiles(String token) {

        RestBuilder rest = new RestBuilder(connectTimeout:10000, readTimeout:20000)

        def zipFile = new File("testdata.zip")
        def Id = "001G00000"
        MultiValueMap<String, String> form = new LinkedMultiValueMap<String, String>()
        form.add("id", id)
        form.add('file',new FileSystemResource(zipFile))
        def urld ='''http://URL''';
        def resp = rest.post(urld) {
            header('X-Auth-Token', clientSecret)
            contentType "multipart/form-data"
            body(form)
        }
        println "resp::"+resp
        println "resp::"+resp.text
        println "resp::"+resp.headers
        println "resp::"+resp.body
        println "resp::"+resp.status
    }
  • 1
    This get java.lang.ClassCastException: org.springframework.core.io.FileSystemResource cannot be cast to java.lang.String – Mariano Ruiz Dec 28 '15 at 21:04

If you are developing a rest server you can do this

  1. Have the client expose the file over HTTP
  2. The client can then send the url with your json data e.g an image file {"file_url":"http://cockwombles.com/blah.jpg"}
  3. The server can then download the file.
  • 1
    This is not ideal as (a) the client has to run an http server, (b) there is no guarantee the server can connect back to the client (firewall issues) – davidfrancis Sep 20 '17 at 9:10

protected by Josh Crozier Apr 25 '17 at 23:49

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