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In html, a form with multipart data:

<form action="@routes.Files.upload" method="post" enctype="multipart/form-data">
    <input type="hidden" name="groupId" value="1" />
    <input type="hidden" name="tagId" value="2" />
    <input type="file" name="file"/>
    <input type="submit" value="upload it"/>
</form>

How to write the action Files upload?

I know how to get a uploaded file:

request.body.file("file") map {
    filepart => filepart.ref.moveTo(newFile);
}

And how to get submitted inputs:

Form(tuple("groupId" -> text, "tagId" -> text)).bindFromRequest.fold(
    errors => ...,
    params => ....
)

But how to combine them together?

I don't find a suitable type for file can be used in Form(tuple(...)), and neither a way to get input value in request.body.

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2 Answers 2

This answer is for Java, but you should be able to adapt it to Scala fairly easily.

What you need to do is define a Model for all the fields in your form except the file. Then use the file-upload API as normal to retrieve the file.

For example, this is what I did:

The Form (in upload.scala.html):

@form(action = routes.UploadResourceController.doUpload(), 'enctype -> "multipart/form-data") {

    @inputText(uploadForm("lang"))
    @inputText(uploadForm("country"))
    @inputFile(uploadForm("resourceFile"))

    <p>
        <input type="submit">
    </p>
}

The Model (models/UploadResource.java):

public class UploadResource {
    @Required
    public String lang;

    @Required
    public String country;

    /* notice a field for the file is missing */
}

The Controller (controllers/UploadResourceController.java):

public static Result doUpload() {
    Form<UploadResource> filledForm = uploadForm.bindFromRequest();

    if (filledForm.hasErrors()) {
        return badRequest(views.html.upload.render(filledForm));
    } else {
        UploadResource resource = filledForm.get();
        MultipartFormData body = request().body().asMultipartFormData();
        FilePart resourceFile = body.getFile("resourceFile");

        /* Check resourceFile for null, then extract the File object and process it */
     }
}

I hope this helps.

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What if you want to store the location of file in the model? Otherwise, how will you know where the file is located after you process it? I guess I'm missing what the "file-upload API" is - commons.apache.org/proper/commons-fileupload/using.html ? –  Skylar Saveland May 14 at 19:14
    
@SkylarSaveland - this code just lets you get the form data and the file. Once you have the file (the resourceFile in my example), you can move it to wherever you want to store it, and update your model with the location and filename. –  JBCP May 14 at 23:38

An example in Scala where the form field is required:

Model:

case class Specs (userid: String)

Controller:

object Upload extends Controller {
   val uploadForm = Form(
         mapping(
               "userid" -> nonEmptyText
         )(Specs.apply)(Specs.unapply)
   )
   def upload = Action(parse.multipartFormData) { implicit request =>
      val sp : Option[Specs] = uploadForm.bindFromRequest().fold (
            errFrm => None,
            spec => Some(spec)
      )
      request.body.file("file").map { f =>
         sp.map { spec =>
            val filePath = ... // incorporate userid
            // XXX: file read to memory b4 writing to disk. bad for large files
            f.ref.moveTo(new File(filePath), replace=true)
            Ok("File uploaded")
         }.getOrElse{
            BadRequest("Form binding error.")
         }
      }.getOrElse {
         BadRequest("File not attached.")
      }
   }
}
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