13

I'm trying to upload a file with body content. Is PostMultipartAsync the only way?

On my C# backend code I have this:

var resource = FormBind<StorageFileResource>();
var file = Request.Files.First().ToPostedFile();

FormBind reads data from the request and fills the object.

By using PostMultipartAsync I know it should start like this:

.PostMultipartAsync((mp) => { mp.AddFile(name, stream, name)}), but I can't figure out how to add the object. Do you have any ideas on that?

This is my current try:

public static async Task<T> PostFileAsync<T>(string url, object data, string name, Stream stream, object queryString = null)
    where T : class
{
    return await HandleRequest(async () => queryString != null
        ? await url
            .SetQueryParams(queryString)
            .SetClaimsToken()
            .PostMultipartAsync((mp) => { mp.AddFile(name, stream, name)})
            .ReceiveJson<T>()
        : await url
            .SetClaimsToken()
            .PostMultipartAsync((mp) => mp.AddFile(name, stream, name))
            .ReceiveJson<T>());
}

Current request being made by the front end:

enter image description here

6
  • Does ToPostedFile return a System.Web.HttpPostedFile? Also, what is resource and how it it relevant here? file should contain everything you want to post, no? Dec 8 '16 at 16:32
  • Also, regarding "is it the only way" to upload a file with Flurl: Technically no, but the API or web service you're calling should define the format it requires, be it multipart/form-data or something else. That's the important part to find out first. Dec 8 '16 at 16:36
  • @ToddMenier Hi Todd, regarding the first question, no, it's a local class. I read from the HttpFile's list. Resource is my ViewModel class, I'm only binding the request fields with that class, it's purpose here is to show I'm reading the other fields separately. As to the 3rd part, it is an API that requires multipart/form-data, please check my updated answer to see how it's being done today using the frontend.
    – eestein
    Dec 8 '16 at 17:12
  • Are you asking how to do a multipart post that requires both a file and a JSON object? Dec 8 '16 at 18:41
  • @ToddMenier yup :)
    – eestein
    Dec 9 '16 at 12:47
27

There are a variety of ways to add "parts" to a multipart POST with Flurl. I haven't added this to the docs yet but here's an example from the issue that basically demonstrates every possibility:

var resp = await "http://api.com"
    .PostMultipartAsync(mp => mp
        .AddString("name", "hello!")                // individual string
        .AddStringParts(new {a = 1, b = 2})         // multiple strings
        .AddFile("file1", path1)                    // local file path
        .AddFile("file2", stream, "foo.txt")        // file stream
        .AddJson("json", new { foo = "x" })         // json
        .AddUrlEncoded("urlEnc", new { bar = "y" }) // URL-encoded                      
        .Add(content));                             // any HttpContent
8
  • Thanks! I had to use AddJson for each property, since I need it in the Form's request body, by only using AddJson("json",data) the object is serialized inside the json property, inside the Form property. Thank you :)
    – eestein
    Dec 9 '16 at 16:30
  • I am trying to send nested properties via AddStringParts method, but it generates dynamic.ToString() which is invalid json. I just need only flattening nested properties by seperating dots. ` new { User = new { Name = "Ahmed" } }` => User.Name="Ahmed"
    – guneysus
    Feb 3 '17 at 8:53
  • 1
    @guneysus I don't think that's a very common scenario and Flurl does not have direct support for it. You'd need to sort of pick it apart yourself and do .AddString("User.Name", "Ahmed"). (As a side-note, this scenario has nothing to do with JSON. User={"Name":"Ahmed"} is how you'd pass this as a JSON-encoded value, which is much more common.) Feb 5 '17 at 15:36
  • 1
    I figured it out. Thanks.
    – Rob L
    Aug 13 '18 at 9:15
  • 1
    I would appreciate if you could also show how to assert this multipart call within flurl. Specifically, if a request contained given part and a content.
    – Valera
    Jul 27 '20 at 18:32

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