19

I'm trying to send a file via Invoke-RestMethod in a similar context as curl with the -F switch.

Curl Example

curl -F FileName=@"/path-to-file.name" "https://uri-to-post"

In powershell, I've tried something like this:

$uri = "https://uri-to-post"
$contentType = "multipart/form-data"
$body = @{
    "FileName" = Get-Content($filePath) -Raw
}

Invoke-WebRequest -Uri $uri -Method Post -ContentType $contentType -Body $body
}

If I check fiddler I see that the body contains the raw binary data, but I get a 200 response back showing no payload has been sent.

I've also tried to use the -InFile parameter with no luck.

I've seen a number of examples using a .net class, but was trying to keep this simple with the newer Powershell 3 commands.

Does anyone have any guidance or experience making this work?

  • 1
    Did u tried this -stackoverflow.com/questions/12251965/… – Mitul Mar 19 '14 at 4:17
  • 1
    Multipart messages are not supported. You can set the content type to be anything, but setting it to multipart/form-data does not cause the message to be formatted as multipart. – Don Cruickshank Mar 19 '14 at 13:26
  • 1
    Multipart/form-data does work when adding as content type. The problem I had here is the API needed some parameters to accept raw content, then I was able to use -InFile \path\to\file and upload using Invoke-RestMethod – Jeff Mar 21 '14 at 15:54
13

The problem here was what the API required some additional parameters. Initial request required some parameters to accept raw content and specify filename/size. After setting that and getting back proper link to submit, I was able to use:

Invoke-RestMethod -Uri $uri -Method Post -InFile $filePath -ContentType "multipart/form-data"
  • What were the additional parameters you had to add? I'm having the exact same problem using the ShareFile api... – Tyler Jones Aug 15 '14 at 19:50
  • Really depends, did you read api.sharefile.com/rest/docs/resource.aspx?name=Items You can try something like this: sf/v3/Items($parentFolderId)/Upload?method=standard&raw=true&fileName=$fileName&fileSize=$fileSize Obviously replacing those variables with your data – Jeff Aug 19 '14 at 0:30
  • 2
    The question I have is was this specific to the API you were trying to use or would this be a general requirement for file uploads using multipart posts? JIRA's API documentation only lists an example with curl (and mentions some header requirements), with no other post parameters. – Ellesedil Aug 27 '14 at 15:31
  • 4
    This doesn't create the multipart body format required, the body will not have the boundary=------------------------abcdefg1234 parts separating the content. See stackoverflow.com/q/25075010/516748 – KCD Feb 14 '17 at 2:41
7

The accepted answer won't do a multipart/form-data request, but rather a application/x-www-form-urlencoded request forcing the Content-Type header to a value that the body does not contain.

One way to send a multipart/form-data formatted request with PowerShell is:

$ErrorActionPreference = 'Stop'

$fieldName = 'file'
$filePath = 'C:\Temp\test.pdf'
$url = 'http://posttestserver.com/post.php'

Try {
    Add-Type -AssemblyName 'System.Net.Http'

    $client = New-Object System.Net.Http.HttpClient
    $content = New-Object System.Net.Http.MultipartFormDataContent
    $fileStream = [System.IO.File]::OpenRead($filePath)
    $fileName = [System.IO.Path]::GetFileName($filePath)
    $fileContent = New-Object System.Net.Http.StreamContent($fileStream)
    $content.Add($fileContent, $fieldName, $fileName)

    $result = $client.PostAsync($url, $content).Result
    $result.EnsureSuccessStatusCode()
}
Catch {
    Write-Error $_
    exit 1
}
Finally {
    if ($client -ne $null) { $client.Dispose() }
    if ($content -ne $null) { $content.Dispose() }
    if ($fileStream -ne $null) { $fileStream.Dispose() }
    if ($fileContent -ne $null) { $fileContent.Dispose() }
}
  • Is there a way to supply cookies or credentials with this method? – Jelphy Apr 4 '19 at 16:01
1

I found this post and changed it a bit

$fileName = "..."
$uri = "..."

$currentPath = Convert-Path .
$filePath="$currentPath\$fileName"

$fileBin = [System.IO.File]::ReadAlltext($filePath)
$boundary = [System.Guid]::NewGuid().ToString()
$LF = "`r`n"
$bodyLines = (
    "--$boundary",
    "Content-Disposition: form-data; name=`"file`"; filename=`"$fileName`"",
    "Content-Type: application/octet-stream$LF",
    $fileBin,
    "--$boundary--$LF"
) -join $LF

Invoke-RestMethod -Uri $uri -Method Post -ContentType "multipart/form-data; boundary=`"$boundary`"" -Body $bodyLines

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