Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

How can I rewrite the following CURL command, so that it doesn't use the -F option, but still generates the exact same HTTP request? i.e. so that it passes the multipart/form-data in the body directly.

curl -X POST -F example=test http://localhost:3000/test
share|improve this question
up vote 38 down vote accepted

Solved:

curl \
  -X POST \
  -H "Content-Type: multipart/form-data; boundary=----------------------------4ebf00fbcf09" \
  --data-binary @test.txt \
  http://localhost:3000/test

Where test.txt contains the following text, and most importantly has CRLF (\r\n) line endings:

------------------------------4ebf00fbcf09
Content-Disposition: form-data; name="example"

test
------------------------------4ebf00fbcf09--

Notes: it is important to use --data-binary instead of plain old -d as the former preserves the line endings (which are very important). Also, note that the boundary in the body starts with an extra --.

I'm going to repeat it because it's so important, but that request-body file must have CRLF line endings. A multi-platform text editor with good line-ending support is jEdit (how to set the line endings in jEdit).

If you're interested in how I worked this out (debugging with a Ruby on Rails app) and not just the final solution, I wrote up my debugging steps on my blog.

share|improve this answer
2  
Well done, sir. It took me 4 hours straight to get to you telling me the line endings need to be CRLF. Thanks so much. – Tim Fletcher Mar 28 '13 at 19:29
    
Tim, you're welcome. This puzzled me for ages. The RFC has the key tools.ietf.org/html/rfc2046 (search 'CRLF'). The worse part is that curl will actually munge the line endings if you use -d! – William Denniss Jun 5 '13 at 7:00
    
Why for the love of Unix must the line endings be CRLFs?! Thanks for pointing this out. – Camilo Martin Feb 22 at 1:38
    
Also I just noticed, in your test.txt example you have a trailing --, is it on purpose? – Camilo Martin Feb 22 at 20:01
    
@CamiloMartin yes, see tools.ietf.org/html/rfc2046#section-5.1.1, specifically the text The boundary delimiter line following the last body part is a distinguished delimiter that indicates that no further body parts will follow. Such a delimiter line is identical to the previous delimiter lines, with the addition of two more hyphens after the boundary parameter value. You only need to do this on the last item. – William Denniss Feb 22 at 20:14

You can use the --form argument with an explicitly

curl -H "Content-Type: multipart/related" \
  --form "data=@example.jpg;type=image/jpeg" http://localhost:3000/test
share|improve this answer
1  
thanks but I'm specifically wanting to pass in the raw data for testing, so that I can understand it – and then use it in a non-curl based program. – William Denniss Dec 12 '12 at 0:58

Here's an alternative answer with the original CURL statement re-written using -d as a one-liner, without temporary files. Personally I think the temporary files approach is easier to understand, but I'm putting this here for reference as well:

curl -X POST -H "Content-Type: multipart/form-data; boundary=----------------------------4ebf00fbcf09" -d $'------------------------------4ebf00fbcf09\r\nContent-Disposition: form-data; name="example"\r\n\r\ntest\r\n------------------------------4ebf00fbcf09--\r\n' http://localhost:3000/test

Notes: the $'blar' syntax is so that bash will parse the \r\n as a CRLF token. Thanks to this answer for that tip.

share|improve this answer

This is what I'm using, I think it's clean and doesn't need temporary files nor gobbles up RAM in case you want to upload whole files (so no reading files into memory).

# Set these two.
file='path/to/yourfile.ext'
url='http://endpoint.example.com/foo/bar'

delim="-----MultipartDelimeter$$$RANDOM$RANDOM$RANDOM"
nl=$'\r\n'
mime="$(file -b --mime-type "$file")"

# This is the "body" of the request.
data() {
    # Also make sure to set the fields you need.
    printf %s "--$delim${nl}Content-Disposition: form-data; name=\"userfile\"${nl}Content-Type: $mime$nl$nl"
    cat "$file"
    printf %s "$nl--$delim--$nl"
}

# You can later grep this, or something.
response="$(data | curl -# "$url" -H "content-type: multipart/form-data; boundary=$delim" --data-binary @-)"
share|improve this answer

This is to upload one image file using "Content-Type: multipart/related",

curl --trace trace.txt -X POST -H 'Content-Type: multipart/related; boundary=boundary_1234' --data-binary $'--boundary_1234\r\nContent-Type: application/json; charset=UTF-8\r\n\r\n{\r\n\t"title": "TestFile"\r\n}\r\n\r\n--boundary_1234\r\nContent-Type: image/jpeg\r\n\r\n' --data-binary '@Image0177.jpg' --data-binary $'\r\n--boundary_1234--\r\n' 'http://localhost:3000/google/upload/drive/v2/files?uploadType=multipart'
share|improve this answer

This is for multipart/form-data request method. for uploading a file add --form filename="@path/image.jpg;type=image/jpeg"

curl --form key="value" --form key="value" http://localhost:3000/test

share|improve this answer
    
This doesn't answer the question, since -F and --form are the same option; in the manual page -F, --form <name=content>. – J.J. Hakala Jan 19 at 11:24

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.