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I would like to make a POST request to upload a file to a web service (and get response) using Python. For example, I can do the following POST request with curl:

curl -F "file=@style.css" -F output=json http://jigsaw.w3.org/css-validator/validator

How can I make the same request with python urllib/urllib2? The closest I got so far is the following:

with open("style.css", 'r') as f:
    content = f.read()
post_data = {"file": content, "output": "json"}
request = urllib2.Request("http://jigsaw.w3.org/css-validator/validator", \
                          data=urllib.urlencode(post_data))
response = urllib2.urlopen(request)

I got a HTTP Error 500 from the code above. But since my curl command succeeds, it must be something wrong with my python request?

I am quite new to this topic and my question may have very simple answers or mistakes.

halfer
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Ying Xiong
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3 Answers3

12

Personally I think you should consider the requests library to post files.

url = 'http://jigsaw.w3.org/css-validator/validator'
files = {'file': open('style.css')}
response = requests.post(url, files=files)

Uploading files using urllib2 is not impossible but quite a complicated task: http://pymotw.com/2/urllib2/#uploading-files

Wolph
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    Thanks, @Wolph. I just tried requests library, but still got an HTTP 500 error.. So my question should probably be rephrased as, what are the differences between the request we made in python and that made by curl? Thanks. – Ying Xiong Nov 20 '14 at 22:19
  • Well, you have the `output=json` in your curl request, that's not in the Python request so that's probably the difference. Glad you have it working now though :) – Wolph Nov 21 '14 at 14:18
  • I have raw `.jpg` file in the form of `ndarray` variable. how can I `POST` this in a similar way? – Santhosh Mar 22 '18 at 13:06
  • @Santhosh using `ndarray.tobytes()` is probably easiest, but you can also use a `fh = StringIO(); ndarray.tofile(fh)` and use the `fh` as a file object – Wolph Mar 22 '18 at 17:36
  • @Wolph In case I have just the image in the form of `ndarray` without any format like `.jpg` or `.png` how would I upload it, then? – Santhosh Apr 04 '18 at 06:29
  • @Santhosh the raw image should be in `.bmp` (bitmap) format. That quickly gets bandwidth intensive though, using a temporary `.png` file might be better – Wolph Apr 04 '18 at 11:39
  • The author has clearly identified that the file needs to be submitted via urllib/urllib2. The `requests` library doesn't exist in Python 2.7. And installing it externally is not an option in many cases. – real4x Jul 18 '18 at 06:10
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    @real4x: the author is not the only person reading this question and it's answers. For most people using `requests` is the better option which is why I gave this answer and example of how to use it. Additionally, I linked to the complicated code to make it work – Wolph Jul 18 '18 at 09:38
11

After some digging around, it seems this post solved my problem. It turns out I need to have the multipart encoder setup properly.

from poster.encode import multipart_encode
from poster.streaminghttp import register_openers
import urllib2

register_openers()

with open("style.css", 'r') as f:
    datagen, headers = multipart_encode({"file": f})
    request = urllib2.Request("http://jigsaw.w3.org/css-validator/validator", \
                              datagen, headers)
    response = urllib2.urlopen(request)
Community
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Ying Xiong
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  • Don't forget to close the `style.css` file? – Vladius Mar 18 '15 at 22:14
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    @Vladius The file will be closed automatically because it is used as a context manager. See documentation on [the `with` statement](https://docs.python.org/2.7/reference/compound_stmts.html#with). – nandhp Apr 18 '15 at 03:58
  • Im really new to python. I ran the above seemingly successful. What should i expect now? Where can i verify it works. – Omar Oct 04 '16 at 16:05
  • poster is for py2, poster3 is supposed to be working for py3 but development has stopped since 2018 and it's not working anymore. see discussion [here](https://stackoverflow.com/questions/69038209/) – Viet Than Mar 24 '22 at 14:26
3

Well, there are multiple ways to do it. As mentioned above, you can send the file in "multipart/form-data". However, the target service may not be expecting this type, in which case you may try some more approaches.

Pass the file object

urllib2 can accept a file object as data. When you pass this type, the library reads the file as a binary stream and sends it out. However, it will not set the proper Content-Type header. Moreover, if the Content-Length header is missing, then it will try to access the len property of the object, which doesn't exist for the files. That said, you must provide both the Content-Type and the Content-Length headers to have the method working:

import os
import urllib2

filename = '/var/tmp/myfile.zip'
headers = {
    'Content-Type': 'application/zip',
    'Content-Length': os.stat(filename).st_size,
}
request = urllib2.Request('http://localhost', open(filename, 'rb'),
                          headers=headers)
response = urllib2.urlopen(request)

Wrap the file object

To not deal with the length, you may create a simple wrapper object. With just a little change you can adapt it to get the content from a string if you have the file loaded in memory.

class BinaryFileObject:
  """Simple wrapper for a binary file for urllib2."""

  def __init__(self, filename):
    self.__size = int(os.stat(filename).st_size)
    self.__f = open(filename, 'rb')

  def read(self, blocksize):
    return self.__f.read(blocksize)

  def __len__(self):
    return self.__size

Encode the content as base64

Another way is encoding the data via base64.b64encode and providing Content-Transfer-Type: base64 header. However, this method requires support on the server side. Depending on the implementation, the service can either accept the file and store it incorrectly, or return HTTP 400. E.g. the GitHub API won't throw an error, but the uploaded file will be corrupted.

real4x
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  • One other thing to note is `base64` means +33.3% traffic. Especially if you're using some cloud hosting, it's going to cost quite a bit. – Íhor Mé Jun 27 '20 at 16:50