65

I have a folder full of files and they don't have an extension. How can I check file types? I want to check the file type and change the filename accordingly. Let's assume a function filetype(x) returns a file type like png. I want to do this:

files = os.listdir(".")
for f in files:
    os.rename(f, f+filetype(f))

How do I do this?

  • 2
    Are you on *NIX? – Skurmedel Jun 7 '12 at 18:07
  • 3
    rel: stackoverflow.com/questions/43580/… – georg Jun 7 '12 at 18:11
  • You'll have to be more specific with regard to file types. Do you mean determining if it's a gif, png, bmp or jpg? Do you just want to know if it's text/binary? Executable? – JoeFish Jun 7 '12 at 18:12
  • @thg435, once you have the MIME type is there a way to convert that to a suitable filename extension? – Mark Ransom Jun 7 '12 at 18:14
  • @Mark: yes, use guess_extension, but actually, mimetypes won't work here, because it's based on file extensions. What they need is libmagic (see the 2nd answer on the link). – georg Jun 7 '12 at 18:18
71

There are Python libraries that can recognize files based on their content (usually a header / magic number) and that don't rely on the file name or extension.

If you're addressing many different file types, you can use python-magic. That's just a Python binding for the well-established magic library. This has a good reputation and (small endorsement) in the limited use I've made of it, it has been solid.

There are also libraries for more specialized file types. For example, the Python standard library has the imghdr module that does the same thing just for image file types.

54

The Python Magic library provides the functionality you need.

You can install the library with pip install python-magic and use it as follows:

>>> import magic

>>> magic.from_file('iceland.jpg')
'JPEG image data, JFIF standard 1.01'

>>> magic.from_file('iceland.jpg', mime=True)
'image/jpeg'

>>> magic.from_file('greenland.png')
'PNG image data, 600 x 1000, 8-bit colormap, non-interlaced'

>>> magic.from_file('greenland.png', mime=True)
'image/png'

The Python code in this case is calling to libmagic beneath the hood, which is the same library used by the *NIX file command. Thus, this does the same thing as the subprocess/shell-based answers, but without that overhead.

  • 4
    Beware that the debian/ubuntu package called python-magic is different to the pip package of the same name. Both are import magic but have incompatible contents. See stackoverflow.com/a/16203777/3189 for more. – Hamish Downer Apr 28 '15 at 11:13
  • 1
    @Richard Do you mind elaborating on the overhead aspect? What makes the python-magic library more efficient then using subprocess approaches? – Greg Mar 29 '17 at 15:10
10

On unix and linux there is the file command to guess file types. There's even a windows port.

From the man page:

File tests each argument in an attempt to classify it. There are three sets of tests, performed in this order: filesystem tests, magic number tests, and language tests. The first test that succeeds causes the file type to be printed.

You would need to run the file command with the subprocess module and then parse the results to figure out an extension.

edit: Ignore my answer. Use Chris Johnson's answer instead.

  • +1 I didn't realize file did that much. # file arc.gif arc.gif: GIF image data, version 89a, 234 x 269 – JoeFish Jun 7 '12 at 18:20
  • Well, I was hoping someone had a better answer. There's still a lot of work for the OP, it's not a simple function call. – Steven Rumbalski Jun 7 '12 at 18:22
  • 2
    +1 One benefit with using the file command is that it is native on (most?) Linux distributions while the python-magic is not and has to be downloaded and installed before it can be used. This is somewhat of a problem if the script using the module is supposed to be portable. – HelloGoodbye Jan 22 '14 at 18:52
7
import subprocess
p = sub.Popen('file yourfile.txt',stdout=sub.PIPE,stderr=sub.PIPE)
output, errors = p.communicate()
print output

As Steven pointed out, subprocess is the way. You can get the command output by the way above as this post said

  • And how do you capture the output? – Mark Ransom Jun 7 '12 at 18:26
  • @MarkRansom sorry that was not a good way, please see my updates above – xvatar Jun 7 '12 at 18:47
  • If you need to interact with your system instead of using a Python library, the solution is suboptimal most of the time, because it is likely not useful in other operating systems with a different API. – erikbwork Dec 17 '13 at 16:17
6

You can also install the official file binding for Python, a library called file-magic (it does not use ctypes, like python-magic).

It's available on PyPI as file-magic and on Debian as python-magic. For me this library is the best to use since it's available on PyPI and on Debian (and probably other distributions), making the process of deploying your software easier. I've blogged about how to use it, also.

4

With newer subprocess library, you can now use the following code (*nix only solution):

import subprocess
import shlex

filename = 'your_file'
cmd = shlex.split('file --mime-type {0}'.format(filename))
result = subprocess.check_output(cmd)
mime_type = result.split()[-1]
print mime_type
  • Thanks for the answer. BTW, you should not use a str.split() on a cmd line. use shlex.split(cmd) insteed. – emnoor Jun 6 '14 at 12:14
  • Instead of using shlex.split, why not just run subprocess.check_output(['file', '--mime-type', filename])? – Flimm Aug 3 '16 at 7:05
4

In the case of images, you can use the imghdr module.

>>> import imghdr
>>> imghdr.what('8e5d7e9d873e2a9db0e31f9dfc11cf47')  # You can pass a file name or a file object as first param. See doc for optional 2nd param.
'png'

Python 2 imghdr doc
Python 3 imghdr doc

1

Only works for Linux but Using the "sh" python module you can simply call any shell command

https://pypi.org/project/sh/

pip install sh

import sh

sh.file("/root/file")

Output: /root/file: ASCII text

0

also you can use this code (pure python by 3 byte of header file):

full_path = os.path.join(MEDIA_ROOT, pathfile)

try:
    image_data = open(full_path, "rb").read()
except IOError:
    return "Incorrect Request :( !!!"

header_byte = image_data[0:3].encode("hex").lower()

if header_byte == '474946':
    return "image/gif"
elif header_byte == '89504e':
    return "image/png"
elif header_byte == 'ffd8ff':
    return "image/jpeg"
else:
    return "binary file"

without any package install [and update version]

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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