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How can I guess an image's mime type, in a cross-platform manner, and without any external libraries?

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Why is not using external libraries a requirement? –  pafcu Feb 1 '13 at 11:26
    
Cause when your case is simple, there is no need to load heavy full-duty libraries if a small snippet can do the job. –  iTayb Feb 1 '13 at 11:35
2  
An external library might do it exactly the same way that you end up doing in your own code. By using a light-weight external library you avoid writing code and potentially introducing bugs. I can even imagine something based on a C library (such as libmagic) being faster and lighter than something written in plain Python. –  pafcu Feb 1 '13 at 12:08

3 Answers 3

up vote 6 down vote accepted

If you know in advance that you only need to handle a limited number of file formats you can use the imghdr.what function.

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Dind't know about imghdr. It's great. –  iTayb Feb 1 '13 at 12:51

I've checked the popular image types' format on wikipedia, and tried to make a signature:

def guess_image_mime_type(f):
    '''
    Function guesses an image mime type.
    Supported filetypes are JPG, BMP, PNG.
    '''
    with open(f, 'rb') as f:
        data = f.read(11)
    if data[:4] == '\xff\xd8\xff\xe0' and data[6:] == 'JFIF\0':
        return 'image/jpeg'
    elif data[1:4] == "PNG":
        return 'image/png'
    elif data[:2] == "BM":
        return 'image/x-ms-bmp'
    else:
        return 'image/unknown-type'
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Instead of looking up the signatures manually you could reimplement part of libmagic by parsing the magic file –  pafcu Feb 1 '13 at 11:36

If you can rely on the file extension you can use the mimetypes.guess_type function. Note that you may get different results on different platforms, but I would still call it cross-platform.

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As you said, it's useful if you can rely on the file extension. I used few web services lately that send you the raw image data without a filename, so it'd be useless in such cases. –  iTayb Feb 1 '13 at 11:21

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