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How can I get dimensions of image without actually downloading it? Is it even possible? I have a list of urls of images and I want to assign width and size to it.

I know there is a way of doing it locally (How to check dimensions of all images in a directory using python?), but I don't want to download all the images.

Edit:

Following ed. suggestions, I edited the code. I came up with this code. Not sure weather it downloads whole file or just a part (as I wanted).

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1  
it's usually some header in the beginning of the file, so you can download only few bytes. e.g. 6 bytes will be enough to get dimensions of jpeg: fastgraph.com/help/jpeg_header_format.html –  max taldykin Sep 18 '11 at 8:10

4 Answers 4

This is based on ed's answer above, mixed with other things I found on the web. I ran into the same issue as grotos with .read(24). Download getimageinfo.py from here and download ReSeekFile.py from here.

import urllib2
imgdata = urllib2.urlopen(href)
image_type,width,height = getimageinfo.getImageInfo(imgdata)

Modify getimageinfo as such...

import ReseekFile

def getImageInfo(datastream):
    datastream = ReseekFile.ReseekFile(datastream)
    data = str(datastream.read(30))

#Skipping to jpeg

# handle JPEGs
elif (size >= 2) and data.startswith('\377\330'):
    content_type = 'image/jpeg'
    datastream.seek(0)
    datastream.read(2)
    b = datastream.read(1)
    try:
        while (b and ord(b) != 0xDA):
            while (ord(b) != 0xFF): b = datastream.read(1)
            while (ord(b) == 0xFF): b = datastream.read(1)
            if (ord(b) >= 0xC0 and ord(b) <= 0xC3):
                datastream.read(3)
                h, w = struct.unpack(">HH", datastream.read(4))
                break
            else:
                datastream.read(int(struct.unpack(">H", datastream.read(2))[0])-2)
            b = datastream.read(1)
        width = int(w)
        height = int(h)
    except struct.error:
        pass
    except ValueError:
        pass
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Nice work. I also ran into the same issue with the otherwise helpful response from ed –  tohster May 5 '13 at 2:37

If you're willing to download the first 24 bytes of each file, then this function (mentioned in johnteslade's answer to the question you mention) will work out the dimensions.

That's probably the least downloading necessary to do the job you want.

import urllib2
start = urllib2.urlopen(image_url).read(24)

Edit (1):

In the case of jpeg files it seems to need more bytes. You could edit the function so that instead of reading a StringIO.StringIO(data) it instead reads the file handle from urlopen. Then it will read exactly as much of the image as it needs to find out the width and height.

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Using this solution, especially .read(24), breaks that script. All works when I use read(). –  grotos Sep 18 '11 at 8:56
    
It's basically the same as an example in the python docs (docs.python.org/library/urllib2.html). What error do you get using (24)? Just using read() (I guess you know) will download the whole file... –  ed. Sep 18 '11 at 9:02
    
If I run with read(24) ther is some error in getImageInfo function: UnboundLocalError: local variable 'w' referenced before assignment –  grotos Sep 18 '11 at 9:05
    
Hmm. Try running it with read(50) and see if it works. I think the error must be coming from the jpeg part of the function, so maybe it needs a few more bytes. –  ed. Sep 18 '11 at 9:07
    
It is the same. I think it only works with read(X), where X is so large that it covers the whole file. –  grotos Sep 18 '11 at 9:10

I found the solution on this site to work well:

import urllib
import ImageFile

def getsizes(uri):
    # get file size *and* image size (None if not known)
    file = urllib.urlopen(uri)
    size = file.headers.get("content-length")
    if size: size = int(size)
    p = ImageFile.Parser()
    while 1:
        data = file.read(1024)
        if not data:
            break
        p.feed(data)
        if p.image:
            return size, p.image.size
            break
    file.close()
    return size, None

print getsizes("http://www.pythonware.com/images/small-yoyo.gif")
# (10965, (179, 188))
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It's not possible to do it directly, but there's a workaround for that. If the files are present on the server, then implement the API endpoint that takes image name as an argument and returns the size.

But if the files are on the different server, you've got no other way but to download the files.

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