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please excuse me for my ugly english ;-)

Imagine this very simple model :

class Photo(models.Model):
    image = models.ImageField('Label', upload_to='path/')

I would like to create a Photo from an image URL (i.e., not by hand in the django admin site).

I think that I need to do something like this :

from myapp.models import Photo
import urllib

img_url = 'http://www.site.com/image.jpg'
img = urllib.urlopen(img_url)
# Here I need to retrieve the image (as the same way that if I put it in an input from admin site)
photo = Photo.objects.create(image=image)

I hope that I've well explained the problem, if not tell me.

Thank you :)

Edit :

This may work but I don't know how to convert content to a django File :

from urlparse import urlparse
import urllib2
from django.core.files import File

photo = Photo()
img_url = 'http://i.ytimg.com/vi/GPpN5YUNDeI/default.jpg'
name = urlparse(img_url).path.split('/')[-1]
content = urllib2.urlopen(img_url).read()

# problem: content must be an instance of File
photo.image.save(name, content, save=True)
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5 Answers 5

I just created http://www.djangosnippets.org/snippets/1890/ for this same problem. The code is similar to pithyless' answer above except it uses urllib2.urlopen because urllib.urlretrieve doesn't perform any error handling by default so it's easy to get the contents of a 404/500 page instead of what you needed. You can create callback function & custom URLOpener subclass but I found it easier just to create my own temp file like this:

from django.core.files import File
from django.core.files.temp import NamedTemporaryFile

img_temp = NamedTemporaryFile(delete=True)
img_temp.write(urllib2.urlopen(url).read())
img_temp.flush()

im.file.save(img_filename, File(img_temp))
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this is more pro –  panchicore Oct 3 '13 at 16:31
1  
what is the last line doing? what is the im object coming from? –  priestc Jan 3 at 1:27
1  
@priestc: im was a bit terse - in that example, im was the model instance and file was the unimaginative name of a FileField/ImageField on that instance. The actual API docs here are what matter – that technique should work anywhere you have a Django File object bound to an object: docs.djangoproject.com/en/1.5/ref/files/file/… –  Chris Adams Jan 3 at 15:23
3  
A temporary file is unnecessary. Using requests instead of urllib2 you can do: image_content = ContentFile(requests.get(url_image).content) and then obj.my_image.save("foo.jpg", image_content). –  Stan Apr 16 at 2:48
    
Stan: requests does simplify that but IIRC that one-liner would be a problem unless you called raise_for_status() first to avoid confusion with errors or incomplete responses –  Chris Adams Apr 21 at 20:55

from myapp.models import Photo
import urllib2
from urlparse import urlparse
from django.core.files import File

img_url = 'http://www.site.com/image.jpg'

photo = Photo()    # set any other fields, but don't commit to DB (ie. don't save())
name = urlparse(img_url).path.split('/')[-1]

# See also: http://docs.djangoproject.com/en/dev/ref/files/file/
photo.image.save(name, File(urllib2.urlopen(self.url).read(), save=True)

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Hi, thank you for helping me ;). The problem is (I quote the doc) : "Note that the content argument must be an instance of File or of a subclass of File." So do you have any solution to create File instance with your content ? –  user166648 Sep 8 '09 at 14:29
    
Check the new edit; this should now be a working example (although I have not tested it) –  pithyless Sep 9 '09 at 9:49
    
What about my model, where i have other fields aswell. Like url, etc, etc. If id do model.image.save(...). how do I save the other fields? They cant be null EDIT: woudl it be something like this? >>> car.photo.save('myphoto.jpg', contents, save=False) >>> car.save() –  Harry Aug 27 '10 at 9:48

ImageField is just a string, a path relative to your MEDIA_ROOT setting. Just save the file (you might want to use PIL to check it is an image) and populate the field with its filename.

So it differs from your code in that you need to save the output of your urllib.urlopen to file (inside your media location), work out the path, save that to your model.

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this is the right and working way

class Product(models.Model):
    upload_path = 'media/product'
    image = models.ImageField(upload_to=upload_path, null=True, blank=True)
    image_url = models.URLField(null=True, blank=True)

    def save(self, *args, **kwargs):
        if self.image_url:
            import urllib, os
            from urlparse import urlparse
            filename = urlparse(self.image_url).path.split('/')[-1]
            urllib.urlretrieve(self.image_url, os.path.join(file_save_dir, filename))
            self.image = os.path.join(upload_path, filename)
            self.image_url = ''
            super(Product, self).save()
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5  
That can't be the right way, you circumvent the whole file storage mechanism of the FielField and pay no respect to the storage api. –  Andre Bossard Mar 21 '13 at 13:39

I do it this way on Python 3, which should work with simple adaptations on Python 2. This is based on my knowledge that the files I’m retrieving are small. If yours aren’t, I’d probably recommend writing the response out to a file instead of buffering in memory.

BytesIO is needed because Django calls seek() on the file object, and urlopen responses don’t support seeking. You could pass the bytes object returned by read() to Django's ContentFile instead.

from io import BytesIO
from urllib.request import urlopen

from django.core.files import File


# url, filename, model_instance assumed to be provided
response = urlopen(url)
io = BytesIO(response.read())
model_instance.image_field.save(filename, File(io))
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