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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