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Ok, I've tried about near everything and I cannot get this to work.

  • I have a Django model with an ImageField on it
  • I have code that downloads an image via HTTP (tested and works)
  • The image is saved directly into the 'upload_to' folder (the upload_to being the one that is set on the ImageField)
  • All I need to do is associate the already existing image file path with the ImageField

I've written this code about 6 different ways.

The problem I'm running into is all of the code that I'm writing results in the following behavior: (1) Django will make a 2nd file, (2) rename the new file, adding an _ to the end of the file name, then (3) not transfer any of the data over leaving it basically an empty re-named file. What's left in the 'upload_to' path is 2 files, one that is the actual image, and one that is the name of the image,but is empty, and of course the ImageField path is set to the empty file that Django try to create.

In case that was unclear, I'll try to illustrate:

## Image generation code runs.... 
/Upload
     generated_image.jpg     4kb

## Attempt to set the ImageField path...
/Upload
     generated_image.jpg     4kb
     generated_image_.jpg    0kb

ImageField.Path = /Upload/generated_image_.jpg

How can I do this without having Django try to re-store the file? What I'd really like is something to this effect...

model.ImageField.path = generated_image_path

...but of course that doesn't work.

And yes I've gone through the other questions here like this one as well as the django doc on File

UPDATE After further testing, it only does this behavior when running under Apache on Windows Server. While running under the 'runserver' on XP it does not execute this behavior.

I am stumped.

Here is the code which runs successfully on XP...

f = open(thumb_path, 'r')
model.thumbnail = File(f)
model.save()
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Another great Django question. I have made several attempts to solve this problem with no luck. The files created in the upload directory are broken and only a fraction in size compared to the originals(stored elsewhere). –  westmark Oct 8 '09 at 20:48

10 Answers 10

up vote 85 down vote accepted

I have some code that fetches an image off the web and stores it in a model. The important bits are:

from django.core.files import File  # you need this somewhere


# The following actually resides in a method of my model

result = urllib.urlretrieve(image_url) # image_url is a URL to an image

# self.photo is the ImageField
self.photo.save(
    os.path.basename(self.url),
    File(open(result[0]))
    )

self.save()

That's a bit confusing because it's pulled out of my model and a bit out of context, but the important parts are:

  • The image pulled from the web is not stored in the upload_to folder, it is instead stored as a tempfile by urllib.urlretrieve() and later discarded.
  • The ImageField.save() method takes a filename (the os.path.basename bit) and a django.core.files.File object.

Let me know if you have questions or need clarification.

Edit: for the sake of clarity, here is the model (minus any required import statements):

class CachedImage(models.Model):
    url = models.CharField(max_length=255, unique=True)
    photo = models.ImageField(upload_to=photo_path, blank=True)

    def cache(self):
        """Store image locally if we have a URL"""

        if self.url and not self.photo:
            result = urllib.urlretrieve(self.url)
            self.photo.save(
                    os.path.basename(self.url),
                    File(open(result[0]))
                    )
            self.save()
share|improve this answer
2  
tvon -- I had tried something to this effect, but perhaps I'll give it another go, in fact, I had code that looked very similar to this. (Even if it's out of context I can see how it works). –  T. Stone Aug 21 '09 at 18:15
1  
I'd suggest using url parse as well to avoid getting url paramatar gunk attached to the image. import urlparse. os.path.basename(urlparse.urlparse(self.url).path). Thanks for the post, was helpful. –  dennmat Sep 22 '11 at 19:04
    
I get django.core.exceptions.SuspiciousOperation: Attempted access to '/images/10.jpg' denied. –  DataGreed Aug 13 '12 at 14:07
2  
@DataGreed you should remove the forward slash '/' from the upload_to definition in the model. This was addressed here. –  tsikov Aug 28 '12 at 15:23

Just a little remark. tvon answer works but, if you're working on windows, you probably want to open() the file with 'rb'. Like this:

class CachedImage(models.Model):
    url = models.CharField(max_length=255, unique=True)
    photo = models.ImageField(upload_to=photo_path, blank=True)

    def cache(self):
        """Store image locally if we have a URL"""

        if self.url and not self.photo:
            result = urllib.urlretrieve(self.url)
            self.photo.save(
                    os.path.basename(self.url),
                    File(open(result[0], 'rb'))
                    )
            self.save()

or you'll get your file truncated at the first 0x1A byte.

share|improve this answer
1  
Thanks, I tend to forget such low-level details windows face us with. –  mike_k Apr 14 '11 at 13:45
    
fml... what happens when that parameter is passed in on a linux machine? –  DMac the Destroyer Dec 10 '11 at 20:46
1  
answered my own question... sorry for the spam. found some documentation for this here. "On Unix, it doesn’t hurt to append a 'b' to the mode, so you can use it platform-independently for all binary files." –  DMac the Destroyer Dec 10 '11 at 20:53
    
You save my day :((( stupid windows cut my file without 'rb' –  Trinh Hoang Nhu Sep 18 at 10:49

Super easy if model hasn't been created yet:

First, copy your image file to the upload path (assumed = 'path/' in following snippet).

Second, use something like:

class Layout(models.Model):
    image = models.ImageField('img', upload_to='path/')

layout = Layout()
layout.image = "path/image.png"
layout.save()

tested and working in django 1.4, it might work also for an existing model.

share|improve this answer
4  
This is the right answer, needs more votes!!! Found this solution here as well. –  Andrew Swihart May 15 '13 at 3:49
    
Hi. I have a question. I'm using django-storages with the Amazon S3 backend. Will this trigger a new upload? –  Salvatore Iovene Sep 20 '13 at 9:05
    
OP asks "without having Django try to re-store the file", and this is the answer to that! –  frnhr Mar 12 at 16:28

What I did was to create my own storage that will just not save the file to the disk:

from django.core.files.storage import FileSystemStorage

class CustomStorage(FileSystemStorage):

    def _open(self, name, mode='rb'):
        return File(open(self.path(name), mode))

    def _save(self, name, content):
        # here, you should implement how the file is to be saved
        # like on other machines or something, and return the name of the file.
        # In our case, we just return the name, and disable any kind of save
        return name

def get_available_name(self, name):
    return name

Then, in my models, for my ImageField, I've used the new custom storage:

from custom_storage import CustomStorage

custom_store = CustomStorage()

class Image(models.Model):
    thumb = models.ImageField(storage=custom_store, upload_to='/some/path')
share|improve this answer

Here is a method that works well and allows you to convert the file to a certain format as well (to avoid "cannot write mode P as JPEG" error):

import urllib2
from django.core.files.base import ContentFile
from StringIO import StringIO

def download_image(name, image, url):
    input_file = StringIO(urllib2.urlopen(url).read())
    output_file = StringIO()
    img = Image.open(input_file)
    if img.mode != "RGB":
        img = img.convert("RGB")
    img.save(output_file, "JPEG")
    image.save(name+".jpg", ContentFile(output_file.getvalue()), save=False)

where image is the django ImageField or your_model_instance.image here is a usage example:

p = ProfilePhoto(user=user)
download_image(str(user.id), p.image, image_url)
p.save()

Hope this helps

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If you want to just "set" the actual filename, without incurring the overhead of loading and re-saving the file (!!), or resorting to using a charfield (!!!), you might want to try something like this --

model_instance.myfile = model_instance.myfile.field.attr_class(model_instance, model_instance.myfile.field, 'my-filename.jpg')

This will light up your model_instance.myfile.url and all the rest of them just as if you'd actually uploaded the file.

Like @t-stone says, what we really want, is to be able to set instance.myfile.path = 'my-filename.jpg', but Django doesn't currently support that.

share|improve this answer
1  
See also proposed change to django –  s29 Mar 10 '11 at 19:07
    
If model_instance is the instance of the model which contains the file.. what does the other "instance" stand for ?? –  h3. May 7 '11 at 18:12
    
aah, typo- thanks h3 –  s29 May 9 '11 at 11:35

Ok, If all you need to do is associate the already existing image file path with the ImageField, then this solution may be helpfull:

from django.core.files.base import ContentFile

with open('/path/to/already/existing/file') as f:
  data = f.read()

# obj.image is the ImageField
obj.image.save('imgfilename.jpg', ContentFile(data))

Well, if be earnest, the already existing image file will not be associated with the ImageField, but the copy of this file will be created in upload_to dir as 'imgfilename.jpg' and will be associated with the ImageField.

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This is might not be the answer you are looking for. but you can use charfield to store the path of the file instead of ImageFile. In that way you can programmatically associate uploaded image to field without recreating the file.

share|improve this answer
    
Yeah, I was tempted to give up on this, and either write to MySQL directly, or just use a CharField(). –  T. Stone Aug 20 '09 at 23:13

You can try:

model.ImageField.path = os.path.join('/Upload', generated_image_path)
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1  
Doesn't work yet: code.djangoproject.com/ticket/15590 –  Kit Sunde Dec 30 '11 at 13:33
class tweet_photos(models.Model):
upload_path='absolute path'
image=models.ImageField(upload_to=upload_path)
image_url = models.URLField(null=True, blank=True)
def save(self, *args, **kwargs):
    if self.image_url:
        import urllib, os
        from urlparse import urlparse
        file_save_dir = self.upload_path
        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(file_save_dir, filename)
        self.image_url = ''
    super(tweet_photos, self).save()
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