Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'd like to save my files using the primary key of the entry.

Here is my code:

def get_nzb_filename(instance, filename):
    if not instance.pk:
        instance.save() # Does not work.
    name_slug = re.sub('[^a-zA-Z0-9]', '-', instance.name).strip('-').lower()
    name_slug = re.sub('[-]+', '-', name_slug)
    return u'files/%s_%s.nzb' % (instance.pk, name_slug)

class File(models.Model):
    nzb = models.FileField(upload_to=get_nzb_filename)
    name = models.CharField(max_length=256)

I know the first time an object is saved the primary key isn't available, so I'm willing to take the extra hit to save the object just to get the primary key, and then continue on.

The above code doesn't work. It throws the following error:

maximum recursion depth exceeded while calling a Python object

I'm assuming this is an infinite loop. Calling the save method would call the get_nzb_filename method, which would again call the save method, and so on.

I'm using the latest version of the Django trunk.

How can I get the primary key so I can use it to save my uploaded files?


Update @muhuk:

I like your solution. Can you help me implement it? I've updated my code to the following and the error is 'File' object has no attribute 'create'. Perhaps I'm using what you've written out of context?

def create_with_pk(self):
    instance = self.create()
    instance.save()
    return instance

def get_nzb_filename(instance, filename):
    if not instance.pk:
        create_with_pk(instance)
    name_slug = re.sub('[^a-zA-Z0-9]', '-', instance.name).strip('-').lower()
    name_slug = re.sub('[-]+', '-', name_slug)
    return u'files/%s_%s.nzb' % (instance.pk, name_slug)

class File(models.Model):
    nzb = models.FileField(upload_to=get_nzb_filename, blank=True, null=True)
    name = models.CharField(max_length=256)

Instead of enforcing the required field in my model I'll do it in my Form class. No problem.

share|improve this question

4 Answers 4

up vote 2 down vote accepted

It seems you'll need to pre-generate your File models with empty file fields first. Then pick up one and save it with the given file object.

You can have a custom manager method like this;

def create_with_pk(self):
    instance = self.create()
    instance.save()     # probably this line is unneeded
    return instance

But this will be troublesome if either of your fields is required. Because you are initially creating a null object, you can't enforce required fields on the model level.

EDIT

create_with_pk is supposed to be a custom manager method, in your code it is just a regular method. Hence self is meaningless. It is all properly documented with examples.

share|improve this answer
    
I've updated my question. Can you please take a look? –  Ty. Mar 16 '09 at 21:17
1  
No need to instance.save() after instance = self.create(). –  claymation May 1 '13 at 18:36

Context

Had the same issue. Solved it attributing an id to the current object by saving the object first.

Method

  1. create a custom upload_to function
  2. detect if object has pk
  3. if not, save instance first, retrieve the pk and assign it to the object
  4. generate your path with that

Sample working code :

class Image(models.Model):
    def upload_path(self, filename):
        if not self.pk:
            i = Image.objects.create()
            i.save()
            self.id = self.pk = i.id
        return "my/path/%s" % str(self.id)
    file = models.ImageField(upload_to=upload_path)
share|improve this answer
1  
No need to i.save() after i = Image.objects.create(). –  claymation May 1 '13 at 18:32
    
This doesn't work, as the new object that is created stays empty, and the object that you are saving is saved as a different object. –  Giles May 15 '13 at 18:39

You can do this by setting upload_to to a temporary location and by creating a custom save method.

The save method should call super first, to generate the primary key (this will save the file to the temporary location). Then you can rename the file using the primary key and move it to it's proper location. Call super one more time to save the changes and you are good to go! This worked well for me when I came across this exact issue.

For example:

class File( models.Model ):
    nzb = models.FileField( upload_to='temp' )

    def save( self, *args, **kwargs ):
        # Call save first, to create a primary key
        super( File, self ).save( *args, **kwargs )

        nzb = self.nzb
        if nzb:
            # Create new filename, using primary key and file extension
            oldfile = self.nzb.name
            dot = oldfile.rfind( '.' )
            newfile = str( self.pk ) + oldfile[dot:]

            # Create new file and remove old one
            if newfile != oldfile:
                self.nzb.storage.delete( newfile )
                self.nzb.storage.save( newfile, nzb )
                self.nzb.name = newfile 
                self.nzb.close()
                self.nzb.storage.delete( oldfile )

        # Save again to keep changes
        super( File, self ).save( *args, **kwargs )
share|improve this answer

Ty, is there a reason you rolled your own slugify filter?

Django ships with a built-in slugify filter, you can use it like so:

from django.template.defaultfilters import slugify

slug = slugify(some_string)

Not sure if you were aware it was available to use...

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.