126

I'm trying to set up my uploads so that if user joe uploads a file it goes to MEDIA_ROOT/joe as opposed to having everyone's files go to MEDIA_ROOT. The problem is I don't know how to define this in the model. Here is how it currently looks:

class Content(models.Model):
    name = models.CharField(max_length=200)
    user = models.ForeignKey(User)
    file = models.FileField(upload_to='.')

So what I want is instead of '.' as the upload_to, have it be the user's name.

I understand that as of Django 1.0 you can define your own function to handle the upload_to but that function has no idea of who the user will be either so I'm a bit lost.

Thanks for the help!

248

You've probably read the documentation, so here's an easy example to make it make sense:

def content_file_name(instance, filename):
    return '/'.join(['content', instance.user.username, filename])

class Content(models.Model):
    name = models.CharField(max_length=200)
    user = models.ForeignKey(User)
    file = models.FileField(upload_to=content_file_name)

As you can see, you don't even need to use the filename given - you could override that in your upload_to callable too if you liked.

  • Yeah, it probably does belong in docs - it's a reasonably FAQ on IRC – SmileyChris Jul 28 '09 at 9:22
  • 2
    Does this work with ModelForm? I can see that instance has all the attributes of the class model, but there are no values (just a str of the field name). In the template, user is hidden. I may have to submit a question, I have been googling this for hours. – mgag Mar 7 '10 at 16:46
  • 3
    Oddly enough this is failing on me in basically this same setup. instance.user has no attributes on it. – Bob Spryn Aug 19 '12 at 7:26
  • 11
    You might want to use os.path.join instead of '/'.join to make sure it also works on not-Unix systems. They may be rare, but it's good practice ;) – Xudonax Feb 4 '14 at 14:26
  • 2
    Hi, I tried the same code, put them in models.py, but get error Content object has no attribute 'user'. – learnJQueryUI Feb 7 '15 at 15:35
12

This really helped. For a bit more brevity's sake, decided to use lambda in my case:

file = models.FileField(
    upload_to=lambda instance, filename: '/'.join(['mymodel', str(instance.pk), filename]),
)
  • 2
    This didn't work for me in Django 1.7 using migrations. Ended up creating a function instead and the migration took. – aboutaaron Mar 18 '15 at 17:38
  • Even if you can't get lambda to work using the str(instance.pk) is a good idea if you have problems with files overwriting when you don't want them to. – Joseph Dattilo Mar 11 '16 at 19:49
  • 2
    instance does not have a pk before saving. It only works for updates not creations (inserts). – Mohammad Jafar Mashhadi Jul 24 '17 at 16:42
  • lambda doesn't work in migrations operations because it cant be serialized according to the docs – Ebrahim Karimi Aug 13 '18 at 21:30
4

A note on using the 'instance' object's pk value. According to the documentation:

In most cases, this object will not have been saved to the database yet, so if it uses the default AutoField, it might not yet have a value for its primary key field.

Therefore the validity of using pk depends on how your particular model is defined.

  • I have getting None as the value. I can't figure out how to fix it. can you explain in a bit detail. – Aman Deep Mar 3 '18 at 19:40
0

If you have problems with migrations you probably should be using @deconstructible decorator.

import datetime
import os
import unicodedata

from django.core.files.storage import default_storage
from django.utils.deconstruct import deconstructible
from django.utils.encoding import force_text, force_str


@deconstructible
class UploadToPath(object):
    def __init__(self, upload_to):
        self.upload_to = upload_to

    def __call__(self, instance, filename):
        return self.generate_filename(filename)

    def get_directory_name(self):
        return os.path.normpath(force_text(datetime.datetime.now().strftime(force_str(self.upload_to))))

    def get_filename(self, filename):
        filename = default_storage.get_valid_name(os.path.basename(filename))
        filename = force_text(filename)
        filename = unicodedata.normalize('NFKD', filename).encode('ascii', 'ignore').decode('ascii')
        return os.path.normpath(filename)

    def generate_filename(self, filename):
        return os.path.join(self.get_directory_name(), self.get_filename(filename))

Usage:

class MyModel(models.Model):
    file = models.FileField(upload_to=UploadToPath('files/%Y/%m/%d'), max_length=255)

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