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Currently I have a lot of python objects in my code similar to the following:

class MyClass():
  def __init__(self, name, friends):
      self.myName = name
      self.myFriends = [str(x) for x in friends]

Now I want to turn this into a Django model, where self.myName is a string field, and self.myFriends is a list of strings.

from django.db import models

class myDjangoModelClass():
    myName = models.CharField(max_length=64)
    myFriends = ??? # what goes here?

Since the list is such a common data structure in python, I sort of expected there to be a Django model field for it. I know I can use a ManyToMany or OneToMany relationship, but I was hoping to avoid that extra indirection in the code.

Edit:

I added this related question, which people may find useful.

share|improve this question
    
@drozzy: Well I probably could have used a different phrase, but basically what I meant, was I want to pass in a list of strings and get back a list of strings. I don't want to create a bunch of Friend objects, and call inst.myFriends.add(friendObj) for each of them. Not that it would be all that hard, but... –  grieve Jul 10 '09 at 20:08

8 Answers 8

up vote 18 down vote accepted

Would not this relationship be better expressed as a one-to-many foreign key relationship to a Friends table? I understand that myFriends are just strings but I would think that a better design would be to create a Friend model and have MyClass contain a foreign key realtionship to the resulting table.

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1  
This is probably what I will end up doing, but I was really hoping the underlying structure for this would have been built in. I guess I am to o lazy. –  grieve Jul 10 '09 at 16:11

"Premature optimization is the root of all evil."

With that firmly in mind, let's do this! Once your apps hit a certain point, denormalizing data is very common. Done correctly, it can save numerous expensive database lookups at the cost of a little more housekeeping.

To return a list of friend names we'll need to create a custom Django Field class that will return a list when accessed.

David Cramer posted an guide to creating a SeperatedValueField on his blog. Here is the code:

from django.db import models

class SeparatedValuesField(models.TextField):
    __metaclass__ = models.SubfieldBase

    def __init__(self, *args, **kwargs):
        self.token = kwargs.pop('token', ',')
        super(SeparatedValuesField, self).__init__(*args, **kwargs)

    def to_python(self, value):
        if not value: return
        if isinstance(value, list):
            return value
        return value.split(self.token)

    def get_db_prep_value(self, value):
        if not value: return
        assert(isinstance(value, list) or isinstance(value, tuple))
        return self.token.join([unicode(s) for s in value])

    def value_to_string(self, obj):
        value = self._get_val_from_obj(obj)
        return self.get_db_prep_value(value)

The logic of this code deals with serializing and deserializing values from the database to Python and visa-versa. Now can import and use our custom field in the model class:

from django.db import models
from custom.fields import SeparatedValuesField 

class Person(models.Model):
    name = models.CharField(max_length=64)
    friends = SeparatedValuesField()
share|improve this answer
4  
+1 for a great answer, but we are already doing something like this. It is really squishing all the values into one string then splitting them out. I guess I was hoping for something more like a ListofStringsField, which actually builds the separate table and makes the foreign keys automatically. I am not sure if that is possible in Django. If it is, and I find an answer, I will post it on stackoverflow. –  grieve Jul 13 '09 at 20:35
2  
If that's the case then you're looking for initcrash's django-denorm. You'll find it on github: github.com/initcrash/django-denorm/tree/master –  jb. Jul 15 '09 at 1:07
1  
+1. But possible issues with commas in strings. What about serializing and deserializing from json? –  maggot092 Jun 30 at 15:15

A simple way to store a list in Django is to just convert it into a JSON string, and then save that as Text in the model. You can then retrieve the list by converting the (JSON) string back into a python list. Here's how:

The "list" would be stored in your Django model like so:

class MyModel(models.Model):
    myList = models.TextField(null=True) # JSON-serialized (text) version of your list

In your view/controller code:

Storing the list in the database:

import simplejson as json # this would be just 'import json' in Python 2.7 and later
...
...

myModel = MyModel()
listIWantToStore = [1,2,3,4,5,'hello']
myModel.myList = json.dumps(listIWantToStore)
myModel.save()

Retrieving the list from the database:

jsonDec = json.decoder.JSONDecoder()
myPythonList = jsonDec.decode(myModel.myList)

Conceptually, here's what's going on:

>>> myList = [1,2,3,4,5,'hello']
>>> import simplejson as json
>>> myJsonList = json.dumps(myList)
>>> myJsonList
'[1, 2, 3, 4, 5, "hello"]'
>>> myJsonList.__class__
<type 'str'>
>>> jsonDec = json.decoder.JSONDecoder()
>>> myPythonList = jsonDec.decode(myJsonList)
>>> myPythonList
[1, 2, 3, 4, 5, u'hello']
>>> myPythonList.__class__
<type 'list'>
share|improve this answer
    
Unfortunately this doesn't help you manage the list using django admin –  GreenAsJade Mar 23 at 6:25

As this is an old question, and Django techniques must have changed significantly since, this answer reflects Django version 1.4, and is most likely applicable for v 1.5.

Django by default uses relational databases; you should make use of 'em. Map friendships to database relations (foreign key constraints) with the use of ManyToManyField. Doing so allows you to use RelatedManagers for friendlists, which use smart querysets. You can use all available methods such as filter or values_list.

Using ManyToManyField relations and properties:

class MyDjangoClass(models.Model):
    name = models.CharField(...)
    friends = models.ManyToManyField("self")

    @property
    def friendlist(self):
        # Watch for large querysets: it loads everything in memory
        return list(self.friends.all())

You can access a user's friend list this way:

joseph = MyDjangoClass.objects.get(name="Joseph")
friends_of_joseph = joseph.friendlist

Note however that these relations are symmetrical: if Joseph is a friend of Bob, then Bob is a friend of Joseph.

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class Course(models.Model):
   name = models.CharField(max_length=256)
   students = models.ManyToManyField(Student)

class Student(models.Model):
   first_name = models.CharField(max_length=256)
   student_number = models.CharField(max_length=128)
   # other fields, etc...

   friends = models.ManyToManyField('self')
share|improve this answer

Remember that this eventually has to end up in a relational database. So using relations really is the common way to solve this problem. If you absolutely insist on storing a list in the object itself, you could make it for example comma-separated, and store it in a string, and then provide accessor functions that split the string into a list. With that, you will be limited to a maximum number of strings, and you will lose efficient queries.

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I am fine with the database storing it as a relation, I was hoping the Django models abstracted that portion out for me already. From the app side I am always going to want to treat it as a list of strings. –  grieve Jul 10 '09 at 15:39

You can store virtually any object using a Django Pickle Field, ala this snippet:

http://www.djangosnippets.org/snippets/513/

share|improve this answer
    
Which is database dependent. –  drozzy Jul 10 '09 at 19:23
1  
No, it isn't. Read the description of the snippet. –  Harold Jul 11 '09 at 3:40
    
The new pypi.python.org/pypi/django-picklefield does that same task (also db independent) –  Massagran Oct 23 '12 at 21:42

Using one-to-many relation (FK from Friend to parent class) will make your app more scalable (as you can trivially extend the Friend object with additional attributes beyond the simple name). And thus this is the best way

share|improve this answer
1  
That's not scalability, that's extensibility. Often one is at the cost of the other. In this case, if you know that you'll always need a list of strings, you can avoid an expensive join, thus making your code more scalable (i.e. more performant from the denormalization). –  Dustin Rasener Mar 29 '12 at 18:24
    
The above with a couple of caveats: 1) you know you never want to query against that data and 2) storage is still cheaper than processing power and memory (who knows, maybe this changes with quantum computing) –  Dustin Rasener Mar 29 '12 at 18:29

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