49

I want to generate different/unique id per request in django from models field. I did this but I keep getting the same id.

class Paid(models.Model):
     user=models.ForeignKey(User)
     eyw_transactionref=models.CharField(max_length=100, null=True, blank=True, unique=True, default=uuid.uuid4()) #want to generate new unique id from this field

     def __unicode__(self):
        return self.user
53

UPDATE: If you are using Django 1.8 or superior, @madzohan has the right answer below.


Do it like this:

#note the uuid without parenthesis
eyw_transactionref=models.CharField(max_length=100, blank=True, unique=True, default=uuid.uuid4)

The reason why is because with the parenthesis you evaluate the function when the model is imported and this will yield an uuid which will be used for every instance created.

Without parenthesis you passed just the function needed to be called to give the default value to the field and it will be called each time the model is imported.

You can also take this approach:

class Paid(models.Model):
     user=models.ForeignKey(User)
     eyw_transactionref=models.CharField(max_length=100, null=True, blank=True, unique=True)

     def __init__(self):
         super(Paid, self).__init__()
         self.eyw_transactionref = str(uuid.uuid4())

     def __unicode__(self):
        return self.user

Hope this helps!

| improve this answer | |
  • I did that..I'm now getting NULL in my db, it means it's not saving! Should I post my views? – picomon Jun 4 '13 at 18:59
  • 1
    If you have a default value then you won't need null=True in the field definition. I'll remove from the answer. Try without that. – Paulo Bu Jun 4 '13 at 19:00
  • Now getting this error IntegrityError at /pay/ (1048, "Column 'eyw_transactionref' cannot be null") I removed blank=True also. – picomon Jun 4 '13 at 19:06
  • That's kind of weird. It should work, I'll put an override to the __init__ method as an alternative. – Paulo Bu Jun 4 '13 at 19:14
  • Also try this with the default value, maybe it works: default=lambda:str(uuid.uuid4()). – Paulo Bu Jun 4 '13 at 19:25
116

since version 1.8 Django has UUIDField https://docs.djangoproject.com/en/1.8/ref/models/fields/#django.db.models.UUIDField

import uuid
from django.db import models

class MyUUIDModel(models.Model):
    id = models.UUIDField(primary_key=True, default=uuid.uuid4, editable=False)
    # other fields
| improve this answer | |
17

If you need or want to use a custom ID-generating function rather than Django's UUID field, you can use a while loop in the save() method. For sufficiently large unique IDs, this will almost never result in more than a single db call to verify uniqueness:

urlhash = models.CharField(max_length=6, null=True, blank=True, unique=True)

# Sample of an ID generator - could be any string/number generator
# For a 6-char field, this one yields 2.1 billion unique IDs
def id_generator(size=6, chars=string.ascii_uppercase + string.digits):
    return ''.join(random.choice(chars) for _ in range(size))

def save(self):
    if not self.urlhash:
        # Generate ID once, then check the db. If exists, keep trying.
        self.urlhash = id_generator()
        while MyModel.objects.filter(urlhash=self.urlhash).exists():
            self.urlhash = id_generator()
    super(MyModel, self).save()
| improve this answer | |
1

This answer from Google Code worked for me:

https://groups.google.com/d/msg/south-users/dTyajWop-ZM/-AeuLaGKtyEJ

add:

from uuid import UUID

to your generated migration file.

| improve this answer | |

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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