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Question

What is the best way to set a JSONField to have the default value of a new list in django?

Context

There is a model where one of the fields is a list of items. In the case where there are no items set, the model should have an empty list.

Current solution

from django.models import Model

class MyModel(Model):
    the_list_field = JSONField(default=[])

Is this the best way to do it? Should it be switched to use list instead?

Thanks!

  • Is there any reason why you're not using Django's built-in jsonfield? – Rod Xavier Feb 15 '17 at 2:55
  • @RodXavier MySQL < 5.7 and other legacy code uses them, so for consistency. – Juan Carlos Coto Feb 15 '17 at 3:47
41
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According to the Django documentation for JSONField you should indeed use default=list because using default=[] would create a mutable object that is shared between all instances of your field and could lead to some objects not having an empty list as a default.

Please note that this does not only apply for django.contrib.postgres.fields.JSONField but for all other kinds of objects and functions in Python in general.

Quote from the docs:

If you give the field a default, ensure it’s a callable such as list (for an empty default) or a callable that returns a list (such as a function). Incorrectly using default=[] creates a mutable default that is shared between all instances of

| improve this answer | |
8
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Use JSONField(default=list) over JSONField(default=[])

Use JSONField(default=dict) over JSONField(default={})

list and dict are callable while "[]" is not. (You can't do []())


If you want to instantiate with some data you can do the following:

def jsonfield_default_value():  # This is a callable
    return [0, 0]  # Any valid Python object that can be read as JSON, e.g. `return ["A", "B"]` or `return {"price": 0}`

class MyModel(Model):
    the_list_field = JSONField(default=jsonfield_default_value)
| improve this answer | |

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