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I have used the following code in my models.py file:

Create hyperlink to foreignkey

class ModelAdminWithForeignKeyLinksMetaclass(MediaDefiningClass): 

    def __getattr__(cls, name):

        def foreign_key_link(instance, field):
            target = getattr(instance, field)
            return u'<a href="../../%s/%s/%s">%s</a>' % (
                target._meta.app_label, target._meta.module_name, target.id, unicode(target))

        if name[:8] == 'link_to_':
            method = partial(foreign_key_link, field=name[8:])
            method.__name__ = name[8:]
            method.allow_tags = True
            setattr(cls, name, method)
            return getattr(cls, name)
        raise AttributeError

In admin.py list_display I've added link_to to the beginning of each field I want a foreignkey link on. This works really well however when I turn debug off I get an attribute error. Any suggestions?

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"When I turn debug off": Are you literally talking about simply changing DEBUG=True to DEBUG=False generates the error, or is it working in your dev environment but failing on your production server? –  Chris Pratt Jun 24 '11 at 21:13
    
Even on my dev server when I set debug=False it generates this error. –  Crazyconoli Jun 24 '11 at 21:39
1  
Interesting. The value of DEBUG literally has nothing to do with anything you have going on there. Can you post a traceback? –  Chris Pratt Jun 24 '11 at 21:43
    
This might seem like a strange question but how do I get my traceback with debug set to false? –  Crazyconoli Jun 24 '11 at 21:54
    
OK so I've been emailed the traceback. It is at pastebin.com/S4qPm5md. –  Crazyconoli Jun 25 '11 at 8:18

2 Answers 2

up vote 10 down vote accepted

I stumbled on exactly the same problem, luckily, I've fixed it.

The original solution (the one you used) comes from this question, my solution is based on it:

class ForeignKeyLinksMetaclass(MediaDefiningClass):

    def __new__(cls, name, bases, attrs):

        new_class = super(
            ForeignKeyLinksMetaclass, cls).__new__(cls, name, bases, attrs)

        def foreign_key_link(instance, field):
            target = getattr(instance, field)
            return u'<a href="../../%s/%s/%d/">%s</a>' % (
                target._meta.app_label, target._meta.module_name,
                target.id, unicode(target)
            )

        for name in new_class.list_display:
            if name[:8] == 'link_to_':
                method = partial(foreign_key_link, field=name[8:])
                method.__name__ = name[8:]
                method.allow_tags = True
                setattr(new_class, name, method)

        return new_class

Well, the only thing you need is to replace the original ModelAdminWithForeignKeyLinksMetaclass with the one above.

However, it's not the end. The most interesting part is why the original solution causes problems. The answer to this question lies here (line 31) and here (line 244).

When DEBUG is on Django tries to validate all registered ModelAdmins (first link). There cls is a class SomeAdmin (i.e. an instance of its metaclass). When hasattr is called, python tries to find an attribute field in class SomeAdmin or in one of its super classes. Since it is impossible, __getattr__ of its class (i.e. SomeAdmin's metaclass) is called, where a new method is added to class SomeAdmin. Hence, when it comes to rendering the interface, SomeAdmin is already patched and Django is able to find the required field (second link).

When DEBUG is False, Django skips the validation. When the interface is rendered Django tries to find a field (again, second link), but this time SomeAdmin is not patched, moreover *model_admin* is not class SomeAdmin, it is its instance. Thus, trying to find an attribute name in *model_admin*, python is unable to do this, neither it is able to find it in its class (SomeAdmin) as well as in any of its super classes, so an exception is raised.

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if like me, you add functions to your list_display, you should do this change: if type(name) == type('') and name[:8] == 'link_to_': –  fceruti Oct 6 '11 at 22:19
1  
@fceruti yeah, you're right, but I think a better way to do this is: if isinstance(name, basestring) and name[:8] == 'link_to_': –  stepank Nov 4 '11 at 18:06
1  
Thanks! I had the same problem with a similar list_display hack ( djangosnippets.org/snippets/2887 ), and this would've taken me ages to figure out. –  Jack Cushman Jul 6 '13 at 1:41
    
This answer could probably be improved by using a reverse URL instead of a hard-coded relative path. –  Blaise Mar 13 '14 at 14:28
    
To me this solution produces an error ("metaclass conflict: the metaclass of a derived class must be a (non-strict) subclass of the metaclasses of all its bases") for some reason. However, there seems to be a similar version that works for me, in 'django-model-admin-helper' (see code in github.com/Arpaso/django-model-admin-helper/blob/master/src/…) –  o_c Oct 30 '14 at 17:49

I uses stepank's implementation, but had to alter it slightly to fit my use-case.

I basically just added support for 'ModelAdmin.readonly_fields' and 'ModelAdmin.fields' to support the 'link_to_'-syntax.

A slight change to the link creation also allowed me to support a link to a different APP.Model, in my case the built-in django.contrib.auth.models.user.

Thanks for the nice work @stepank and @Itai Tavor.

I hope this is useful for somebody else.


DEFAULT_LOGGER_NAME is defined in my settings.py and I use it for most of my logging. If you don't have it defined, you will get errors when using the following code. You can either define your own DEFAULT_LOGGER_NAME in settings.py (it is just a simple string) or you just remove all references to the logger in the code below.

'''
Created on Feb 23, 2012

@author: daniel

Purpose: Provides a 'link_to_<foreignKeyModel>' function for ModelAdmin 
         implementations. This is based on the following work:

original: http://stackoverflow.com/a/3157065/193165
fixed original: http://stackoverflow.com/a/7192721/193165
'''
from functools      import partial
from django.forms   import MediaDefiningClass

import logging
from public.settings import DEFAULT_LOGGER_NAME
logger = logging.getLogger(DEFAULT_LOGGER_NAME)

class ForeignKeyLinksMetaclass(MediaDefiningClass):

    def __new__(cls, name, bases, attrs):

        new_class = super(
            ForeignKeyLinksMetaclass, cls).__new__(cls, name, bases, attrs)

        def foreign_key_link(instance, field):
            target = getattr(instance, field)
            ret_url = u'<a href="../../%s/%s/%d/">%s</a>' % (
                      target._meta.app_label, target._meta.module_name,
                      target.id, unicode(target)
                      ) 
            #I don't know how to dynamically determine in what APP we currently
            #are, so this is a bit of a hack to enable links to the 
            #django.contrib.auth.models.user
            if "auth" in target._meta.app_label and "user" in target._meta.module_name:
                ret_url = u'<a href="/admin/%s/%s/%d/">%s</a>' % (
                          target._meta.app_label, target._meta.module_name,
                          target.id, unicode(target)
                          )                    
            return ret_url

        def _add_method(name):
            if name is None: return
            if isinstance(name, basestring) and name[:8] == 'link_to_':
                try:
                    method = partial(foreign_key_link, field=name[8:])
                    method.__name__ = name[8:]
                    method.allow_tags = True
                    #in my app the "user" field always points to django.contrib.auth.models.user
                    #and I want my users to see that when they edit "client" data
                    #"Client" is another model, that has a 1:1 relationship with 
                    #django.contrib.auth.models.user
                    if "user" in name[8:]: 
                        method.short_description = "Auth User"
                    setattr(new_class, name, method)
                except Exception, ex:
                    logger.debug("_add_method(%s) failed: %s" % (name, ex))
        #make this work for InlineModelAdmin classes as well, who do not have a
        #.list_display attribute
        if hasattr(new_class, "list_display") and not new_class.list_display is None:
            for name in new_class.list_display:
                _add_method(name)
        #enable the 'link_to_<foreignKeyModel>' syntax for the ModelAdmin.readonly_fields
        if not new_class.readonly_fields is None:
            for name in new_class.readonly_fields:
                _add_method(name)
        #enable the 'link_to_<foreignKeyModel>' syntax for the ModelAdmin.fields
        if not new_class.fields is None:
            for name in new_class.fields:
                _add_method(name)

        return new_class
share|improve this answer
    
I don't test in your implementation, just in the @stepank but probably you should add: if not target: return None Because without it will break when you have ForeignKey thats points to Null, like when you use blank=True and Null=True. –  Rafael Capucho Jul 4 '13 at 2:01

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