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0

https://docs.djangoproject.com/en/dev/ref/contrib/admin/#django.contrib.admin.ModelAdmin.form remove class Meta and move exclude = ['profile'] to ModelAdmin class SpecializedProfileAdmin(admin.ModelAdmin): exclude = ['profile'] form = CreateSpecializedProfileAdminForm


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If you take a look at the docs, https://docs.djangoproject.com/en/dev/ref/contrib/admin/#django.contrib.admin.ModelAdmin.save_model you can see that obj is the model instance. You would need to change obj.your_image_field instead of the form field.


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Try debug https://github.com/applegrew/django-select2/blob/master/django_select2/static/js/select2.js#L1301 in your browser (for that include not min version) or simply remove this line https://github.com/applegrew/django-select2/blob/master/django_select2/static/js/select2.js#L1328


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Maybe this is because django get's your language from the browser settings. I had same issue in one of my projects, and solve it by using that middleware: # -*- coding: utf-8 -*- class IgnoreAcceptLanguageMiddleware(object): """ Ignore Accept-Language HTTP headers """ def process_request(self, request): if ...


-1

you can get the current language from django.utils.translation.get_language() Check documentation: https://docs.djangoproject.com/en/1.6/topics/i18n/translation/#using-translations-outside-views-and-templates


0

I'm not quite sure what is going on but I have two tools to point your way: IPython embed from IPython import embed ... lots of code ... embed() The shell where you run your dev server will drop into IPython where you embed() so you can explore the stack traceback module import traceback ... lots of code .... traceback.print_stack() This will ...


1

You could override the form for the admin and the read only value on the form similar to this answer. http://stackoverflow.com/a/325038/1637351 Docs about admin's form. As per the docs you'd set it like so: class ActAdmin(admin.ModelAdmin): form = ActForm


1

You can override the get_queryset method and use a filter to allow switching the model list page on the admin from one db to the other: class MultiDBListFilter(admin.SimpleListFilter): title = 'database' parameter_name = 'db' def lookups(self, request, model_admin): return tuple((db, db) for db in ['default']) def value(self): ...


1

Follow this step for corrections; 1-create an empty file with name __init.py__ in management directory. 2-create an empty file with name __init.py__ in commands directory. 3-change your add.py like this: from django.core.management.base import BaseCommand class Command(BaseCommand): def handle(self, *args, **options): print 'Hello world!' ...


1

You're missing the __init__.py file in both management and commands directory. You can create such a file using touch __init__.py in the terminal


1

You don't "get" __init__.py files: you create empty ones. That's the reason your command is not found; you need those in both the management and the commands folders. This is true for anything in Python; you always need an __init__.py to import a module within a subdirectory.


0

# models.py class Tours(models.Model): image = models.ImageField(upload_to="path/") def thumb(self): return u'<img src="%s" />' % (get_thumbnail(c, "50x50", crop='center', quality=95).url) thumbs.short_description = 'Photos' thumbs.allow_tags = True # admin.py class ToursAdmin(admin.ModelAdmin): list_display = ('name', ...


0

this is how I made in my project: #Models.py class Person(models.Model): user = models.OneToOneField(User, primary_key=True) field = models.CharField(max_length=128) class Group(models.Model): name = models.CharField(max_length=128) members = models.ManyToManyField(Person, through='Membership') class Membership(models.Model): person = ...


2

<class 'app.admin.ChildAdmin'>: (admin.E108) The value of 'list_display[1]' refers to 'name', which is not a callable, an attribute of 'ChildAdmin', or an attribute or method on 'app.Child'. The above is more than likely the error message that you are receiving. Abstract classes do not allow you to inherit instance attributes from the abstract ...


0

As mentioned in doc, change Parent model like this: class Parent(models.Model): id = models.CharField(max_length=14, primary_key=True) json_dump = models.TextField(null=False) def name(self): return json.loads(self.json_dump)['name'] class Meta: abstract = True So name attribute will be shown.


1

I personally use Django DB Templates for such purpose like email editing in Admin Area. It's simple and you can save your existing templates to DB templates table.


0

If you use South and initial_data fixtures, data could be loaded not properly. To fix it add if 'test' in sys.argv or 'jenkins' in sys.argv: SOUTH_TESTS_MIGRATE = False at the end of your settings file


0

I wound up here because I had the same question. I think the previous answer misses the issue here -- the use case here is the user checks the "delete" checkbox on an InlineModelAdmin, not that they delete the model linked by the foreign key. I think you can simplify the original problem, consider just that model B has a nullable foreign key to model A: ...


1

Django admin document generator currently (1.7 at time of writing) does not support reStructure text in model docstrings. This was addressed in card #5405 but still hasn't been merged in master as it created some merge conflicts. Last change: I left comments on the ​pull request but it still needs some improvement including a rebase to merge cleanly. It ...


0

The problem you are encountering arises from the difficulty of storing relations between objects that are stored in two distinct databases. In your example, you stated that you have created one database to store all Django contributed objects, which includes User objects created by the auth app. Meanwhile, the second model's objects will be stored in a ...


0

pip install django-nested-inline This package should do what you need.


0

Have a look at django-nested-inline https://github.com/s-block/django-nested-inline https://pypi.python.org/pypi/django-nested-inline/0.3.3


0

I found a very easy solution to quietly avoid unwanted deletion of some inlines. You can just override delete_forms property method. This works not just on admin, but on regular inlines too. from django.forms.models import BaseInlineFormSet class MyInlineFormSet(BaseInlineFormSet): @property def deleted_forms(self): deleted_forms = ...


0

Username is required by default in django users which you are extending. You can check python inheritance. Basically you have username, email and password fields by default plus the fields you add. Your Nick field is not necessary...that is done by the username already.


0

Here is a production/thread-safe variation from nemesisfixx solution: def get_form(self, request, obj=None, **kwargs): class NewForm(self.form): request = request return super(UserAdmin, self).get_form(request, form=NewForm, **kwargs)


0

To build TabularInline models need to be connected with ForeignKey. From Dajngo docs example: models.py: from django.db import models class Author(models.Model): name = models.CharField(max_length=100) class Book(models.Model): author = models.ForeignKey(Author) title = models.CharField(max_length=100) admin.py: from django.contrib import ...


0

You can't do that. Django admin inlines are only available if model has foreign key to other model. For you setup you have to find other solution related to your models relation.


0

You should use user_passes_test decorator for your view user_passes_test Docs Something like that: @user_passes_test(lambda u: u.is_superuser) def my_view(request): ................... ....................


1

It should wrapped inside a admin.site.admin_view. from django.contrib.admin.site import admin_view url(r'^admin/dummyfx', admin_view('dummy.views.dummyfx')),


0

Doing this properly requires two steps: Hide the edit link, so nobody stumbles on the detail page (change view) by mistake. Modify the change view to redirect back to the list view. The second part is important: if you don't do this then people will still be able to access the change view by entering a URL directly (which presumably you don't want). This ...


0

Fixed by setting 'ATOMIC_REQUESTS': True for my db connection, which I should have been doing anyway.


0

I hope I got your question right: You could insert Data using the Django shell or write a little script. First you need all the schools that you want as option (e.g. via the admin interface). Than you open the Django shell and create a question with question_text = "Which is the best school?". Then you can loop through the schools and for each school you ...


0

I think you can move your code into {% block nav-global %}{% endblock %} Example, in your template file, something like this: {% block nav-global %} {% for app in app_list %} <li> <a href="#"> <img src="{{ MEDIA_URL }}images/list.png"/> <span>{{ app.name }}</span> ...


0

I think your only solution is to modify base_site.html since every page extends from it {% extends "admin/base_site.html" %} and include what you want ! You have to create an admin folder and place your modified base_site.html inside. You have to make sure that django loads the template dir correctly, see this question (django-override-admin-template) for ...


3

You forgot to set the SITE_ID in your settings file. And you don't need a custom Site model, it's build in :) from django.contrib.sites.models import Site


0

After a couple of intense days, I finally managed to find a way to achieve that. A simple trick such as this is more than enough when dealing with this problem within ModelAdmin subclasses (see ClienteAdmin in my code above), so here's the class version without adding capabilities for "Prodotto" field: @admin.register(Cliente) class ...


0

I couldn't find a solution, so I saved the related data and used a queryset to fetch the saved data so I can do my calculation and save again. I guess one would call this 'a workaround' :) def save_related(self, request, form, formsets, change): super(InvoiceAdmin, self).save_related(request, form, formsets, change) invoice = form.instance ...


1

You don't want to create a new entry, since that will always lead to an infinite recursion. You just want to set self.parent, then call the superclass save method: def save(self, *args, **kwargs): if not self.parent: self.parent = M2.objects.get(name=self.m1.m1title) return super(M2, self).save(*args, **kwargs)


0

Sounds like you could be missing the static resources. After running collectstatic you need to move those resources [a directory named "admin"] to the same location your STATIC_ROOT points to (next to the root folder of your apps static files if you followed that convention from the docs).


1

How about calling update, which just updates the fields, and does not call the save. def save(self, *args, **kwargs): Email.objects.filter(content_type__pk=self.content_type.id, object_id=self.object_id, main=True).update(main=False) self.main = True super(Email, self).save(*args, **kwargs) Here is the documentation on update


0

Take a look at this line. So I guess it should look something like this: from django.contrib.admin.options import get_ul_class class BlogArticleForm(forms.ModelForm): image_choice = forms.ChoiceField( choices=IMG_CHOICES, widget=widgets.AdminRadioSelect( ...


1

I realize this question was closed a while ago, but I'm sharing what worked for me in case it might help others. It turns out that even though permissions for the proxy models I created were listed under the parent apps after syncdb, and even though I granted my non-super user all permissions, it was still denied access to my proxy models through the ...


0

I realize this question was closed a while ago, but I'm sharing what worked for me in case it might help others. It turns out that even though permissions for the proxy models I created were listed under the parent apps, and even though I granted my non-super user all permissions, it was still denied access to my proxy models through the admin. If you ...


0

I realize this question was closed a while ago, but I'm sharing what worked for me in case it might help others. It turns out that even though permissions for the proxy models I created were listed under the parent apps (as @chirinosky) has mentioned, and even though I granted my non-super user all permissions, it was still denied access to my proxy models ...


0

If you need to create multiple admins, you can just run the following command as many times as you need from your BASE_DIR: python manage.py createsuperuser As for the documentation referenced in the question, I believe that this is the recommended way of approaching multiple admin sites. But please don't get confused between a user & an admin. You ...


1

You'll need to add the additional field to your admin form class, then add some JavaScript to show or hide the appropriate field on page load, and also add an event handler to show the field to upload or paste in the link. Both fields would need to allow blank=True and then you'd need to add a clean() method to make sure one of the fields is populated and ...


2

This functionality is not built-in to django, fortunately like many such cases, the community is there to help. django-hijack does what you require: django-hijack allows superusers to hijack (=login as) and work on behalf of another user.


0

Turns out I had to make a new model after all. it's fine, the admin site works as it needs to.


0

You can implement your own ModelAdmin.get_search_results method to support this. Have a look at this implementation snippet: https://djangosnippets.org/snippets/3005/


0

No, you're misunderstanding what those boxes are showing you. You have nothing selected, but they show you all objects available for selection.



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