213

I'm trying to save a object to my database, but it's throwing a MultiValueDictKeyError error.

The problems lies within the form, the is_private is represented by a checkbox. If the check box is NOT selected, obviously nothing is passed. This is where the error gets chucked.

How do I properly deal with this exception, and catch it?

The line is

is_private = request.POST['is_private']
3
  • 1
    A good idea would be to show us the whole error and the trace. Also show us more of that portion of code where the error is raised. May 5 '11 at 9:43
  • 1
    Can anyone explain why does this error occurs?I have seen this error when i use different Modelviewset in django rest.....
    – Amrit
    Jan 5 '17 at 9:20
  • 1
    it means simply: the key 'is_private' doesn't exist!
    – ThePhi
    Aug 19 '17 at 5:29
332

Use the MultiValueDict's get method. This is also present on standard dicts and is a way to fetch a value while providing a default if it does not exist.

is_private = request.POST.get('is_private', False)

Generally,

my_var = dict.get(<key>, <default>)
2
  • 3
    This gives me a None value but I am sending the value on the POST :/ Oct 26 '17 at 4:14
  • 1
    It is the correct behaviour.. checkbox send checked when is checked but will send null if not checked. You can check this in the Chrome/Firefox DEV tool's "Network" panel. That is why you set False as the default value: if got null, make it false.
    – WesternGun
    Mar 7 '18 at 12:03
95

Choose what is best for you:

1

is_private = request.POST.get('is_private', False);

If is_private key is present in request.POST the is_private variable will be equal to it, if not, then it will be equal to False.

2

if 'is_private' in request.POST:
    is_private = request.POST['is_private']
else:
    is_private = False

3

from django.utils.datastructures import MultiValueDictKeyError
try:
    is_private = request.POST['is_private']
except MultiValueDictKeyError:
    is_private = False
8
  • 16
    Really can't recommend number 3.
    – Joe
    May 5 '11 at 9:47
  • 6
    It just seems like an abuse of the exception system. Exceptions should be for handling exceptional behaviour (i.e. behaviour you know that may happen, and must deal with, but that you don't expect in the normal program flow). In this case, the exception will be thrown and caught in 50% of the possible program flows. Added to that is the slow-down. I don't know the details of how it works in Python, but I would imagine an expensive stack-trace would be involved.
    – Joe
    May 5 '11 at 9:53
  • 14
    from django.utils.datastructures import MultiValueDictKeyError Feb 10 '13 at 22:35
  • 8
    @Joe - In Python this approach is pretty common. If you're catching the exception it won't automatically generate a stacktrace. docs.python.org/2/glossary.html#term-eafp
    – bjudson
    Sep 22 '13 at 21:29
  • 9
    There is nothing wrong with step 3. We call that Easier to ask for forgiveness than permission (EAFP), and it is a highly recommended coding style in Python. Plenty of posts on StackOverflow have even discussed this.
    – Bobort
    Sep 19 '17 at 14:56
13

You get that because you're trying to get a key from a dictionary when it's not there. You need to test if it is in there first.

try:

is_private = 'is_private' in request.POST

or

is_private = 'is_private' in request.POST and request.POST['is_private']

depending on the values you're using.

7

Another thing to remember is that request.POST['keyword'] refers to the element identified by the specified html name attribute keyword.

So, if your form is:

<form action="/login/" method="POST">
  <input type="text" name="keyword" placeholder="Search query">
  <input type="number" name="results" placeholder="Number of results">
</form>

then, request.POST['keyword'] and request.POST['results'] will contain the value of the input elements keyword and results, respectively.

6

Why didn't you try to define is_private in your models as default=False?

class Foo(models.Models):
    is_private = models.BooleanField(default=False)
1
  • 2
    That wouldn't prevent the error he is getting checking the POST by hand for the value. Sep 2 '16 at 4:30
4

For me, this error occurred in my django project because of the following:

  1. I inserted a new hyperlink in my home.html present in templates folder of my project as below:

    <input type="button" value="About" onclick="location.href='{% url 'about' %}'">

  2. In views.py, I had the following definitions of count and about:

   def count(request):
           fulltext = request.GET['fulltext']
           wordlist = fulltext.split()
           worddict = {}
           for word in wordlist:
               if word in worddict:
                   worddict[word] += 1
               else:
                   worddict[word] = 1
                   worddict = sorted(worddict.items(), key = operator.itemgetter(1),reverse=True)
           return render(request,'count.html', 'fulltext':fulltext,'count':len(wordlist),'worddict'::worddict})

   def about(request): 
       return render(request,"about.html")
  1. In urls.py, I had the following url patterns:
    urlpatterns = [
        path('admin/', admin.site.urls),
        path('',views.homepage,name="home"),
        path('eggs',views.eggs),
        path('count/',views.count,name="count"),
        path('about/',views.count,name="about"),
    ]

As can be seen in no. 3 above,in the last url pattern, I was incorrectly calling views.count whereas I needed to call views.about. This line fulltext = request.GET['fulltext'] in count function (which was mistakenly called because of wrong entry in urlpatterns) of views.py threw the multivaluedictkeyerror exception.

Then I changed the last url pattern in urls.py to the correct one i.e. path('about/',views.about,name="about"), and everything worked fine.

Apparently, in general a newbie programmer in django can make the mistake I made of wrongly calling another view function for a url, which might be expecting different set of parameters or passing different set of objects in its render call, rather than the intended behavior.

Hope this helps some newbie programmer to django.

3

First check if the request object have the 'is_private' key parameter. Most of the case's this MultiValueDictKeyError occurred for missing key in the dictionary-like request object. Because dictionary is an unordered key, value pair “associative memories” or “associative arrays”

In another word. request.GET or request.POST is a dictionary-like object containing all request parameters. This is specific to Django.

The method get() returns a value for the given key if key is in the dictionary. If key is not available then returns default value None.

You can handle this error by putting :

is_private = request.POST.get('is_private', False);
0

I got 'MultiValueDictKeyError' error while using ajax with Django. Just because of not putting '#' while selecting an element. Like this.

data:{ name : $('id_name').val(),},

then I put the '#' with the id and the problem is solved.

data:{ name : $('#id_name').val(),},
0

This will insert NULL value if the name is not present in the request

name = request.data.get('name', None)

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