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This question already has an answer here:

How would you check if a variable is a dictionary in python?

For example id like it to loop through the values in the dictionary till it finds a dictionary then loop through the one it finds:

dict = {'abc':'abc','def':{'ghi':'ghi','jkl':'jkl'}}
for k, v in dict.iteritems():
    if ###check if v is a dictionary:
        for k, v in v.iteritems():
            print(k,' ',v)
    else:
        print(k,' ',v)

marked as duplicate by NPE python Aug 10 '14 at 19:03

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • Also stackoverflow.com/questions/378927/… (which is marked as a duplicate of the one above). – NPE Aug 10 '14 at 19:03
  • Also stackoverflow.com/q/2225038/770830 – bereal Aug 10 '14 at 19:05
  • 27
    No, it is not the same question. The answer to this question and to the other questions listed here all contain substantially the same information. But the answer to "How to check if a variable is a dictionary in python" is "Use type() or isinstance()" which then leads to a new question, which is what is the difference between type() and isinstance(). But the person asking the first question can't possibly know that until the first question is answered. Ergo, different questions, which matters when you are looking for your question on the site. – Mark Baker Jan 6 '16 at 22:44
  • 9
    I agree with @mbakeranalecta I came here looking for the answer to the question "How to check is a variable is a dictionary in Python?" and I would have never thought to look my answer into "Differences between isinstance() and type() in python". – lodebari Jan 14 '16 at 14:46
  • 3
    For checking if a variable is a dictionary in particular, you should probably use isinstance(v, collections.abc.Mapping). In other words, this is not an exact duplicate of "Differences between isinstance() and type()." – Josh Kelley May 1 '17 at 20:08
157

You could use if type(ele) is dict or use isinstance(ele, dict) which would work if you had subclassed dict:

d = {'abc':'abc','def':{'ghi':'ghi','jkl':'jkl'}}
for ele in d.values():
    if isinstance(ele,dict):
       for k, v in ele.items():
           print(k,' ',v)
  • 27
    I down-voted this answer because the right answer to the general question is: isinstance(ele, collections.Mapping). It works for dict(), collections.OrderedDict(), and collections.UserDict(). The example in the question is specific enough for Padriac's answer to work, but it's not good enough for the general case. – Alexander Ryzhov Jun 28 '18 at 5:31
  • 1
    I downvoted this answer because if you are going to to invoke ele.items() why are you checking type? EAFP/duck-typing works here, just wrap for k,v in ele.items() in try...except (AttributeError, TypeError). If exception is raised, you know ele has no items that yields an iterable... – cowbert Jul 14 '18 at 3:31
  • @Padraic Cunningham Your hypothetical edge case would require that your "100% not a dict" custom class 1. had an items() method 2. which just so happened to yield an iterable and 3. where each element of that iterable can be represented as a 2-tuple. At this point your custom object has already implemented half of a dict already. For the purposes of the code listed we only cared about conditional expansion of the nested element, and your custom object already implements that. (It's a bit ironic that you criticize @Alexander Ryzhov's comment for being too general but now raise a general case) – cowbert Jul 14 '18 at 16:17
  • 1
    @PadraicCunningham I'd rather not teach people-who-are-not-overly-familiar-with-Python anti-patterns to begin with. There are very few use-cases in Python that require explicit typechecking - most stem from inheriting a bad implementation to begin with ('god object's, overriding standard library/language constructs, etc.) The original question is itself an XY problem. Why does the OP need to check type? Because according to their code what they really want to do is to check whether an item in their collection behaves like a collection (implements items() that yields a nested iterable). – cowbert Jul 14 '18 at 21:02
  • 2
    @cowbert You're welcome to your opinions, but it is a fact that Padraic actually answered the question – Ethan Reesor Oct 25 '18 at 0:35

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