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I have a list which has items that are either dicts or something else.

I want to write a method which prints the list, each item on a line, but special-cases the dicts; something like:

def printSpecialList(mylist):
  for item in mylist:
    if itemIsDict(item):
      printDictItem(item)
    else:
      print str(item)

I can implement everything but itemIsDict -- what's the simplest way to do that?


just a clarification:

The source of this list produces items using dictionary literals e.g. {'a': 3, 'b': 4}, which makes it cumbersome to use special dictionary types that know how to format themselves. In addition, my printSpecialList method is a little more complicated, and it has its own private state that it incorporates, so instance testing, albeit "yucky" (e.g. someone couldn't make a mock dict class that doesn't descend from dict that would work with my method) seems like the best way to go here.

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4 Answers 4

up vote 6 down vote accepted
def itemIsDict(item):
    return isinstance(item, dict)
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isinstance(item, dict) would do what you're asking, but it has to be said that branching on the type of a variable is rather un-Pythonic.

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I'm aware of that, but I don't see any real alternative: a dict object doesn't know how to format itself the way I want, whereas I do. –  Jason S Jan 16 '12 at 19:15

You can subclass dict and implement the __repr__ or __str__ method:

class MyDict(dict):

    __str__(self):
        # you write your custom string format
        return 'my custom formatted string'

This way your code will handle every item in the same way:

for item in mylist:
    print item

Note: If you want to follow this approach more information can be found in the official documentation

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I understand that, but I have existing code that makes this list, and I don't want it to have to use MyDict instead of literals like {'a': 3, 'b': 4} –  Jason S Jan 16 '12 at 19:27

By using type()

if type(item) == dict:
    print "Dictionary!"
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3  
Except that this doesn't recognize subtypes of dict, even such objects are, for (almost) all intents and purposes, perfectly valid dictionaries. –  delnan Jan 16 '12 at 19:06
    
Ah, so that's the difference between type and isinstance? Thanks, I didn't know that. –  Michael0x2a Jan 16 '12 at 19:08

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