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Here is my issue:

I am doing an LDAP search in Python. The search will return a dictionary object:

{'mail':['user@mail.com'],'mobile':['07852242242'], 'telephoneNumber':['01112512152']}

As you can see, the returned dictionary contains list values.

Sometimes, no result will be found:

{'mail':None, 'mobile':None, 'telephoneNumber':['01112512152']}

To extract the required values, I am using get() as to avoid exceptions if the dictionary item does not exist.

return {"uname":x.get('mail')[0], "telephone":x.get('telephoneNumber')[0], "mobile":x.get('mobile')[0]}

I want to return my own dictionary as above, with just the string values, but Im struggling to find an efficient way to check that the lists are not None and keep running into index errors or type errors:

(<type 'exceptions.TypeError'>, TypeError("'NoneType' object is unsubscriptable",)

Is there a way to use a get() method on a list, so that if the list is None it wont throw an exception???

{"uname":x.get('mail').get(0)}

What is the most efficient way of getting the first value of a list or returning None without using:

if isinstance(x.get('mail'),list):

or

if x.get('mail') is not None:
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4 Answers 4

up vote 2 down vote accepted

If you want to flatten your dictionary, you can just do:

>>> d = {'mail':None, 'mobile':None, 'telephoneNumber':['01112512152']}
>>> 
>>> dict((k,v and v[0] or v) for k,v in d.items())
{'mail': None, 'mobile': None, 'telephoneNumber': '01112512152'}

If you'd also like to filter, cutting off the None values, then you could do:

>>> dict((k,v[0]) for k,v in d.items() if v)
{'telephoneNumber': '01112512152'}
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very nice, thank you –  khrf Feb 17 '12 at 12:10
    
This is exactly what I needed, I was hoping someone would come up with a list or dict comprehension as I couldnt quite build one that would suit my needs! Thanks! –  JackalopeZero Feb 17 '12 at 12:17
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Try the next:

return {"uname":(x.get('mail') or [None])[0], ...

It is a bit unreadable, so you probably want to wrap it into some helper function.

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i had the same ìdea, but get() returns default value if it doesn't find the key, not if the key has None as value –  soulcheck Feb 17 '12 at 11:18
    
@JackalopeZero Yeah, I've missed that. See the edit. –  Roman Bodnarchuk Feb 17 '12 at 11:21
    
nice use of implicit booleanness –  soulcheck Feb 17 '12 at 11:27
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You could do something like this:

input_dict = {'mail':None, 'mobile':None, 'telephoneNumber':['01112512152']}

input_key_map = {
    'mail': 'uname',
    'telephoneNumber': 'telephone',
    'mobile': 'mobile',
}

dict((new_name, input_dict[old_name][0]) 
      for old_name, new_name in input_key_map.items() if input_dict.get(old_name))

# would print:
{'telephone': '01112512152'}
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I'm not sure if there's a straightforward way to do this, but you can try:

 default_value = [None]
 new_x = dict((k, default_value if not v  else v) for k, v in x.iteritems())

And use new_x instead of x.

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