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I have a dictionary: dict = {"key":[None, "item 2", "item 3"]}

How can I check that dict["key"][0] is None if "key" is unknown.

I have this so far:

{k: dict[k][0] for k in dict.viewkeys()}

which gives me:

{"key":None}

In my application, I am testing to see if dict["key"][0] has been populated yet, its default is None.

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3 Answers 3

up vote 2 down vote accepted

You're very close. If you want all key, value pairs such that the first item in the value list is None, you could do this:

unassigned_items = {k:v for k, v in mydict.viewitems() if v[0] is None}

Note that you shouldn't use dict as a variable name because it masks the dict built-in -- even in example code, if only because it may mislead people.

Once you've got unassigned_items, you can simply test to see if 'key' is in unassigned_items:

if key in unassigned_items:
    do_something()
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perhaps try filter(lambda k: dict[k][0] == None, dict.keys())

should return a list of all the members of dict.keys() (the list of keys) whose first element is None (that is, they return True for dict[k][0] == None)

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Not the safest/cleanest:

if d[d.keys()[0]][0] is None: print "Empty"
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1  
If this were what the OP wanted -- and I'm not sure that it is -- then why wouldn't the OP simply use "key4" in d? Definitely shouldn't use a bare except, in any event. –  DSM Jul 12 '12 at 15:35
    
Oh, I misunderstood the question. I thought that they were asking if the key might not exist yet, not if you didn't know the key name. –  reptilicus Jul 12 '12 at 16:33
    
if d[d.keys()[0]][0] is None: print "Empty" –  reptilicus Jul 12 '12 at 16:39

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