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This is really only easy to explain with an example, so to remove the intersection of a list from within a dict I usually do something like this:

a = {1:'', 2:'', 3:'', 4:''}
exclusion = [3, 4, 5]

# have to build up a new list or the iteration breaks
toRemove = []
for var in a.iterkeys():
    if var in exclusion:
        toRemove.append(var)

for var in toRemove:
    del a[var]

This might seem like an unusual example, but it's surprising the number of times I've had to do something like this. Doing this with sets would be much nicer, but I clearly want to retain the 'values' for the dict.

This method is annoying because it requires two loops and an extra array. Is there a cleaner and more efficient way of doing this.

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4 Answers 4

up vote 11 down vote accepted

Consider dict.pop:

for key in exclusion:
     a.pop(key, None)

The None keeps pop from raising an exception when key isn't a key.

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Oh, this is far better than my answer. –  SpoonMeiser Oct 3 '08 at 14:32
    
nice tip, dict.pop is oft-forgotten. –  camflan Oct 3 '08 at 15:34
    
You can use any value instead of None: deleted = [d.pop(k,0) for k in exclusion] –  J.F. Sebastian Oct 3 '08 at 16:31
    
It's true. None seemed cheap and easy and very... Noneish. I figured it would feel right in any circumstances, where 0 might feel weird in a string context or "" in a numeric one. –  Blair Conrad Oct 3 '08 at 17:03
    
This is really nice. Much cleaner. I would question whether there would be a more efficient way if the list of exclusions was significantly larger than the dict, rather than iterating through the entire list? –  Dan Oct 3 '08 at 17:03
a = dict((key,value) for (key,value) in a.iteritems() if key not in exclusion)
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This solution avoids explicit loops, which is good, but it reconstructs the dictionary from scratch, which is bad. Maybe dictionaries should steal some methods from sets? –  Rafał Dowgird Oct 3 '08 at 14:41
    
I'm never sure how much benefit you get from avoid loops and so staying in the C code. I guess it will all depend on how big your dict is and how much of it you're removed. I think Blair's answer would be more efficient for large dicts but I've have to test it to be sure. –  Dave Webb Oct 3 '08 at 14:44
    
Funny, removing half of the keys from a 200k dict (a[i]=i for i in range(200k)) in a loop is only about 30% slower on my machine than copying the dict. –  Rafał Dowgird Oct 3 '08 at 15:15

Why not just use the keys method, instead of iterkeys? That way you can do it in one loop because it returns a list, not an iterator.

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You could change your exclusion list to a set, then just use intersection to get the overlap.

exclusion = set([3, 4, 5])

for key in exclusion.intersection(a):
    del a[key]
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