I have 2 dictionaries, A and B. A has 700000 key-value pairs and B has 560000 key-values pairs. All key-value pairs from B are present in A, but some keys in A are duplicates with different values and some have duplicated values but unique keys. I would like to subtract B from A, so I can get the remaining 140000 key-value pairs. When I subtract key-value pairs based on key identity, I remove lets say 150000 key-value pairs because of the repeated keys. I want to subtract key-value pairs based on the identity of BOTH key AND value for each key-value pair, so I get 140000. Any suggestion would be welcome.

This is an example:

A = {'10':1, '11':1, '12':1, '10':2, '11':2, '11':3}
B = {'11':1, '11':2}

I DO want to get: A-B = {'10':1, '12':1, '10':2, '11':3}

I DO NOT want to get:

a) When based on keys:

{'10':1, '12':1, '10':2}

or

b) When based on values:

{'11':3}
  • 1
    Possible duplicate of How to remove a key from a dictionary? – Code-Apprentice Feb 3 '16 at 20:35
  • No @Code-Apprendice, that post does not answer my question. I don't want to remove keys from a dict, but to subtract key-value pairs. – Lucas Feb 3 '16 at 20:38
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    @Lucas: Your question would be well served with a small example of what you are asking for. – Steven Rumbalski Feb 3 '16 at 20:47
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    @Lucas: how can k:v pairs from B be in A and then A also have duplicated keys with different values? A key can only appear once in a dictionary? – Will Feb 3 '16 at 21:01
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    A = {'10':1, '11':1, '12':1, '10':2, '11':2, '11':3} is not possible. If you do this at the python prompt, you will get something like {'11': 3, '10': 2, '12': 1} for A. – PaulMcG Feb 3 '16 at 21:19
up vote 1 down vote accepted
A = {'10':1, '11':1, '12':1, '10':2, '11':2, '11':3}
B = {'11':1, '11':2}

You can't have duplicate keys in Python. If you run the above, it will get reduced to:

A={'11': 3, '10': 2, '12': 1}
B={'11': 2}

But to answer you question, to do A - B (based on dict keys):

all(map( A.pop, B))   # use all() so it works for Python 2 and 3.
print A # {'10': 2, '12': 1}
  • At least in Python 3, map does not seem to work as described by Monty After running map( A.pop, B ), A is unchanged. (Perhaps because in Python 3, map returns an iterator.) – mpb Jan 11 at 2:01
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    @mpb, good catch! have to put it inside all() or something so to consume the iterator. Works for Python 2 and 3 – Monty Montemayor Jan 24 at 22:17
  • This did not work for me since all() returns a bool. Did I miss something? – HuckIt Feb 28 at 17:45
  • what version of python do you have? btw, why downvote, if I can still help you? – Monty Montemayor Feb 28 at 19:29
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    I'd avoid using map just for its side effect, and avoid using all to force evaluation. If any of your values are falsey all will stop popping values from A prematurely! In general there's nothing wrong with an imperative for-loop, and in this case PaulMcG's non-mutative comprehension answer seems like the best solution. – Orez Jul 9 at 20:01

To get items in A that are not in B, based just on key:

C = {k:v for k,v in A.items() if k not in B}

To get items in A that are not in B, based on key and value:

C = {k:v for k,v in A.items() if k not in B or v != B[k]}
  • This is the most logical/readable, and probably fastest, and it easily tweakable whether the values have to be equal (or just keys being equal) as well. – PascalVKooten Feb 3 '16 at 20:52

An easy, intuitive way to do this is

dict(set(a.items()) - set(b.items()))
  • 4
    This won't work when any of the values is not hashable. – PascalVKooten Feb 3 '16 at 20:49
  • When would the values not be hashable? – HuckIt Feb 28 at 17:45
  • Simply put, it's just when it isn't hashable. Builtin unhashables are lists and dicts. It's why, for example, you can't have a list as a dict key. – Brien Feb 28 at 23:14
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    @HuckIt If you store a list in a dict, you'll have problems – BallpointBen May 17 at 2:00

Another way of using the efficiency of sets. This might be more multipurpose than the answer by @brien. His answer is very nice and concise, so I upvoted it.

diffKeys = set(a.keys()) - set(b.keys())
c = dict()
for key in diffKeys:
  c[key] = a.get(key)

EDIT: There is the assumption here, based on the OP's question, that dict B is a subset of dict A, that the key/val pairs in B are in A. The above code will have unexpected results if you are not working strictly with a key/val subset. Thanks to Steven for pointing this out in his comment.

  • 1
    diffKeys = set(a) - set(b) works as well – Will Feb 3 '16 at 21:02
  • This is different than @brien's answer. This considers keys only whereas the other answer considers key-value pairs. They will give different answers. – Steven Rumbalski Feb 3 '16 at 21:04
  • @StevenRumbalski: Yes! True. I should have pointed that out, and will clarify it in my answer. I was working from the OPs stated presumption that all of the existing key/val pairs from b are in a. So B is a subset. – robert arles Feb 3 '16 at 21:31
result = A.copy()
[result.pop(key) for key in B if B[key] == A[key]]

Based on only keys assuming A is a superset of B or B is a subset of A:

c = {k:a[k] for k in a.keys() - b.keys()}

Based on both keys and values @PaulMcG answer

Since I can not (yet) comment: the accepted answer will fail if there are some keys in B not present in A.

Using dict.pop with a default would circumvent it (borrowed from How to remove a key from a Python dictionary?):

all(A.pop(k, None) for k in B)

or

tuple(A.pop(k, None) for k in B)

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