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This question already has an answer here:

I am looking for feedback on my Python code. I am trying to merge two dictionaries. One of the dictionaries controls the structure and the default values, the second dictionary will overwrite the default values when applicable.

Please note that I am looking for the following behaviour:

  • keys only present in the other dict should not be added
  • nested dicts should be taken into account

I wrote this simple function:

def merge_dicts(base_dict, other_dict):
    """ Merge two dicts

    Ensure that the base_dict remains as is and overwrite info from other_dict
    """
    out_dict = dict()
    for key, value in base_dict.items():
        if key not in other_dict:
            # simply use the base
            nvalue = value
        elif isinstance(other_dict[key], type(value)):
            if isinstance(value, type({})):
                # a new dict myst be recursively merged
                nvalue = merge_dicts(value, other_dict[key])
            else:
                # use the others' value
                nvalue = other_dict[key]
        else:
            # error due to difference of type
            raise TypeError('The type of key {} should be {} (currently is {})'.format(
                key,
                type(value),
                type(other_dict[key]))
            )
        out_dict[key] = nvalue
    return out_dict

I am sure this can be done more beautifully/pythonic.

marked as duplicate by idjaw python Jul 28 '17 at 13:35

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • The values of other_dict will not be added if the corresponding keys are not in base_dict. Is this wanted behavior? – Willem Van Onsem Jul 28 '17 at 13:18
  • So keys in other_dict that are not in base_dict should be ignored, right? – jdehesa Jul 28 '17 at 13:20
  • 1
    The question is not a duplicate, at least not of those questions; here nested dicts must be taken into account. – jdehesa Jul 28 '17 at 13:33
  • Yes, the additional keys should not be added. That is wanted behaviour. – user1934514 Jul 28 '17 at 13:46
  • Yes, nested dicts must be taken into account indeed. – user1934514 Jul 28 '17 at 13:46
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"Pythonicness" is a hard measure to assess, but here is my take on it:

def merge_dicts(base_dict, other_dict):
    """ Merge two dicts

    Ensure that the base_dict remains as is and overwrite info from other_dict
    """
    if other_dict is None:
        return base_dict
    t = type(base_dict)
    if type(other_dict) != t:
        raise TypeError("Mismatching types: {} and {}."
                        .format(t, type(other_dict)))
    if not issubclass(t, dict):
        return other_dict
    return {k: merge_dicts(v, other_dict.get(k)) for k, v in base_dict.items()}

Example:

merge_dicts({"a":2, "b":{"b1": 5, "b2": 7}}, {"b": {"b1": 9}})
>>> {'a': 2, 'b': {'b1': 9, 'b2': 7}}
  • A good catch here is the "if other_dict is None", but why do you not use: "if not other_dict"? – user1934514 Jul 28 '17 at 14:45
  • @user1934514 To be honest I'm making the assumption that other_dict will never contain None, which I'm not sure if is good for your case. However, I guess 0, False, "" or [] are too valid values, so I avoid discarding them is None instead of just checking its "falsy" value (the None values are expected to come from other_dict.get(k) in the previous call in the stack when k is not there). – jdehesa Jul 28 '17 at 14:58
1

If you're using python 3.5 or later you can simply do:

merged_dict = {**base_dict, **other_dict}

In case you're using any prior version you can do it with the update method:

merged_dict = {}
merged_dict.update(base_dict)
merged_dict.update(other_dict)

For more information about it you can check The Idiomatic Way to Merge Dictionaries in Python

  • 1
    This doesn't account for nested dicts. – jdehesa Jul 28 '17 at 13:26
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You can use the dict.update method, along with a generator expression:

base_dict.update((k, v) for k, v in other_dict.items() if k in base_dict)

Explanation

base_dict.update(other_dict) will overwrite the values in base_dict with those in other_dict. If a key exists in other_dict but not in base_dict, it will be added to base_dict, which is not what you want. Therefore, you need to test if each key in other_dict is in base_dict.

dict.update can take an iterable as first parameter. If the latter contains 2-tuples (k, v), then base_dict[k] will be set to v.

Abstract from help(dict.update):

update(...) method of builtins.dict instance

If E is present and lacks a .keys() method, then does: for k, v in E: D[k] = v

Therefore, it's convenient to pass a generator expression to it. If you're not familiar with generator expressions, the stuff inside of the parentheses is more or less equivalent to the following:

l = []
for k, v in other.dict_items():
    if k in base_dict:
        l.append((k, v))

Then l is passed to update, like base_dict.update(l).

  • Again, this doesn't account for nested dicts. – jdehesa Jul 28 '17 at 13:33

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