5

Let's suppose that I have two dictionaries:

dic1 =  { "first":1, "second":4, "third":8} 
dic2 =  { "first":9, "second":5, "fourth":3}

Is there a straightforward way to obtain something like the below?

dic3 =  { "first":[1,9], "second":[4,5], "third":[8], "fourth":[3]}

I used lists to store values, but tuples are fine as well.

  • 1
    Are you sure you want the items that appear in only one dictionary to be bare items, rather than lists of one item? – interfect Sep 28 '18 at 21:41
  • 1
    @interfect Ok, I see your point, I am making an edit – Netchaiev Sep 28 '18 at 21:46
6

You can use a defaultdict to hold lists, and then just append the values to them. This approach easily extends to an arbitrary number of dictionaries.

from collections import defaultdict

dd = defaultdict(list)

dics = [dic1, dic2]
for dic in dics:
    for key, val in dic.iteritems():  # .items() in Python 3.
        dd[key].append(val)

>>> dict(dd)
{'first': [1, 9], 'fourth': [3], 'second': [4, 5], 'third': [8]}

All of the keys with a single value are still held within a list, which is probably the best way to go. You could, however, change anything of length one into the actual value, e.g.

for key, val in dd.iteritems():  # .items() in Python 3.
    if len(val) == 1
        dd[key] = val[0]
  • 2
    This implementation will have all values in the resulting defaultdict be of type list even if there is no duplicate value within the key. If the preferred behavior is to leave single values as that values' type, then we should check for the existence of a key before adding and convert to a list only when that key already existed. – ctj232 Sep 28 '18 at 21:39
  • 1
    @ctj232 OP corrected question to have them in a list structure, which makes more sense anyway. – Alexander Sep 28 '18 at 21:55
6

Here's a naive solution; copy one of the dictionaries over to the result and iterate over the other dictionary's keys and values, adding arrays to the result as necessary. Since there are only two dictionaries, no merge array will have more than 2 items; no need to check type.

dic1 = {"first": 1, "second": 4, "third": 8} 
dic2 = {"first": 9, "second": 5, "fourth": 3}
dic3 = dict(dic2)

for k, v in dic1.items():
    dic3[k] = [dic3[k], v] if k in dic3 else v

print(dic3)

Output:

{'first': [9, 1], 'second': [5, 4], 'fourth': 3, 'third': 8}

Try it out.

If you'd like single values to be lists you can use:

dic3 = {k: [v] for k, v in dic2.items()}

for k, v in dic1.items():
    dic3[k] = dic3[k] + [v] if k in dic3 else [v]
  • If OP wants single element lists, one could use [*set([dic3[k], v])] instead of the ternary if expression. – Enrico Borba Sep 28 '18 at 23:18
3

Using set and dictionary comprehension

L = [d1, d2]
dups = set(d1.keys() & d2.keys())
d = {k: [L[0][k], L[1][k]] if k in dups else i[k] for i in L for k in i}
{'first': [1, 9], 'second': [4, 5], 'third': 8, 'fourth': 3}
2

In general, I would say it's bad practice to cast the values of different keys as different object types. I would simply do something like:

def merge_values(val1, val2):
    if val1 is None:
        return [val2]
    elif val2 is None:
        return [val1]
    else:
        return [val1, val2]
dict3 = {
    key: merge_values(dic1.get(key), dic2.get(key))
    for key in set(dic1).union(dic2)
}
  • Ok, I'll edit already to stick with the same type everywhere. – Netchaiev Sep 28 '18 at 21:46
1

Create a new dictionary dic having for keys the keys of dic1 and dic2 and value an empty list, then iterate over dic1 and dic2 appending values to dic:

dic1 =  { "first":1, "second":4, "third":8} 
dic2 =  { "first":9, "second":5, "fourth":3}

dic = {key:[] for key in list(dic1.keys()) + list(dic2.keys())}

for key in dic1.keys():
    dic[key].append(dic1[key])

for key in dic2.keys():
    dic[key].append(dic2[key])
  • Python 2 only as written. Python 3 would give a TypeError here with dic1.keys() + dic2.keys() – dawg Sep 28 '18 at 22:25
  • Converting dict.keys() to list gives compatibility with python3. I never searched why base functions like sum don't work anymore on arbitrary types in python3. sum over lists of strings was very convenient. – Scrooge McDuck Sep 28 '18 at 22:29
  • Now maybe make it a bit more efficient with dic = {key:[] for key in {k for k in list(dic1) + list(dic2)}} so that duplicate keys are eliminated. – dawg Sep 28 '18 at 22:34
  • Set conversion would still read the whole list to create the set. I didn't convert it because it would weigh down the notation even more and one would not gain anything on memory front. – Scrooge McDuck Sep 28 '18 at 22:48
  • Python is just trying to protect you. Using sum to concatenate a list of strings would be a classic example of a Shlemiel the painter algorithm. Concatenating n strings would create n-2 temporary strings. – PM 2Ring Sep 28 '18 at 23:40
1

Given:

dic1 =  { "first":1, "second":4, "third":8} 
dic2 =  { "first":9, "second":5, "fourth":3}

You can use .setdefault:

dic_new={}
for k,v in list(dic1.items())+list(dic2.items()):
    dic_new.setdefault(k, []).append(v)
else:
    dic_new={k:v if len(v)>1 else v[0] for k,v in dic_new.items()}  

>>> dic_new
{'first': [1, 9], 'second': [4, 5], 'third': 8, 'fourth': 3}

This produces the output in question. I think that flattening the single elements lists to a different object type is an unnecessary complexity.


With the edit, this produces the desired result:

dic_new={}
for k,v in list(dic1.items())+list(dic2.items()):
    dic_new.setdefault(k, []).append(v)

>>> dic_new
{'first': [1, 9], 'second': [4, 5], 'third': [8], 'fourth': [3]}
0
from copy import deepcopy


def _add_value_to_list(value, lis):
    if value:
        if isinstance(value, list):
            lis.extend(value)
        else:
            lis.append(value)
    else:
        pass


def _merge_value(value_a, value_b):
    merged_value = []
    _add_value_to_list(value_a, merged_value)
    _add_value_to_list(value_b, merged_value)
    return merged_value


def _recursion_merge_dict(new_dic, dic_a, dic_b):
    if not dic_a or not dic_b:
        return new_dic
    else:
        if isinstance(new_dic, dict):
            for k, v in new_dic.items():
                new_dic[k] = _recursion_merge_dict(v, dic_a.get(k, {}), dic_b.get(k, {}))
            return new_dic
        else:
            return _merge_value(dic_a, dic_b)


def merge_dicts(dic_a, dic_b):
    new_dic = deepcopy(dic_a)
    new_dic.update(dic_b)

    return _recursion_merge_dict(new_dic, dic_a, dic_b)

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