1

I would like to compare a list of string within a dictionaries against another list of dictionaries in Python. If the href in the secondary_list is unavailable in the main_list, the href will be appended into the main_list.

Based on this requirement,the code below was realized.

main_list = [
    {'href': 'red'},
    {'href': 'yellow'},
    {'href': 'yellow'},
]

secondary_list = [
    {'href': 'yellow'},
    {'href': 'redf'},
    {'href': 'blue'},
]
for g in secondary_list:

    if not any(d.get('href', None) == g["href"] for d in main_list):
        main_list.append({'href': g["href"]})

But, say if we have a very large list in both dictionary, the implementation using two for loops may be inefficient.

May I know whether the code above can be make more efficient and compact? Even better, if there exist package that I am not aware of?

0
2

You could do the following, O(n) complexity:

main_set = {frozenset(g.items()) for g in main_list}
secondary_set = {frozenset(g.items()) for g in secondary_list}

main_list.extend(dict(g) for g in secondary_set - main_set)
print(main_list)

Output

[{'href': 'red'}, {'href': 'yellow'}, {'href': 'yellow'}, {'href': 'blue'}, {'href': 'redf'}]

The idea is to create sets of frozen dictionaries frozenset(g.items()) find the difference and convert back to dictionaries. You can think of frozenset as a hashable set.

For your case in particular, single key dictionaries where the key is the same for all, you could do:

main_set = {v for d in main_list for v in d.values()}
secondary_set = {v for d in secondary_list for v in d.values()}

main_list.extend({"href": v} for v in (secondary_set - main_set))
print(main_list)
1
  • Interesting suggestion by reducing it into O(n) complexity. I still dont have the large dic at the time being hence unable to compare the difference in execution time. But, I will update later the speed gain by applying your proposed solution.
    – rpb
    Apr 24 '20 at 9:53

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