6

I have a list of dictionaries, and I would like to obtain those that have the same value in a key:

my_list_of_dicts = [{
    'id': 3,
    'name': 'John'
  },{
    'id': 5,
    'name': 'Peter'
  },{
    'id': 2,
    'name': 'Peter'
  },{
    'id': 6,
    'name': 'Mariah'
  },{
    'id': 7,
    'name': 'John'
  },{
    'id': 1,
    'name': 'Louis'
  }
]

I want to keep those items that have the same 'name', so, I would like to obtain something like:

duplicates: [{
    'id': 3,
    'name': 'John'
  },{
    'id': 5,
    'name': 'Peter'
  },{
    'id': 2,
    'name': 'Peter'
  }, {
    'id': 7,
    'name': 'John'
  }
]

I'm trying (not successfully):

duplicates = [item for item in my_list_of_dicts if len(my_list_of_dicts.get('name', None)) > 1]

I have clear my problem with this code, but not able to do the right sentence

10

Another concise way using collections.Counter:

from collections import Counter

my_list_of_dicts = [{
    'id': 3,
    'name': 'John'
  },{
    'id': 5,
    'name': 'Peter'
  },{
    'id': 2,
    'name': 'Peter'
  },{
    'id': 6,
    'name': 'Mariah'
  },{
    'id': 7,
    'name': 'John'
  },{
    'id': 1,
    'name': 'Louis'
  }
]

c = Counter(x['name'] for x in my_list_of_dicts)

duplicates = [x for x in my_list_of_dicts if c[x['name']] > 1]
  • 4
    This provides an O(N) solution in contrast to the O(N^2) approach in the OP. Very nice! – Tomerikoo Jan 20 at 12:22
4

You could use the following list comprehension:

>>> [d for d in my_list_of_dicts if len([e for e in my_list_of_dicts if e['name'] == d['name']]) > 1]
[{'id': 3, 'name': 'John'},
 {'id': 5, 'name': 'Peter'},
 {'id': 2, 'name': 'Peter'},
 {'id': 7, 'name': 'John'}]
  • 5
    O(N^2) time complexity needlessly – Chris_Rands Jan 20 at 12:25

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