70

Trying to assert that two dictionaries that have nested contents are equal to each other (order doesn't matter) with pytest. What's the pythonic way to do this?

1
  • 14
    Have you tried assert d1 == d2? Btw what is your nested content?
    – Szabolcs
    Nov 9, 2017 at 12:07

6 Answers 6

79

pytest's magic is clever enough. By writing

assert {'a': {'b': 2, 'c': {'d': 4} } } == {'a': {'b': 2, 'c': {'d': 4} } }

you will have a nested test on equality.

3
  • 4
    This should be the accepted answer. The desired functionality is already there automatically in pytest when you assert that two dictionaries are equal. There's no need either to write dedicated logic or to import anything from unittest.
    – monotasker
    Oct 15, 2022 at 15:07
  • 4
    It isn't even pytest. This is just using the regular Python equality operator. Only if the assertion fails does pytest's magic kick in to display the dicts and/or their differences. May 17, 2023 at 20:13
  • AFAICT this doesn't work correctly on large dicts/json. I'm seeing "errors" with pytest that seem related to sort/display order, which unittest handles correctly.
    – szeitlin
    Apr 8 at 18:23
60

Don't spend your time writing this logic yourself. Just use the functions provided by the default testing library unittest

from unittest import TestCase
TestCase().assertDictEqual(expected_dict, actual_dict)
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  • 2
    When dict is big, and we no see diff details, variant use with params maxDiff: test = TestCase() | test.maxDiff = None | test.assertEqual(expected_dict, actual_dict) Sep 22, 2022 at 7:48
9

I guess a simple assert equality test should be okay:

>>> d1 = {n: chr(n+65) for n in range(10)}
>>> d2 = {n: chr(n+65) for n in range(10)}
>>> d1 == d2
True
>>> l1 = [1, 2, 3]
>>> l2 = [1, 2, 3]
>>> d2[10] = l2
>>> d1[10] = l1
>>> d1 == d2
True
>>> class Example:
    stub_prop = None
>>> e1 = Example()
>>> e2 = Example()
>>> e2.stub_prop = 10
>>> e1.stub_prop = 'a'
>>> d1[11] = e1
>>> d2[11] = e2
>>> d1 == d2
False
7

General purpose way is to:

import json

# Make sure you sort any lists in the dictionary before dumping to a string

dictA_str = json.dumps(dictA, sort_keys=True)
dictB_str = json.dumps(dictB, sort_keys=True)

assert dictA_str == dictB_str
1
  • 7
    works, but it's very tedious to find the difference between the two objects afterwards
    – linqu
    Jan 29, 2021 at 20:53
0
assert all(v == actual_dict[k] for k,v expected_dict.items()) and len(expected_dict) == len(actual_dict)
2
  • 5
    This is unnecessary. If two dicts are equal then necessarily their lengths will be the same, and so will be their elements. Barely dict1==dict2 does the trick. Also to be rigurous, if item per item check was neccesary, you would need to go over the nested elements too.
    – user4396006
    Aug 23, 2018 at 21:26
  • Said simple evaluation does exactly a multi-dimension-wise check, as opposed to the is operator, that solely checks for the memory pointer.
    – user4396006
    Aug 23, 2018 at 21:29
-4

your question is not very specific but with what i can understand, you are either trying to check if the length are the same

a = [1,5,3,6,3,2,4]
b = [5,3,2,1,3,5,3]

if (len(a) == len(b)):
    print True
else:
    print false

or checking if the list values are the same

import collections

compare = lambda x, y: collections.Counter(x) == collections.Counter(y)
compare([1,2,3], [1,2,3,3])
print compare #answer would be false
compare([1,2,3], [1,2,3])
print compare #answer would be true

but for dictionaries you could also use

x = dict(a=1, b=2)
y = dict(a=2, b=2)

if(x == y):
    print True
else:
    print False

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