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When writing test cases, I often need to assert that two list contain the same elements without regard to their order.

I have been doing this by converting the lists to sets.

Is there any simpler way to do this?

EDIT:

As @MarkDickinson pointed out, I can just use TestCase.assertItemsEqual.

Notes that TestCase.assertItemsEqual is new in Python2.7. If you are using an older version of Python, you can use unittest2 - a backport of new features of Python 2.7.

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1  
Simpler than set(x) == set(y)? How much simpler can you get? – cdhowie Oct 10 '12 at 6:58
5  
@cdhowie: This will fail when there are redundant elements in the lists. – inspectorG4dget Oct 10 '12 at 7:00
2  
@inspectorG4dget It's not clear from the original question whether that should be a failure case or not. – cdhowie Oct 10 '12 at 7:01
18  
If you're unit testing, what's wrong with TestCase.assertItemsEqual? – Mark Dickinson Oct 10 '12 at 7:22
2  
@MarkDickinson "without regard to their order". – glglgl Oct 10 '12 at 7:54
up vote 16 down vote accepted

Slightly faster version of the implementation (If you know that most couples lists will have different lengths):

def checkEqual(L1, L2):
    return len(L1) == len(L2) and sorted(L1) == sorted(L2)

Comparing:

>>> timeit(lambda: sorting([1,2,3], [3,2,1]))
2.42745304107666
>>> timeit(lambda: lensorting([1,2,3], [3,2,1]))
2.5644469261169434 # speed down not much (for large lists the difference tends to 0)

>>> timeit(lambda: sorting([1,2,3], [3,2,1,0]))
2.4570400714874268
>>> timeit(lambda: lensorting([1,2,3], [3,2,1,0]))
0.9596951007843018 # speed up
share|improve this answer
    
Your speedup comes from (1) no branching (valid), (2) a len check before sorting. The len check is O(n) and only helps in cases when it returns False. Else, it hurts the actual runtime (not complexity) by adding two linear passes (one on each of L1 and L2). Thus while the runtime complexity is still O(nlogn) (from sorting), the O(n) will hurt the number of seconds it takes for this function to return – inspectorG4dget Oct 10 '12 at 7:16
    
@inspectorG4dget, add comparison (without branching difference) – defuz Oct 10 '12 at 7:25
1  
This is exactly what I meant. Yours is actually a better solution if OP knows a priori that most of the pairs of lists that he compares will be of unequal length – inspectorG4dget Oct 10 '12 at 7:27
11  
@inspectorG4dget: len() has O(1) complexity (constant time). There is no pass to get the value. – pepr Oct 10 '12 at 7:30
    
@pepr: you're right! I was not aware of that. Thank you for clarifying – inspectorG4dget Oct 10 '12 at 7:32

As of Python 3.2 unittest.TestCase.assertItemsEqual has been replaced by unittest.TestCase.assertCountEqual which does exactly what you are looking for, as you can read from the python standard library documentation. The method is somewhat misleadingly named but it does exactly what you are looking for.

a and b have the same elements in the same number, regardless of their order

Here a simple example which compares two lists having the same elements but in a different order.

  • using assertCountEqual the test will succeed
  • using assertListEqual the test will fail due to the order difference of the two lists

Here a little example script.

import unittest


class TestListElements(unittest.TestCase):
    def setUp(self):
        self.expected = ['foo', 'bar', 'baz']
        self.result = ['baz', 'foo', 'bar']

    def test_count_eq(self):
        """Will succeed"""
        self.assertCountEqual(self.result, self.expected)

    def test_list_eq(self):
        """Will fail"""
        self.assertListEqual(self.result, self.expected)

if __name__ == "__main__":
    unittest.main()
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Converting your lists to sets will tell you that they contain the same elements. But this method cannot confirm that they contain the same number of all elements. For example, your method will fail in this case:

L1 = [1,2,2,3]
L2 = [1,2,3,3]

You are likely better off sorting the two lists and comparing them:

def checkEqual(L1, L2):
    if sorted(L1) == sorted(L2):
        print "the two lists are the same"
        return True
    else:
        print "the two lists are not the same"
        return False

Note that this does not alter the structure/contents of the two lists. Rather, the sorting creates two new lists

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What is a proper name for this if I'm going to encapsulate it in a function? – satoru Oct 10 '12 at 7:03
    
"abstract/encapsulate into a function". Answer edited to abstract my code into a function – inspectorG4dget Oct 10 '12 at 7:04
3  
In my shop we use 'assertElementsEqual', makes sense to us. – aychedee Oct 10 '12 at 7:12

Given

l1 = [a,b]
l2 = [b,a]

In Python >= 3.0

assertCountEqual(l1, l2) # True

In Python >= 2.7, the above function was named:

assertItemsEqual(l1, l2) # True

In Python < 2.7

import unittest2
assertItemsEqual(l1, l2) # True
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Needs ensure library but you can compare list by:

ensure([1, 2]).contains_only([2, 1])

This will not raise assert exception. Documentation of thin is really thin so i would recommend to look at ensure's codes on github

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