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One of my unittests checks to see if a range is set up correctly after reading a log file, and I'd like to just test var == range(0,10). However, range(0,1) == range(0,1) evaluates to False in Python 3.

Is there a straightforward way to test the equivalence of ranges in Python 3?

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2  
Why are you comparing two ranges? –  Steven Rumbalski Oct 12 '11 at 14:34
    
My unittest just asserts that the range was correctly constructed. In the program, instead of storing min & max acceptable values, I store the range then test if val in range. –  oneporter Oct 13 '11 at 0:34

4 Answers 4

up vote 10 down vote accepted

In Python3, range returns an iterable of type range. Two ranges are equal if and only if they are identical (i.e. share the same id.) To test equality of its contents, convert the range to a list:

list(range(0,1)) == list(range(0,1))

This works fine for short ranges. For very long ranges, Charles G Waldman's solution is better.

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@oneporter: Be warned that this consumes the iterator and you will not be able to reconsume it later. –  Steven Rumbalski Oct 12 '11 at 14:36
2  
@StevenRumbalski: Since range objects are iterables and not iterators, they can't be "consumed". You can iterate over them multiple times. –  Sven Marnach Oct 12 '11 at 14:56
2  
@Sven Marnach. Excellent. Thanks for the correction. –  Steven Rumbalski Oct 12 '11 at 15:11

The first proposed solution - use "list" to turn the ranges into lists - is ineffecient, since it will first turn the range objects into lists (potentially consuming a lot of memory, if the ranges are large), then compare each element. Consider e.g. a = range(1000000), the "range" object itself is tiny but if you coerce it to a list it becomes huge. Then you have to compare one million elements.

Answer (2) is even less efficient, since the assertItemsEqual is not only going to instantiate the lists, it is going to sort them as well, before doing the elementwise comparison.

Instead, since you know the objects are ranges, they are equal when their strides, start and end values are equal. E.g.

ranges_equal = len(a)==len(b) and (len(a)==0 or a[0]==b[0] and a[-1]==b[-1])

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3  
This will not work if the ranges step. For example range(1,20,2) and range(1,20) would be equivalent. –  krs1 Oct 12 '11 at 14:55
    
Good point krs1. I think that my approach could be fixed by also comparing the len() of the ranges .... ranges_equal = (len(a)==len(b) and a[0]==b[0] and a[-1]==b[-1]) –  Charles G Waldman Oct 12 '11 at 15:05
    
Or, if avoid problems with empty ranges: ranges_equal = len(a)==len(b)==0 or len(a)==len(b) and a[0]==b[0] and a[-1]==b[-1] –  Charles G Waldman Oct 12 '11 at 15:11
    
I'm not so sure I think range(0,0) is necessarily equal to range(100,100), even if both ranges are empty. I guess It depends on what you are doing with them... –  IfLoop Oct 12 '11 at 15:32
    
Well, to me they are both just different ways of spelling "empty". But if this matters, note that all of the other suggestions also fail to distinguish these cases. If this mattered, you could do ranges_equal = str(a)==str(b) –  Charles G Waldman Oct 12 '11 at 15:54

Try assertItemsEqual, (in the docs):

class MyTestCase(unittest.TestCase):
    def test_mytest(self):
        a = (0,1,2,3,4)
        self.assertItemsEqual(a, range(0,4))
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Note that assertItemsEqual is not available in py3, which is what the OP is asking for. –  jmagnusson Oct 28 '13 at 20:46

Another way to do it:

ranges_equal = str(a)==str(b)

The string representation indicates the start, end and step of ranges.

This question makes me think that perhaps Python should provide a way to get these attributes from the range object itself!

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