Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Writing some test cases and my mind wanders, assuming there is a better way to write something like this. I have a list, its numbers transition from all odd values to all even, doesn't matter where. I need to assert this is the case, here's what I came up with:

values = [1, 3, 5, 7, 5, 3, 5, 3, 5, 7, 4, 6, 8, 4, 2, 2, 8, 6]

# find all the indexes of odd and even values
odds = [i for (i, v) in enumerate(values) if v % 2 == 1]
evens = [i for (i, v) in enumerate(values) if v % 2 == 0]

# indexes should be a continuous sequence: 0, 1, 2, 3 ... n
assert odds + evens == range(evens[-1] + 1)

Seems like a long way to go. Suggestions on how this could be reduced?

share|improve this question
1  
Yeah, sorry about that, replaced with v % 2 == 0, ugly but self-contained. –  Nick Veys Apr 21 '11 at 0:21

10 Answers 10

up vote 6 down vote accepted
[x for x in values if x % 2 == 1] + [x for x in values if x % 2 == 0] == values

This is only true, if values starts with all of it's own odd values, followed by all of its even values.

share|improve this answer
    
This answer is very easy to understand, I'll give it that. But it goes through the whole list twice, and concatenates the odd and even lists into yet another list, just to compare to the original. I found dfan's and 6502's answers more elegant (and I would guess faster as well). And dfan's answer has the additional advantage that it makes full use of the OP's original line of thinking, just short-circuits it to save time, memory, and verbosity. –  John Y Apr 21 '11 at 4:26
    
@John - I totally agree. This is not fast. Elegant for me, is easy to understand and use. I my opinion, I do almost exactly what OP does. But, instead of concatenating indexes, I concatenated the items itself and so have to compare to the original list instead of range. –  Ishtar Apr 21 '11 at 9:54
    
While not explicitly listed, performance is absolutely the least of my concerns. As John said, it does follow my line of thinking, I can't claim a lack of bias! :) –  Nick Veys Apr 21 '11 at 14:29

A possible solution is to consider that you allow only

odd->odd
odd->even
even->even

in other words the only forbidden transition is

even->odd

and this translates to

(0, 1) not in ((x%2, y%2) for x, y in zip(values, values[1:]))
share|improve this answer
    
You must also ensure that odd->even has happened. –  Ignacio Vazquez-Abrams Apr 20 '11 at 22:29
    
That's not stated in the problem... as I understand it a sequence of all odd numbers or all even numbers is valid (it's also accepted by the original code). –  6502 Apr 20 '11 at 22:34
    
The original code doesn't match the problem statement either then. "... its numbers transition from all odd values to all even ... I need to assert this is the case" –  Ignacio Vazquez-Abrams Apr 20 '11 at 22:36
    
@Ignacio - IMHO a empty list is fine too, from all odd (nothing) to all even(nothing again). And besides, it doesn't matter where, so it doesn't have to be in the list. –  Ishtar Apr 20 '11 at 22:56
2  
And that is true, all odd and all even is acceptable. Since the transition can occur anywhere, that could be never. Points for creativity. :) –  Nick Veys Apr 21 '11 at 0:23

Well, you don't need to calculate evens:

assert odds == range(len(odds))
share|improve this answer
2  
or even assert odds[-1] == len(odds)-1 if you didn't want to compare the whole list. –  dfan Apr 20 '11 at 22:27
    
I'll take an optimization, for sure. :) –  Nick Veys Apr 21 '11 at 0:26
1  
The version in the comment doesn't handle the case of an empty list of odd indexes. Correct would be assert not odds or odds[-1] == len(odds) - 1. –  6502 Apr 21 '11 at 6:26
    
@6502 Excellent point. Plus if we need to have both odds and evens in the original list, it should be assert odds and odds[-1] == len(odds)-1 and odds[-1] != len(values)-1. –  dfan Apr 21 '11 at 12:17
    
it has been clarified by the question author that the list can be all-odd or all-even (including empty) and still being acceptable (see comments in my answer for a discussion on this topic). –  6502 Apr 21 '11 at 14:59

Inspired by the clarifications and solution from @6502, this generator approach uses any() to short circuit the iteration as soon as the test fails and only fails if an even to odd transition is detected. The worst case performance is one full iteration if the test passes:

iter_val = iter(values)
assert not any(next(iter_val)%2 < v%2 for v in values[1:])

or

from itertools import izip
assert not any(i[0]%2 < i[1]%2 for i in izip(vals, vals[1:]))
share|improve this answer
(values[0] % 2) and (len(list(itertools.groupby(values, lambda x: x%2))) == 2)
share|improve this answer
3  
This is hardly Pythonic; it reads more like a Perl one-liner contest submission. –  bignose Apr 20 '11 at 23:12

Rather than collecting the indices, you can just calculate the transition point based on the assumption that all the odd values are at the start; and then check that there are no more odd values after that transition point.

Case where the assertion is true:

values = [1, 3, 5, 7, 5, 3, 5, 3, 5, 7, 4, 6, 8, 4, 2, 2, 8, 6]
odd_count = len([x for x in values if (x % 2)])
assert (not any(x for x in values[odd_count:] if (x % 2) != 0))

Case where the assertion is false:

values = [1, 3, 5, 7, 5, 3, 5, 3, 44, 5, 7, 4, 6, 8, 4, 2, 2, 8, 6]
odd_count = len([x for x in values if (x % 2)])
assert (not any(x for x in values[odd_count:] if (x % 2) != 0))
Traceback (most recent call last):
  File "<stdin>", line 1, in <module>
AssertionError
share|improve this answer
    
I had thought about that strategy but never took it anywhere, that's pretty readable too. –  Nick Veys Apr 21 '11 at 0:25
assert zip(*itertools.groupby(x%2 for x in values))[0] == (1, 0)

Or an easier to understand two-liner:

odds_and_evens = [x%2 for x in values]
assert odds_and_evens.index(0) == odds_and_evens.count(1)

If values is valid then odds_and_evens will be some number of 1 followed by only 0, so it is valid if the first 0 comes after every 1.

Both of these methods assume you need to have at least one odd followed by at least one even, which I don't think the OP has clarified.

If empty lists, all odd, or all even should be considered valid the following method works:

odds_and_evens = [x%2 for x in values]
assert odds_and_evens == sorted(odds_and_evens, reverse=True)
share|improve this answer

I think filter reads better than list comprehensions here, e.g.,

filter(isodd, values) + filter(iseven, values) == values
share|improve this answer

Another option is to sort values by parity and see if anything changed:

assert sorted(values, key=lambda x: x % 2, reverse=True) == values
share|improve this answer

Somewhat longer, but this would seem to capture all (even only, odd only, empty) in addition to requirements. It only requires one modulo and one compare on the full list. Not nearly as succinct (or clever) as Andrew's sorted answer, but faster(?) for long lists.

values= [1, 3, 5, 7, 5, 3, 5, 3, 5, 7, 2, 4, 6, 8, 10]
evenOdd = [x%2 for x in values]

try:
    evenLoc=evenOdd.index(0)
    assert evenLoc != 0
except ValueError:
    evenLoc=len(evenOdd)

try:
    badActor=evenOdd[evenLoc:].index(1)
    assert False 
except ValueError:
    pass
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.