50

How can I break a list comprehension based on a condition, for instance when the number 412 is found?

Code:

numbers = [951, 402, 984, 651, 360, 69, 408, 319, 601, 485, 980, 507, 725, 547, 544,
           615, 83, 165, 141, 501, 263, 617, 865, 575, 219, 390, 984, 592, 236, 105, 942, 941,
           386, 462, 47, 418, 907, 344, 236, 375, 823, 566, 597, 978, 328, 615, 953, 345, 399,
           162, 758, 219, 918, 237, 412, 566, 826, 248, 866, 950, 626, 949, 687, 217, 815, 67,
           104, 58, 512, 24, 892, 894, 767, 553, 81, 379, 843, 831, 445, 742, 717, 958, 609, 842,
           451, 688, 753, 854, 685, 93, 857, 440, 380, 126, 721, 328, 753, 470, 743, 527]

even = [n for n in numbers if 0 == n % 2]

So functionally, it would be something you can infer this is supposed to do:

even = [n for n in numbers if 0 == n % 2 and break if n == 412]

I really prefer:

  • a one-liner
  • no other fancy libraries like itertools, "pure python" if possible (read: the solution should not use any import statement or similar)
  • 16
    itertools is pure python. – Marcin Mar 5 '12 at 19:41
  • 5
    ... itertools is Python ... Overall this sounds like a job for a normal for loop. – Felix Kling Mar 5 '12 at 19:42
  • 6
    @Flavius: Why is importing something from Python's own library not "showing off its powers"? – Steven Rumbalski Mar 5 '12 at 19:58
  • 8
    @Flavius: So you are trying to convince your colleagues that you can write something hackish and ugly in Python and that will somehow impress them? – Steven Rumbalski Mar 5 '12 at 20:18
  • 5
    @Flavius, much of the power of Python lies in its standard libraries. Would Python be "more powerful" if more of the standard library functions were built-ins instead? I think not. They're standard either way, but there would be more potential for namespace collisions if they were built-ins. Better to segregate them. – senderle Mar 19 '12 at 16:00
14
even = [n for n in numbers[:None if 412 not in numbers else numbers.index(412)] if not n % 2] 

Just took F.J.'s code above and added a ternary to check if 412 is in the list. Still a 'one liner' and will work even if 412 is not in the list.

  • 1
    If 412 is not in numbers the last element is lost if it's even. – Reinstate Monica Jun 5 '15 at 23:22
  • @WolframH fixed – Michael David Watson Jun 8 '15 at 19:30
  • 5
    Who is F.J. and where is the "code above"? Do not mistake Stack Overflow for a (conventional) forum; per the tour, answers may rise to the top or fall to the bottom. – usr2564301 Mar 9 '18 at 11:35
  • 1
    @usr2564301. I will keep that in mind. When I answered this question 6 years ago there must have been another answer that was rated above this that I improved on. – Michael David Watson Mar 9 '18 at 21:08
  • Do you still remember which answer you amended to? :) – usr2564301 Mar 9 '18 at 21:19
53

Use a function to raise StopIteration and list to catch it:

>>> def end_of_loop():
...     raise StopIteration
... 
>>> even = list(end_of_loop() if n == 412 else n for n in numbers if 0 == n % 2)
>>> print(even)
[402, 984, 360, 408, 980, 544, 390, 984, 592, 236, 942, 386, 462, 418, 344, 236, 566, 978, 328, 162, 758, 918]

For those complaining it is not a one-liner:

even = list(next(iter(())) if n == 412 else n for n in numbers if 0 == n % 2)

For those complaining it is hackish and should not be used in production code: Well, you're right. Definitely.

  • 2
    Interesting trick! Not that I'd ever use it in real code, but it's a nice observation anyway. – Sven Marnach Mar 5 '12 at 19:49
  • 13
    Or for a one-liner, replace end_of_loop() with next(iter([])). – Andrew Clark Mar 5 '12 at 20:01
  • 4
    @F.J Yes, I updated my answer a few minutes before your comment. – Reinstate Monica Mar 5 '12 at 20:04
  • 13
    This will stop working soon python.org/dev/peps/pep-0479 – Chris_Rands Apr 5 '18 at 18:44
  • 2
    @Zuza A very similar example is included in the PEP's "Examples of breakage" section. You can find it at the end. A single line workaround will no longer be possible - you'll need to define a generator function. – Sherpa Feb 6 at 22:47
43

You can use generator expressions together with itertools.takewhile():

even_numbers = (n for n in numbers if not n % 2)
list(itertools.takewhile(lambda x: x != 412, even_numbers))

Edit: I just noticed the requirement not to use any imports. Well, I leave this answer here anyway.

  • 9
    And if he really wants his one liner: [n for n in itertools.takewhile(lambda x: x != 412, numbers) if not n % 2] – Steven Rumbalski Mar 5 '12 at 19:54
14

If 412 will definitely be in the list you could use this:

even = [n for n in numbers[:numbers.index(412)] if not n % 2]

If you want to include 412 in the result just use numbers[:numbers.index(412)+1] for the slice.

Note that because of the slice this will be less efficient (at least memory-wise) than an itertools or for loop solution.

  • Not only because of the slice it is less efficient, it also has to make a linear search over the list. – Felix Kling Mar 5 '12 at 19:47
  • 2
    @FelixKling - Nevertheless, in a quick timeit test with the other answers shows that this is faster for the sample data provided. I would definitely expect the others to pass it as the data set increases though. – Andrew Clark Mar 5 '12 at 19:58
  • 4
    @FelixKling: The linear search for 412 is super-fast C code, while the other solutions test for 412 in Python code, some solutions calling a function (which is expensive in CPython) for every number. I'm sure this solution is faster! -- The list copy is also done in very fast C code; unless you are tight on memory there shouldn't be a performance problem. (OK, if the first number is 412 and the list has 10**6 entries, it's bad; but if 412 is the last number this solution should still be very, very fast.) – Reinstate Monica Mar 5 '12 at 20:30
  • Considering the previous comment, +1ed. – Flavius Mar 5 '12 at 21:29
14

I know this is a VERY OLD post, however since OP asked about using break inside a list-comprehension and I was also looking for something similar, I thought I would post my findings here for future reference.

While investigating break, I came across little known feature of iter as iter(callable, sentinel) which return an iterator that "breaks" iteration once callable function value is equal to sentinel value.

>>> help(iter)
Help on built-in function iter in module __builtin__:

iter(...)
    iter(collection) -> iterator
    iter(callable, sentinel) -> iterator

    Get an iterator from an object.  In the first form, the argument must
    supply its own iterator, or be a sequence.
    In the second form, the callable is called until it returns the sentinel.

Tricky part here is defining a function that would fit given problem. In this case first we need to convert given list of numbers to an iterator using x = iter(numbers) which feeds as external variable into lambda function.

Next, our callable function is just a call to the iterator to spit out next value. The iterator then compares with our sentinel value (412 in this case) and "breaks" once that value is reached.

print [i for i in iter(lambda x=iter(numbers): next(x),412) if i %2 == 0]

>>> 
[402, 984, 360, 408, 980, 544, 390, 984, 592, 236, 942, 386, 462, 418,  
 344, 236, 566, 978, 328, 162, 758, 918]
  • Can you have it stop after hitting value, rather than before? – Elliptica Jun 22 '18 at 0:38
  • I do not believe so. This arrangement by definition "breaks" iteration once callable function value is equal to sentinel value. You may want to look at @ WolframH solution and modify function to suite your needs. – Anil_M Jun 25 '18 at 15:39
  • One can always add 'hitting value' manually: + [412] – Aivar Paalberg Feb 10 at 9:41
4

The syntax for list displays (including list comprehensions) is here: http://docs.python.org/reference/expressions.html#list-displays

As you can see, there is no special while or until syntax. The closest you can get is:

even_numbers = (n for n in numbers if 0 == n % 2)
list(itertools.takewhile(lambda x: x != 412, even_numbers))

(Code taken from Sven Marnach's answer, posted while I was typing this).

  • 5
    I didn't downvote, but I assume it's because you took the code from someone else. At least you admitted it. I'll upvote it. – CoffeeRain Mar 5 '12 at 19:59
0

another sneaky one-line solution to solve breaking in list comprehension, with the help of end condition.

without using numbers.index(412), maybe a little bit faster?

even = [n for end in [[]] for n in numbers
        if (False if end or n != 412 else end.append(42))
        or not end and not n % 2]

Note: This is a bad idea. just for fun : )

as @WolframH said:

For those complaining it is hackish and should not be used in production code: Well, you're right. Definitely.

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