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I'm trying to use itertools.dropwhile to only return elements from a generator that come after the third element, but I'm having a bit of trouble:

from itertools import dropwhile

    it = (i for i in range(10,20))
    a = dropwhile(enumerate < 3, it)   
    next(a)
    TypeError: 'bool' object is not callable 

The output I'm looking for is:

[14, 15, 16, 17, 18, 19]

Can anyone explain what is wrong with my code and provide a working solution? Thanks.

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Isn't 13 also expected to appear in the output? –  Kos Aug 22 '12 at 21:50
1  
(i for i in range(10,20)) is redundant. You can iterate over range(10, 20) as is. –  J.F. Sebastian Aug 22 '12 at 22:10

4 Answers 4

up vote 5 down vote accepted

itertools provides a function that does exactly what you want and more. From the Python Standard Library,

itertools.islice(iterable[, start], stop[, step])

Make an iterator that returns selected elements from the iterable. If start is non-zero, then elements from the iterable are skipped until start is reached. Afterward, elements are returned consecutively unless step is set higher than one which results in items being skipped. If stop is None, then iteration continues until the iterator is exhausted, if at all; otherwise, it stops at the specified position.

>>> import itertools
>>> it = (i for i in range(10, 20)) # it = xrange(10, 20)
>>> a = itertools.islice(it, 4, None)
>>> list(a)
[14, 15, 16, 17, 18, 19]
share|improve this answer
    
Thanks, I didn't think to use islice. Definitely, the cleanest solution. –  turtle Aug 22 '12 at 22:10
1  
@turtle: range(10,20)[4:] or range(14, 20) is even better. Call list(result) to get a list on Python 3. –  J.F. Sebastian Aug 22 '12 at 22:13
    
@J.F.Sebastian islice is more portable because xrange(10, 20)[4:] is not supported in Python 2. I agree that, in Python 3 only, your range(10, 20)[4:] is better. –  dkim Aug 22 '12 at 22:33
    
@DeokhwanKim: the OP's code is Python 2. range(10, 20)[4:] works on Python 2 (because range returns a list). list(range(10, 20)[4:]) works on Python 3. But I see your point if you want the result to be an iterator, not a sequence. –  J.F. Sebastian Aug 22 '12 at 22:57
    
@J.F.Sebastian @turtle I get a little confused by J. F. Sebastian's last comment. My answer is based on speculation that the question is about how to get its sub-iterator from an iterator and that the (i for i in range(10, 20)) part is just a mistake that crept in during making out a small code snippet. If the final goal is just getting its sub-list from range() in Python 2, both dropwhile and islice are overkill and list slicing is absoultely a way to go as J. F. Sebastian said. –  dkim Aug 23 '12 at 1:27

The predicate argument to itertools.dropwhile should be a function that accepts a single argument, enumerate < 3 is just a statement. On Python 2.x this will always evaluate to False because "type" > "int", and on Python 3.x it will result in a TypeError: unorderable types: type() < int().

Here is how you could change your code and still use dropwhile:

>>> it = (i for i in range(10, 20))
>>> a = dropwhile(lambda i_v: i_v[0] < 4, enumerate(it))
>>> list(a)
[(4, 14), (5, 15), (6, 16), (7, 17), (8, 18), (9, 19)]

Note that enumerate has to be called on the iterable so that we can create a lambda that uses the index to determine whether or not to drop the current value, but this means the result is a list of (index, value) tuples instead of just values. I also changed the comparison to < 4 since you wanted to start at 14, which is the fourth element of it.

A better alternative is to use itertools.islice as in Deokhwan's answer.

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try that:

a = dropwhile(lambda x:x < 3, it)  

argument must be callable.

share|improve this answer
 it = (i for i in range(10,20))

This is kinda redundant, why not simply use range(10,20) (or xrange)?

Your code breaks because dropwhile expects a function as its argument and you're providing a boolean value (made by comparing function enumerate against the number 3, which is just a little bit strange!)

A solution using enumerate could look like:

a = dropwhile(lambda (i,val): i<3), enumerate(seq))

but then a is still a list of enumerated pairs (index, value).

A more efficient way could perhaps look like this:

class Counter:
    def __init__(self):
        self.n = 0

    def __call__(self):
        current = self.n
        self.n += 1
        return current

(see it in action here, it's quite simple)

then you can use it like:

c = Counter()
a = dropwhile(lambda elem: c() < 3, seq)

which allows you to achieve your goal using dropwhile. Your counter instance is called once for each element in seq and gives the next number every time.


That said, you're much better off using itertools.islice:

import itertools
a = itertools.islice(range(10, 20), 3, None)

islice allows you to do slices much like list slices (like myList[3:] in this case, from element #3 to the end), but can take any sequence as its argument.

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1  
Two arguments to the function in dropwhile won't work, in Python 2.x you could use lambda (i,val): ... but that is a SyntaxError on Python 3.x. I like the Counter approach, but would probably use itertools.count() instead of creating a new class. –  Andrew Clark Aug 22 '12 at 22:09
    
Thanks for pointing out the lack of parens, and yes, I kind of miss tuple unpacking in py3. Thanks for mentioning count too, even though I only suggested the Counter class for illustration as islice is the actual solution here. –  Kos Aug 22 '12 at 22:14

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