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I have made a generator to read a file word by word and it works nicely.

def word_reader(file):
    for line in open(file):
        for p in line.split():
            yield p

reader = word_reader('txtfile')
next(reader)

What is the easiest way of getting the n next values in a list?

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3 Answers 3

up vote 15 down vote accepted
list(itertools.islice(it, 0, n, 1))
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1  
The step value defaults to one so can be left out: list(itertools.islice(it, 0, n)) –  Dave Kirby Nov 11 '10 at 8:08
2  
@Dave Yes, indeed. Also the 0 can be left out as it is optional. –  Peter Smit Nov 11 '10 at 8:11
2  
An easy way to think about the arguments of islice() is that they exactly mirror the arguments of range(): islice([start,] stop[, step]) (with the limitation that step > 0) –  Beni Cherniavsky-Paskin Nov 12 '10 at 10:18

EDIT: This is bad idea — it crashes when it yields less than n values, and this behaviour depends on subtle issues, so people reading such code are unlikely to understand it's precise semantics.

There is also

[next(it) for _ in range(n)]

which might(?) be clearer to people not familiar with itertools; but if you deal with iterators a lot, itertools is a worthy addition to your toolset.

What happens if next(it) was exhausted and raises StopIteration?

(i.e. when it had less than n values to yield)

When I wrote the above line a couple years ago, I probably thought a StopIteration will have the clever side effect of cleanly terminating the list comprehension. But no, the whole comprehension will crash passing the StopIteration upwards. (It'd exit cleanly only if the exception originated from the range(n) iterator.)

Which is probably not the behavior you want.

But it gets worse. The following is supposed to be equivalent to the list comprehension (especially on Python 3):

list(next(it) for _ in range(n))

It isn't. The inner part is shorthand for a generator function; list() knows it's done when it raises StopIteration anywhere.
=> This version copes safely when there aren't n values and returns a shorter list. (Like itertools.islice().)

[Executions on: 2.7, 3.4]

But that's too going to change! The fact a generator silently exits when any code inside it raises StopIteration is a known wart, addressed by PEP 479. From Python 3.7 (or 3.5 with a future import) that's going to cause a RuntimeError instead of cleanly finishing the generator. I.e. it'll become similar to the list comprehension's behaviour. (Tested on a recent HEAD build)

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1  
Yes, also nice. I think the islice solution is a bit nicer, so I will accept that one. –  Peter Smit Nov 11 '10 at 9:02
    
Of course this answer is much nicer, because it is simpler, needs no extra module to import, has less parentheses... Maybe in Python 4 slicing returns generators by default (compare to map in Py3). I'd only change i to _, to not have "unused variable" warnings in some IDEs ;). BTW, in Haskell it's called take N, which is a perfect function. –  Tomasz Gandor Dec 14 '14 at 19:21
1  
Except if n is larger then the generator's length you will get a StopIteration and a none defined variable. –  xApple Aug 7 at 17:28
    
@xApple oops, you're right! And it's confusingly different if written as list(genartor expr.). Edited to explain this, upvoted islice. –  Beni Cherniavsky-Paskin Aug 10 at 23:20
for word, i in zip(word_reader(file), xrange(n)):
    ...
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This is bad, because it consumes and extra element from the generator. Beni's answer doesn't do that. –  Tomasz Gandor Dec 14 '14 at 19:15
    
This one-off is avoided if you do for i, word in zip(xrange(n), word_reader(file)):. Though I'd prefer a reliable bug over such fragile order-dependent "fix" :-) –  Beni Cherniavsky-Paskin Dec 14 '14 at 21:56

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