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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 13 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

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.

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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
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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