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I have a generator and would like to find out what the first value which it generates larger than X. One way to do this is as follows, but it seems rather long-winded (it reads like it repeats itself).

def long_winded(gen,X)
    n = next(gen)
    while n < X: n=next(gen)
    return n

What I wanted to write was something more simply:

short_broken(gen,X):
    while next(gen)<X: pass
    return next(gen)            # returns the SECOND value larger than X, as gen is called again
short_broken2(gen,X):
    while n = next(gen)<X: pass # Not python syntax!
    return n

Is there a pythonically-concise way to return the same result?

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2 Answers

up vote 5 down vote accepted
def short2(gen,X):
    for x in gen:
        if x > X: 
            return x

or as a 1-liner (which I prefer to the itertools variant):

def short3(gen,X):
    return next(x for x in gen if x > X)

my original answer -- left only for the sake of posterity

I'm not necessarily asserting that this method is better, but you can use a recursive function:

def short(gen,X):
    n = next(gen)
    return n if n>X else short(gen,X)
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3  
Which is elegant, but a bad idea if you're going to have generators where you have to check more than a thousand elements (or more than whatever you set your maximum recursion limit to). –  Wilduck Sep 17 '12 at 16:28
    
Ah ha! It was an obvious candidate for recursion. :) but unfortunately @Wilduck's point is a good one. –  Andy Hayden Sep 17 '12 at 16:30
    
@Wilduck's point is definitely a good one -- its why I prefaced my comment by saying "I'm not necessarily asserting that this method is better" ... which a weak way of saying -- "I doubt that I would use this in my code". –  mgilson Sep 17 '12 at 16:32
    
@hayden -- I've also added 2 other varients. –  mgilson Sep 17 '12 at 16:37
2  
@mgilson: no, I think I actually prefer yours, but I can't deny my first instinct was dropwhile. –  DSM Sep 17 '12 at 16:50
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from itertools import dropwhile

def first_result_larger_than_x(gen, X):
    return next(dropwhile(lambda n: n <= X, gen))

Note that your code examples from the OP are actually returning the first result greater than or equal to X. I've corrected that in this code example, but if that was what you actually wanted, change the <= to a <.

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Thanks, as usual itertools is the business! I did say greater than in the title (I suspected it didn't matter to much to the actual answer :) ). –  Andy Hayden Sep 17 '12 at 16:35
    
Itertools seems to be way overkill here ... next(x for x in gen if x > X) is essentially the same thing without itertools and a lambda function ... –  mgilson Sep 17 '12 at 16:38
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