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Do python's variable length arguments (*args) expand a generator at function call time?

Let's say you have a function like this:

def give_me_many(*elements):
   #do something...

And you call it like that:

generator_expr = (... for ... in ... )
give_me_many(*generator_expr)

Will the elements be called lazily or will the generator run through all the possibly millions of elements before the function can be executed?

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1  
    
@thg435 I have to agree. –  erikb85 Aug 16 '12 at 12:34
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marked as duplicate by jamylak, Chris, mgilson, glglgl, csgillespie Aug 16 '12 at 12:53

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3 Answers

up vote 12 down vote accepted

no they are not:

>>> def noisy(n):
...   for i in range(n):
...     print i
...     yield i
... 
>>> def test(*args):
...   print "in test"
...   for arg in args:
...     print arg
... 
>>> test(*noisy(4))
0
1
2
3
in test
0
1
2
3
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Arguments are always passed to a function as a tuple and/or a dictionary, therefore anything passed in with *args will be converted to a tuple or **kwargs will be converted to a dictionary. If kwargs is already a dictionary then a copy is made. tuples are immutable so args doesn't need to be copied unless it changes (by including other positional arguments or removing some arguments to named positional ones), but it will be converted from any other sequence type to a tuple.

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Sounds logical, but I still don't get the connection to the question. –  erikb85 Aug 16 '12 at 12:15
1  
@erikb85, the call to tuple(..) (or dict(..)) for the conversion force the evaluation of the whole generator. –  dbaupp Aug 16 '12 at 12:19
    
Timeit seems to confirm that calling f(*some_tuple) is slightly faster than calling f(*some_list). Huh. –  Lauritz V. Thaulow Aug 16 '12 at 12:20
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The docs say that

These arguments will be wrapped up in a tuple

which means that the generator is evaluated early.

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