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Why doesn't following code print anything:

#!/usr/bin/python3
class test:
    def do_someting(self,value):
        print(value)
        return value

    def fun1(self):
        map(self.do_someting,range(10))

if __name__=="__main__":
    t = test()
    t.fun1()

I'm executing the above code in Python 3. I think i'm missing something very basic but not able to figure it out.

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3 Answers 3

up vote 6 down vote accepted

map() returns an iterator, and will not process elements until you ask it to.

Turn it into a list to force all elements to be processed:

list(map(self.do_someting,range(10)))

or use collections.deque() with the length set to 0 to not produce a list if you don't need the map output:

from collections import deque

deque(map(self.do_someting, range(10)))

but note that simply using a for loop is far more readable for any future maintainers of your code:

for i in range(10):
    self.do_someting(i)
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1  
Also, the OP may just be missing a return, but it's generally not considered good practice to use map to execute a function repeatedly for side-effects (in this case print) as opposed to working with the result set... –  Jon Clements Nov 29 '12 at 10:33
    
@JonClements: The OP is playing around with the map function and created a short piece of example code to show that things didn't work as he expected, I'd say. –  Martijn Pieters Nov 29 '12 at 10:35
1  
Creating a temporary list is not the best thing, I'd say. The consume recipe may be better. –  Oleh Prypin Nov 29 '12 at 10:45
    
Also, to avoid creating unneeded list (probably large), the simplest way might be to use all built-in function: all(map(self.do_something, range(10))) - for this construct the only overhead over trivial for i in range(10): self.do_something(i) is calculating boolean value. –  MarSoft May 25 at 18:32
    
@MarSoft: the best way to consume without creating a list is to use collections.deque(iterator, maxlen=0); all() requires all values to be True; e.g. if you produce None values all() exits early. –  Martijn Pieters May 25 at 18:34

Before Python 3, map() returned a list, not an iterator. So your example would work in Python 2.7.

list() creates a new list by iterating over its argument. ( list() is NOT JUST a type conversion from say tuple to list. So list(list((1,2))) returns [1,2]. ) So list(map(...)) is backwards compatible with Python 2.7.

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I just want to add the following:

With multiple iterables, the iterator stops when the shortest iterable is exhausted [ https://docs.python.org/3.4/library/functions.html#map ]

Python 2.7.6 (default, Mar 22 2014, 22:59:56)

>>> list(map(lambda a, b: [a, b], [1, 2, 3], ['a', 'b']))
[[1, 'a'], [2, 'b'], [3, None]]

Python 3.4.0 (default, Apr 11 2014, 13:05:11)

>>> list(map(lambda a, b: [a, b], [1, 2, 3], ['a', 'b']))
[[1, 'a'], [2, 'b']]

That difference makes the answer about simple wrapping with list(...) not completely correct

The same could be achieved with:

>>> import itertools
>>> [[a, b] for a, b in itertools.zip_longest([1, 2, 3], ['a', 'b'])]
[[1, 'a'], [2, 'b'], [3, None]]
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