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I have two lists:

a,b=[1,2],[33,44]

I want to explore both their minimum. But

>>> min(a,b)

returns [1, 2] as min()

With more than one argument, return the smallest of the arguments.

Same happens if I use map() as map(min,a,b)

is mostly equivalent to:

[f(x1, x2) for x1, x2 in zip(sequence1, sequence2)]

as already stated in this answer.

>>> map(min,[a,b])
[1, 33]

gives me what I want but I don't really understand why. Can someone explain?

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1 Answer 1

up vote 1 down vote accepted

The answer is in Python map documentation:

Apply function to every item of iterable and return a list of the results. If additional iterable arguments are passed, function must take that many arguments and is applied to the items from all iterables in parallel.

When you call:

map(min, a, b)

You are actually passing two iterables to map. This successively calls min(1, 33) and min(2, 44), thus returning [1, 2].

However, in:

map(min, [a, b])

There is a single iterable, and map calls min on each element of the sequence:

  • First calling min([1, 2]) which yields 1
  • Then calling min([33, 44]) which yields 33

The result, as expected, is [1, 33].

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Reading your answer this makes perfectly sense. Thanks for explaining. Is map() actually working like a generator then? –  LarsVegas Sep 5 '12 at 13:35
    
@larsvegas map() returns list in python 2.x and in python 3.x it returns a map object, which is a generator. –  undefined is not a function Sep 5 '12 at 13:54
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