13

I have a tuple of tuples and I want to put the first value in each of the tuples into a set. I thought using map() would be a good way of doing this the only thing is I can't find an easy way to access the first element in the tuple. So for example I have the tuple ((1,), (3,)). I'd like to do something like set(map([0], ((1,), (3,)))) (where [0] is accessing the zeroth element) to get a set with 1 and 3 in it. The only way I can figure to do it is to define a function: def first(t): return t[0]. Is there anyway of doing this in one line without having to declare the function?

  • 3
    You could use a lambda, if you fancy map more than a list comprehension, lambda x: x[0]. – Skurmedel May 13 '11 at 23:51
  • If you don't want lambda, you can use itemgetter(0) along with map. – riza May 14 '11 at 2:27
17

Use a list comprehension:

data = ((1,), (3,))
print [x[0] for x in data]
  • Using the itemgetter (per Steve Howard's answer) is arguably the better as it was designed specifically for this purpose. – Aaron Torgerson Dec 4 '15 at 15:26
  • @AaronTorgerson, I don't agree. I think this is more readable as it uses python syntax to express it rather then a special object. – Winston Ewert Dec 4 '15 at 19:02
  • Context matters. If I want to sort by a tuple element, using itemgetter beats writing a lambda – sehe Jun 29 '18 at 1:09
12
from operator import itemgetter
map(itemgetter(0), ((1,), (3,)))

While the list comprehensions are generally more readable, itemgetter is closest to what he asked for.

Timing information:

>>> from timeit import Timer
>>> mapped = Timer(setup='from operator import itemgetter\nlst=( ("a",), ("b",), (1,), (2,))', stmt='map(itemgetter(0), lst)')
>>> comprehended = Timer(setup='lst=( ("a",), ("b",), (1,), (2,))', stmt='[i[0] for i in lst]')
>>> comprehended.repeat()
[0.5402599483924249, 0.47599876684973275, 0.48340872102501464]
>>> mapped.repeat()
[0.4333492937609478, 0.31100689245737456, 0.3106918944053909]
  • Thanks Steve for the info. I probably should have just asked for the fastest method. I timed them and it turns out list comprehension is almost twice as fast as map. I only know the real basics of python so I'm sure there is a good reason why. – blcArmadillo May 14 '11 at 0:01
  • EDIT: Timing added to original post for formatting. Note that the comprehension is actually slightly slower. – Steve Howard May 14 '11 at 0:06
4
mySet = set(x[0] for x in TUPLES)

or in python3:

mySet = {x[0] for x in TUPLES}
2

You can use a set comprehension in Python 2.7 and 3.x:

>>> t = ((1,), (3,))
>>> s = {x[0] for x in t}
>>> s
set([1, 3])

or in Python < 2.7:

>>> s = set([x[0] for x in t])
>>> s
set([1, 3])
2

Just another way to get it:

set(x for x, in data)
2
data = ((1,), (3,))
s = set(zip(*data)[0])

If there are more items in your tuples you might save some memory and time using izip and islice.

2

Python supports the creation of anonymous function using the lambda keyword. This allows you to use a function without formally defining it. Given your example, you'd use the lambda like this:

data = ((1,), (3,))
set(map(lambda x: x[0], data))

This is equivalent to:

def f(x):
    return x[0]

set(map(f, data))

But as other people have said, list comprehensions are preferred over the use of map.

  • 2
    I totally copy pasted from @Winston – zeekay May 13 '11 at 23:52
  • If I could have stolen the whole answer, I would have! – zeekay May 14 '11 at 0:02
1

Go with @Winston. List comprehensions are great. If you really want to use map, use a lambda as previously suggested, or the logically equivalent...

from operator import itemgetter
data = ((1,), (3,))
map(itemgetter(0), data)

This is just for info; You should use the list comp

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.