2
Dict = {'w1': 56, 'w2': 19, 'w3': 77, 'w4': 45, 'w5': 31}
myWords = ['w1','w4','w5']

OutputList=[]
for items in myWords:
    tmps = Dict[items]
    OutputList.append(tmps)

My question is can we, without using for loop, collect the values (output) from a dictionary with a particular list ("myWord")?

  • 2
    Why do you want to avoid using a for-loop? – Shashank May 15 '15 at 2:45
  • 10
    Do not use variables with an upper case name! Do not reuse the name of built-ins with only a changed capitalization! – kay is disappointed in SE May 15 '15 at 3:05
  • 21
    Not sure how you managed it, but it looks like you uncovered a bug. You cannot normally mark more than one answer as 'accepted' (you are supposed to pick the one that helped you the most). Yet here we are, with two answers marked as accepted.. See How did this question get two accepted answers? – Martijn Pieters May 15 '15 at 9:42
19

This is what operator.itemgetter is for:

>>> import operator
>>> Dict = {'w1': 56, 'w2': 19, 'w3': 77, 'w4': 45, 'w5': 31}
>>> myWords = ['w1','w4','w5']
>>> operator.itemgetter(*myWords)(Dict)
[56, 45, 31]
  • Hi, Chepner If the dict is large said len(Dict.keys()) = 1048576, and my list about 10000, so the operator.itemgetter can improve the performance when compare to For loop ? – Chin Lim May 15 '15 at 2:54
  • You would have to test it, but I imagine itemgetter should be faster. – chepner May 15 '15 at 3:27
  • Hey chepner, nice answer. However a small suggestion .. Do add a link to the docs as it will really help those who don't know about operator.itemgetter – Bhargav Rao May 15 '15 at 8:48
  • 1
    Good suggestion. I've added a link to the Python 2 docs; I don't think there are any differences in the Python 3 version. – chepner May 15 '15 at 12:19
8

You can use a list comprehension:

OutputList = [Dict[x] for x in myWords]
  • Is a (for) loop implicit in a comprehension? – wwii May 15 '15 at 2:42
  • yes, either way you have to loop over the list, in Python if possible it's better to use map and the builtin functions when iterating, because those are implemented in C – Javier May 15 '15 at 2:44
  • 1
    @wwii: Just because the list comprehension syntax includes the keyword for, doesn't mean it is a "for loop". – Greg Hewgill May 15 '15 at 2:45
  • @Javier sometimes comprehensions are more efficient than using map and the other builtins. – wwii May 15 '15 at 2:45
  • 1
    @ChinLim: The relative performance of the two options depends on your environment and data. I suggest you measure the performance of each to determine which is fastest on your system. – Greg Hewgill May 15 '15 at 2:51
5

Here are benchmarks of several different methods:

from __future__ import print_function
import timeit
from operator import itemgetter

def f1(d, l):
    '''map'''
    return list(map(d.get, l))

def f2(d, l):
    '''itemgetter'''
    return itemgetter(*l)(d)

def f3(d, l):
    '''list comprehension'''
    return [d[k] for k in l]

def f4(d, l):
    '''WRONG, but map and filter'''
    return list(map(lambda k: d[k], filter(d.get, l)))

def f5(d, l):
    '''simple for loop'''
    rtr=[]
    for e in l:
        rtr.append(d[e])
    return rtr  

def f6(d, l):
    '''CORRECTED map, filter '''    
    return list(map(lambda k: d[k], filter(d.__contains__, l))) 

if __name__ == '__main__':
    s=10000000
    d={'W{}'.format(k):k for k in range(s)} 
    l=['W{}'.format(x) for x in range(0,s,4)]

    times=[]                
    for f in (f1,f2,f3,f4,f5,f6):
        times.append((f.__doc__, timeit.timeit('f(d,l)', setup="from __main__ import f, d, l", number=10)))

    for e in sorted(times, key=itemgetter(1)):
         print('{:30}{:10.3f} seconds'.format(*e))

For Python 2.7, prints:

itemgetter                         4.109 seconds
list comprehension                 4.467 seconds
map                                5.450 seconds
simple for loop                    6.132 seconds
CORRECTED map, filter             11.283 seconds
WRONG, but map and filter         11.852 seconds

Python 3.4:

itemgetter                         5.196 seconds
list comprehension                 5.224 seconds
map                                5.923 seconds
simple for loop                    6.548 seconds
WRONG, but map and filter          9.080 seconds
CORRECTED map, filter              9.931 seconds

PyPy:

list comprehension                 4.450 seconds
map                                4.718 seconds
simple for loop                    5.962 seconds
itemgetter                         7.952 seconds
WRONG, but map and filter          8.962 seconds
CORRECTED map, filter              9.909 seconds

You can see that even with a dictionary of similar size (1,000,000 elements) to what the OP states, that a simple 'for' loop is competitive with fancier methods. A list comprehension is very competitive.

You can also see that something that looks fancy is not that great.

premature optimization is the root of all evil

  • 1
    Interesting that itemgetter is actually worse in PyPy, rather than just being less optimized. – chepner May 15 '15 at 12:23
4

or to use map, if myWords contains keys the dictionary Dict, to use

OutputList = map(Dict.get, myWords)
  • Hi, Jose. If the dict is large said len(Dict.keys()) = 1048576, and my list about 10000, so the map function can improve the performance when compare to For loop ? – Chin Lim May 15 '15 at 2:46
  • @GregHewgill can you help me with this question, because I do not know – Jose Ricardo Bustos M. May 15 '15 at 2:49
  • @ChinLim, try it and see - timeit – wwii May 15 '15 at 2:51
  • this approach will include None in the OutputList if the element is not contained in the dictionary – Javier May 15 '15 at 2:51
  • @Javier, yes .... you are right, add None .... is better chepner's solution in this case – Jose Ricardo Bustos M. May 15 '15 at 2:56
2
l = ['a', 'b', 'c'] 
d = { 'a': 1, 'b': 2}
result = map(lambda x: d[x], filter(d.get, l))
print result #[1, 2]
  • Hi Javier. Thanks. What the "lamda x: d[x]" do in above example? In python help file the map (function, sequence) , is this suggestion can work on huge dictionary and large list.. Thanjs – Chin Lim May 15 '15 at 2:55
  • could you explain why the vote down? This answer the question, with a different approach – Javier May 15 '15 at 2:56
  • You're trying to obtain the values of the dictionary, Map will loop over the result of Filter, and will return a list with the first parameter (the lambda function) applied for every element resulted in filter. Try it in a Python shell, this will yield what you're expecting – Javier May 15 '15 at 2:57
  • Hi, Javier.. Ur answer is useful.. May i know the vote down refer to ? Thanks. – Chin Lim May 15 '15 at 3:00
  • 4
    This actually does not work. If you have any value in the dict d that is not truth, it will be filtered out by filter since 'get' is returning the value. – dawg May 15 '15 at 3:22

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