229

Let's say I have a list a in Python whose entries conveniently map to a dictionary. Each even element represents the key to the dictionary, and the following odd element is the value

for example,

a = ['hello','world','1','2']

and I'd like to convert it to a dictionary b, where

b['hello'] = 'world'
b['1'] = '2'

What is the syntactically cleanest way to accomplish this?

1

12 Answers 12

306
b = dict(zip(a[::2], a[1::2]))

If a is large, you will probably want to do something like the following, which doesn't make any temporary lists like the above.

from itertools import izip
i = iter(a)
b = dict(izip(i, i))

In Python 3 you could also use a dict comprehension, but ironically I think the simplest way to do it will be with range() and len(), which would normally be a code smell.

b = {a[i]: a[i+1] for i in range(0, len(a), 2)}

So the iter()/izip() method is still probably the most Pythonic in Python 3, although as EOL notes in a comment, zip() is already lazy in Python 3 so you don't need izip().

i = iter(a)
b = dict(zip(i, i))

In Python 3.8 and later you can write this on one line using the "walrus" operator (:=):

b = dict(zip(i := iter(a), i))

Otherwise you'd need to use a semicolon to get it on one line.

3
  • 10
    … or simply zip(i, i), in Python 3, since zip() now returns an iterator. Jan 2, 2011 at 0:07
  • 5
    Note that Python 2.7.3 also has dict comprehension Aug 22, 2012 at 11:53
  • or simple like following ({'abc': a, 'def' : b} for a, b in zip(list1, list2))
    – optimists
    Mar 31, 2021 at 10:09
69

Simple answer

Another option (courtesy of Alex Martelli - source):

dict(x[i:i+2] for i in range(0, len(x), 2))

Related note

If you have this:

a = ['bi','double','duo','two']

and you want this (each element of the list keying a given value (2 in this case)):

{'bi':2,'double':2,'duo':2,'two':2}

you can use:

>>> dict((k,2) for k in a)
{'double': 2, 'bi': 2, 'two': 2, 'duo': 2}
4
  • 2
    Is this for Python 3 only?
    – Tagar
    Jul 2, 2015 at 1:18
  • 3
    use fromkeys. >>> dict.fromkeys(a, 2) {'bi': 2, 'double': 2, 'duo': 2, 'two': 2}
    – Gdogg
    Sep 7, 2017 at 17:45
  • 2
    This is doing something else than what the question is asking.
    – ozn
    Aug 29, 2018 at 22:32
  • for some reason dict.fromkeys() is making every key's value to be duplicated ( like the items i gave are all "linked" or pointing to the same place in memory ) try: a = dict.fromkeys(['op1', 'op2'], {}) and then a["op1"] = 3 you'll see that also a["op2"] was populated
    – Ricky Levi
    Nov 29, 2021 at 19:56
19

You can use a dict comprehension for this pretty easily:

a = ['hello','world','1','2']

my_dict = {item : a[index+1] for index, item in enumerate(a) if index % 2 == 0}

This is equivalent to the for loop below:

my_dict = {}
for index, item in enumerate(a):
    if index % 2 == 0:
        my_dict[item] = a[index+1]
17

Something i find pretty cool, which is that if your list is only 2 items long:

ls = ['a', 'b']
dict([ls])
>>> {'a':'b'}

Remember, dict accepts any iterable containing an iterable where each item in the iterable must itself be an iterable with exactly two objects.

3
  • quick and simple one, just to add if the list contains more than two items then use dict(ls) instead of dict([ls]). for e.g. if ls=['a', 'b', 'c', 'd'] then dict(ls) May 21, 2017 at 11:09
  • 2
    Nice & sleek. 'each item in the iterable must itself be an iterable with exactly two objects.' is the key fact here.
    – Abhijeet
    Jun 22, 2018 at 9:34
  • This really deserves more upvotes, half the answers above are the same and just say to use zip...
    – Mark
    May 1, 2021 at 15:43
5

May not be the most pythonic, but

>>> b = {}
>>> for i in range(0, len(a), 2):
        b[a[i]] = a[i+1]
5
  • 10
    read about enumerate Jan 1, 2011 at 22:34
  • 5
    enumerate doesn't let you specify a step size, but you could use for i, key in enumerate(a[::2]):. Still unpythonic since the dict constructor can do most of the work here for you Jan 1, 2011 at 22:42
  • @SilentGhost, gnibbler: thanks so much for broadening my horizons! I'll be sure to incorporate it as much as possible in the future!
    – sahhhm
    Jan 1, 2011 at 23:35
  • @gnibbler: Could you explain a little more about how the for i, key in enumerate(a[::2]): approach might work? The resulting pair values would be 0 hello and 1 1, and it's unclear to me how to use them to produce {'hello':'world', '1':'2'}.
    – martineau
    Jan 29, 2011 at 14:59
  • 1
    @martineau, you are correct. I think i must have meant enumerate(a)[::2] Jan 29, 2011 at 22:32
4

You can do it pretty fast without creating extra arrays, so this will work even for very large arrays:

dict(izip(*([iter(a)]*2)))

If you have a generator a, even better:

dict(izip(*([a]*2)))

Here's the rundown:

iter(h)    #create an iterator from the array, no copies here
[]*2       #creates an array with two copies of the same iterator, the trick
izip(*())  #consumes the two iterators creating a tuple
dict()     #puts the tuples into key,value of the dictionary
2
  • this will make a dictionary with equal key and value pairs ({'hello':'hello','world':'world','1':'1','2':'2'})
    – mik
    Apr 16, 2018 at 15:29
  • Nope, all work just fine. Please read more carefully. It says: "If you have a generator a..." If you don't have a generator, just use the first line. The second one is an alternative that would be useful if you have a generator instead of a list, as one would most of the time.
    – topkara
    Apr 19, 2018 at 1:32
1

You can also do it like this (string to list conversion here, then conversion to a dictionary)

    string_list = """
    Hello World
    Goodbye Night
    Great Day
    Final Sunset
    """.split()

    string_list = dict(zip(string_list[::2],string_list[1::2]))

    print string_list
1

I am also very much interested to have a one-liner for this conversion, as far such a list is the default initializer for hashed in Perl.

Exceptionally comprehensive answer is given in this thread -

Mine one I am newbie in Python), using Python 2.7 Generator Expressions, would be:

dict((a[i], a[i + 1]) for i in range(0, len(a) - 1, 2))

0

I am not sure if this is pythonic, but seems to work

def alternate_list(a):
   return a[::2], a[1::2]

key_list,value_list = alternate_list(a)
b = dict(zip(key_list,value_list))
0
0

try below code:

  >>> d2 = dict([('one',1), ('two', 2), ('three', 3)])
  >>> d2
      {'three': 3, 'two': 2, 'one': 1}
0

You can also try this approach save the keys and values in different list and then use dict method

data=['test1', '1', 'test2', '2', 'test3', '3', 'test4', '4']

keys=[]
values=[]
for i,j in enumerate(data):
    if i%2==0:
        keys.append(j)
    else:
        values.append(j)

print(dict(zip(keys,values)))

output:

{'test3': '3', 'test1': '1', 'test2': '2', 'test4': '4'}
0
{x: a[a.index(x)+1] for x in a if a.index(x) % 2 ==0}

result : {'hello': 'world', '1': '2'}

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