43

I am newbie to python and need to convert a list to dictionary. I know that we can convert list of tuples to dictionary.

This is the input list:

L = [1,term1, 3, term2, x, term3,... z, termN]

and I want to convert this list to a list of tuples (OR to a dictionary) like this:

[(1, term1), (3, term2), (x, term3), ...(z, termN)]

How can we do that easily python?

  • 1
    for dict you can simply use dict(zip(*[iter(L)]*2)) – Grijesh Chauhan Apr 25 '14 at 7:27
86
>>> L = [1, "term1", 3, "term2", 4, "term3", 5, "termN"]
# Create an iterator
>>> it = iter(L)
# zip the iterator with itself
>>> zip(it, it)
[(1, 'term1'), (3, 'term2'), (4, 'term3'), (5, 'termN')]

You want to group three items at a time?

>>> zip(it, it, it)

You want to group N items at a time?

# Create N copies of the same iterator
it = [iter(L)] * N
# Unpack the copies of the iterator, and pass them as parameters to zip
>>> zip(*it)
  • 1
    Could someone explain what zip is doing in this context? I thought I understood how it works but apparently not, since this doesn't give [(1,1,1),('term1','term1','term1'),...] – user1717828 Aug 11 '17 at 19:37
  • 3
    @user1717828 every time you access the iterator it advances the position. Zip is pairing two things, taken from the same iterator here. If you wrote zip(iter(L), iter(L), iter(L)) it would do that, but by breaking out the iter creation and sharing it you get this behaviour. – Flexo Aug 25 '17 at 13:47
12

Try with the group clustering idiom:

zip(*[iter(L)]*2)

From https://docs.python.org/2/library/functions.html:

The left-to-right evaluation order of the iterables is guaranteed. This makes possible an idiom for clustering a data series into n-length groups using zip(*[iter(s)]*n).

  • Ok, I think I understood your code, It is same as @thefourtheye's answer except you use * 2 to make two copies. I can also write is as zip(*(iter(L),) * 2). – Grijesh Chauhan Apr 25 '14 at 7:12
  • @GrijeshChauhan Yes, it is a shortened form of the same solution – Pablo Francisco Pérez Hidalgo Apr 25 '14 at 7:15
  • Thanks, its very interesting that your code is just 17 bytes long :) – Grijesh Chauhan Apr 25 '14 at 7:19
8

List directly into a dictionary using zip to pair consecutive even and odd elements:

m = [ 1, 2, 3, 4, 5, 6, 7, 8 ] 
d = { x : y for x, y in zip(m[::2], m[1::2]) }

or, since you are familiar with the tuple -> dict direction:

d = dict(t for t in zip(m[::2], m[1::2]))

even:

d = dict(zip(m[::2], m[1::2]))
5

Using slicing?

L = [1, "term1", 2, "term2", 3, "term3"]
L = zip(L[::2], L[1::2])

print L
3
[(L[i], L[i+1]) for i in xrange(0, len(L), 2)]
  • Hey getting, Traceback (most recent call last): File "ab.py", line 105, in <module> print [(L[i], L[i+1]) for i in xrange(0, len(L), 2)] IndexError: list index out of range – user3401408 Apr 25 '14 at 7:10
  • could you show me the L list. – Xing Fei Apr 25 '14 at 7:16
  • @trex you are trying with odd length L, according to your question I think you should have even length L this will work on Python2.X in Python3.x you should use range instead of xrange – Grijesh Chauhan Apr 25 '14 at 7:22
  • @GrijeshChauhan I am using python2.7, so I use xrange. in python2, xrange is a generator and range returns a list. for a big number n, python2's range(n) will consume many memory. In python3, range is the generator, and xrange no more exists. – Xing Fei Apr 25 '14 at 7:29
  • XingFei yes I understand the issue I just means to respond @trex to suggest how to make it execute without error. – Grijesh Chauhan Apr 25 '14 at 7:31
2

Try this ,

>>> L = [1, "term1", 3, "term2", 4, "term3", 5, "termN"]
>>> it = iter(L)
>>> [(x, next(it)) for x in it ]
[(1, 'term1'), (3, 'term2'), (4, 'term3'), (5, 'termN')]
>>> 

OR

>>> L = [1, "term1", 3, "term2", 4, "term3", 5, "termN"]
>>> [i for i in zip(*[iter(L)]*2)]
[(1, 'term1'), (3, 'term2'), (4, 'term3'), (5, 'termN')]

OR

>>> L = [1, "term1", 3, "term2", 4, "term3", 5, "termN"]
>>> map(None,*[iter(L)]*2)
[(1, 'term1'), (3, 'term2'), (4, 'term3'), (5, 'termN')]
>>> 
1

The below code will take care of both even and odd sized list :

[set(L[i:i+2]) for i in range(0, len(L),2)]

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