Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Imagine I have these python lists:

keys = ['name', 'age']
values = ['Monty', 42, 'Matt', 28, 'Frank', 33]

Is there a direct or at least a simple way to produce the following list of dictionaries ?

[
    {'name': 'Monty', 'age': 42},
    {'name': 'Matt',  'age': 28},
    {'name': 'Frank', 'age': 33}
]
share|improve this question

8 Answers 8

up vote 13 down vote accepted

Here is the zip way

def mapper(keys, values):
    n = len(keys)
    return [dict(zip(keys, values[i:i + n]))
            for i in range(0, len(values), n)]
share|improve this answer
    
Using l (lowercase ell) as a variable name is mortal pep8 violation. Your Pythoning license is hereby revoked! ;) –  ddaa Oct 28 '08 at 19:45
    
Thank you Toni ! would you marry me !? I mark your answer as accepted, as it is (right now) the simplest and easy to read IMHO. –  Guido García Oct 28 '08 at 20:05
    
Use zip and the step portion of the slice operator to put this all into one list comprehension: [dict(zip(keys, a)) for a in zip(values[::2], values[1::2])] –  jblocksom Oct 28 '08 at 20:11
    
@jblocksom: it is just one list comprehension. Your way does not account for more (or less) then two keys. @ddaa: :P @guido: glad to help –  Toni Ruža Oct 28 '08 at 21:17
    
Oh yeah, I see that now Toni. Nice! –  jblocksom Oct 29 '08 at 2:01

It's not pretty but here's a one-liner using a list comprehension, zip and stepping:

[dict(zip(keys, a)) for a in zip(values[::2], values[1::2])]
share|improve this answer
    
It works only for len(keys) == 2. –  J.F. Sebastian Nov 17 '08 at 23:45

Dumb way, but one that comes immediately to my mind:

def fields_from_list(keys, values):
    iterator = iter(values)
    while True:
        yield dict((key, iterator.next()) for key in keys)

list(fields_from_list(keys, values)) # to produce a list.
share|improve this answer
    
This doesn't actually create the list but just yields the elements. –  David Locke Oct 28 '08 at 19:24
    
ok, lets modify it a bit. –  Cheery Oct 28 '08 at 19:28
    
Just use list(fields_from_list(keys, values)) –  Markus Jarderot Oct 28 '08 at 19:37

zip nearly does what you want; unfortunately, rather than cycling the shorter list, it breaks. Perhaps there's a related function that cycles?

$ python
>>> keys = ['name', 'age']
>>> values = ['Monty', 42, 'Matt', 28, 'Frank', 33]
>>> dict(zip(keys, values))
{'age': 42, 'name': 'Monty'}

/EDIT: Oh, you want a list of dict. The following works (thanks to Peter, as well):

from itertoos import cycle

keys = ['name', 'age']
values = ['Monty', 42, 'Matt', 28, 'Frank', 33]

x = zip(cycle(keys), values)
map(lambda a: dict(a), zip(x[::2], x[1::2]))
share|improve this answer
    
You're right, a zip-like function that cycles would do the trick. –  Guido García Oct 28 '08 at 19:34
    
itertools.cycle will repeat a sequence. So dict(zip(itertools.cycle(keys), values)) should do it. –  Peter Hosey Oct 28 '08 at 19:54
    
Peter, thank you but I've just tried it with no success. It returns {'age': 33, 'name': 'Frank'} –  Guido García Oct 28 '08 at 20:01

In the answer by Konrad Rudolph

zip nearly does what you want; unfortunately, rather than cycling the shorter list, it breaks. Perhaps there's a related function that cycles?

Here's a way:

keys = ['name', 'age']
values = ['Monty', 42, 'Matt', 28, 'Frank', 33]
iter_values = iter(values)
[dict(zip(keys, iter_values)) for _ in range(len(values) // len(keys))]

I will not call it Pythonic (I think it's too clever), but it might be what are looking for.

There is no benefit in cycling the keys list using itertools.cycle(), because each traversal of keys corresponds to the creation of one dictionnary.

EDIT: Here's another way:

def iter_cut(seq, size):
    for i in range(len(seq) / size):
        yield seq[i*size:(i+1)*size]

keys = ['name', 'age']
values = ['Monty', 42, 'Matt', 28, 'Frank', 33]
[dict(zip(keys, some_values)) for some_values in iter_cut(values, len(keys))]

This is much more pythonic: there's a readable utility function with a clear purpose, and the rest of the code flows naturally from it.

share|improve this answer
    
I've changed '/' -> '//'. Thus the code became Python 3.0 and from __future__ import division compatible. –  J.F. Sebastian Nov 17 '08 at 23:52

Here's my simple approach. It seems to be close to the idea that @Cheery had except that I destroy the input list.

def pack(keys, values):
  """This function destructively creates a list of dictionaries from the input lists."""
  retval = []
  while values:
    d = {}
    for x in keys:
      d[x] = values.pop(0)
    retval.append(d)
  return retval
share|improve this answer

Yet another try, perhaps dumber than the first one:

def split_seq(seq, count):
    i = iter(seq)
    while True:
        yield [i.next() for _ in xrange(count)]

>>> [dict(zip(keys, rec)) for rec in split_seq(values, len(keys))]
[{'age': 42, 'name': 'Monty'},
 {'age': 28, 'name': 'Matt'},
 {'age': 33, 'name': 'Frank'}]

But it's up to you to decide whether it's dumber.

share|improve this answer
[dict(zip(keys,values[n:n+len(keys)])) for n in xrange(0,len(values),len(keys)) ]

UG-LEEE. I'd hate to see code that looks like that. But it looks right.

def dictizer(keys, values):
   steps = xrange(0,len(values),len(keys))
   bites = ( values[n:n+len(keys)] for n in steps)
   return ( dict(zip(keys,bite)) for bite in bites )

Still a little ugly, but the names help make sense of it.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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