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I have a list [5, 90, 23, 12, 34, 89] etc where every two values should be a (ranked) list in the dictionary.

So the list above would become {1: [5, 90], 2: [23, 12], 3: [34, 89]} etc. I've gotten close with list comprehension but haven't cracked it. I tried:

my_list = [5, 90, 23, 12, 34, 89]
my_dict = dict((i+1, [my_list[i], my_list[i+1]]) for i in xrange(0, len(my_list)/2))

Which works for the first key, but all following values are off by one index. How would you do this?

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1 Answer

up vote 6 down vote accepted

You left a multiple of 2:

dict( (i+1, my_list[2*i : 2*i+2]) for i in xrange(0, len(my_list)/2) )
#                   ^

BTW, you could do this instead (with Python ≥2.6 or Python ≥3.0):

>>> it = iter(my_list)
>>> dict(enumerate(zip(it, it), start=1))
{1: (5, 90), 2: (23, 12), 3: (34, 89)}

(of course, remember to use itertools.izip instead of zip in Python 2.x)

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Perfect, thank you. Is there an advantage to the iter approach? –  Ian Sep 9 '10 at 17:54
    
IMHO, the second approach is more Pythonic, but suffers in readability when read by someone not familiar with Python. But it's still pretty cool. –  Jesse Dhillon Sep 9 '10 at 17:58
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