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Let's say I have the following list of python dictionary:

dict1 = [{'domain':'Ratios'},{'domain':'Geometry'}]

and a list like:

list1 = [3, 6]

I'd like to update dict1 or create another list as follows:

dict1 = [{'domain':'Ratios', 'count':3}, {'domain':'Geometry', 'count':6}]

How would I do this?

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4 Answers 4

up vote 9 down vote accepted
>>> l1 = [{'domain':'Ratios'},{'domain':'Geometry'}]
>>> l2 = [3, 6]
>>> for d,num in zip(l1,l2):
        d['count'] = num


>>> l1
[{'count': 3, 'domain': 'Ratios'}, {'count': 6, 'domain': 'Geometry'}]

Another way of doing it, this time with a list comprehension which does not mutate the original:

>>> from itertools import chain
>>> [dict(chain(d.items(),[('count',n)])) for d,n in zip(l1,l2)]
[{'count': 3, 'domain': 'Ratios'}, {'count': 6, 'domain': 'Geometry'}]
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Thanks. The second solution yields an error in its current form –  Harshil Parikh May 15 '12 at 2:32
    
Are you using python 3? I will probably change it to be cross compatible. –  jamylak May 15 '12 at 2:33
    
It now works in Python 3 as well if that was your issue :) –  jamylak May 15 '12 at 2:48

You could do this:

for i, d in enumerate(dict1):
    d['count'] = list1[i]
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You can do this:

# list index
l_index=0

# iterate over all dictionary objects in dict1 list
for d in dict1:

    # add a field "count" to each dictionary object with
    # the appropriate value from the list
    d["count"]=list1[l_index]

    # increase list index by one
    l_index+=1

This solution doesn't create a new list. Instead, it updates the existing dict1 list.

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Very verbose for Python but explains everything really well. –  jamylak May 15 '12 at 0:42
1  
Yes you have right! It is very verbose. But since there are other answers less verbose here, I think it would be ok to add a more explanatory solution.. –  Thanasis Petsas May 15 '12 at 0:44
    
Thank you for the detailed explanation. –  Harshil Parikh May 15 '12 at 2:32

Using list comprehension will be the pythonic way to do it.

[data.update({'count': list1[index]}) for index, data in enumerate(dict1)]

The dict1 will be updated with the corresponding value from list1.

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-1 Using a list comprehension for mutations is not pythonic. Use a simple for loop. –  jamylak Aug 7 '12 at 8:14

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