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Have a call to an SQL db via python that returns output in paired dictionaries within a list:

[{'Something1A':Num1A}, {'Something1B':Num1B}, {'Something2A':Num2A} ...]

I want to iterate through this list but pull two dictionaries at the same time.

I know that for obj1, obj2 in <list> isn't the right way to do this, but what is?

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up vote 2 down vote accepted

You can do this using zip with an iterator over the list:

>>> dicts = [{'1A': 1}, {'1B': 2}, {'2A': 3}, {'2B': 4}]
>>> for obj1, obj2 in zip(*[iter(dicts)]*2):
    print obj1, obj2


{'1A': 1} {'1B': 2}
{'2A': 3} {'2B': 4}
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this worked like a charm – fox Jul 21 '13 at 22:27
>>> L = [{'1A': 1},{'1B': 1},{'2A': 2}, {'2B': 2}]
>>> zip(*[iter(L)]*2)
[({'1A': 1}, {'1B': 1}), ({'2A': 2}, {'2B': 2})]
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Use zip() here.

>>> testList = [{'2': 2}, {'3':3}, {'4':4}, {'5':5}]
>>> for i, j in zip(testList[::2], testList[1::2]):
        print i, j


{'2': 2} {'3': 3}
{'4': 4} {'5': 5}

Alternative (without using zip()):

for elem in range(0, len(testList), 2):
    firstDict, secondDict = testList[i], testList[i+1]
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list slicing makes a whole new list. That is gonna take extra spaces. Better use index. Check my code. – rnbcoder Jul 21 '13 at 19:51
2  
Your code prints ({'2': 2}, {'3': 3})\n({'3': 3}, {'4': 4}), you need to change it to for i in range(0, len(testList), 2): print(testList[i],testList[i+1]) – Sukrit Kalra Jul 21 '13 at 19:58
    
oops ! Time to take a nap I guess ! :D You might want to take down your down vote. – rnbcoder Jul 21 '13 at 20:13
    
Wasn't my downvote. :) I added the fix here. – Sukrit Kalra Jul 21 '13 at 20:19
    
Man ! these guys don't even leave comments why they have downvoted ! anyway @Sukrit thanks for pointing out my bug. – rnbcoder Jul 21 '13 at 20:21

http://docs.python.org/2/library/itertools.html

Look for 'grouper', you'd use n=2.

import itertools
def grouper(iterable, n, fillvalue=None):
    "Collect data into fixed-length chunks or blocks"
    # grouper('ABCDEFG', 3, 'x') --> ABC DEF Gxx
    args = [iter(iterable)] * n
    return itertools.izip_longest(fillvalue=fillvalue, *args)
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1  
I'm pretty sure he wants (1A, 1B), (2A, 2B), etc., not (1A, 1B), (1B, 2A), etc. – user2357112 Jul 21 '13 at 20:01
    
Ah, yes. Thanks. Fixed. – AdamKG Jul 21 '13 at 20:20

I believe the Python idiom for grouping items in an iterable is

zip(*[iter(iterable)])*n)

Where iterable is your list of dictionaries and n is 2 if you want them in groups of 2.

The solution would then look like this.

>>> data = [{'A':1}, {'B':2}, {'C':3}, {'D':4}]
>>> for dict1, dict2, in zip(*[iter(data)]*2):
    print dict1, dict2


{'A': 1} {'B': 2}
{'C': 3} {'D': 4}
>>> 

This does not rely on slicing which means it's more memory efficient and likely faster as well since the two sequences that zip is 'zipping' in this case are being generated on the fly via iter(data), meaning one pass instead of three passes (1 for the first slice, 1 for seconds slice, 1 for zip).

If for some reason your data was very large then you probably wouldn't want to construct a whole new list of tuples which zip returns just to loop through it once. In that case you could use itertools.izip in place of zip.

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simply

in Python 2

li = [{'Something1A':10}, {'Something1B':201}, {'Something2A':405} ]
from itertools import imap
for a,b in imap(lambda x: x.items()[0], li):
    print a,b

in Python 3, map() is already a generator

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Use index to fetch two elements from the list.

testList = [{'2': 2}, {'3':3}, {'4':4}, {'5':5}]
for i in range(0,len(testList),2):
    print(testList[i],testList[i+1])
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