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I have 2 lists, both of which contain same number of dictionaries. Each dictionary has a unique key. There is a match for each dictionary of the first list in the second list, that is a dictionary with a unique key exists in the other list. But the other elements of such 2 dictionaries may vary. For example:

list_1 = [{'unique_id':'001', 'key1':'AAA', 'key2':'BBB', 'key3':'EEE'}, {'unique_id':'002', 'key1':'AAA', 'key2':'CCC', 'key3':'FFF'}]
list_2 = [{'unique_id':'001', 'key1':'AAA', 'key2':'DDD', 'key3':'EEE'}, {'unique_id':'002', 'key1':'AAA', 'key2':'CCC', 'key3':'FFF'}]

I want to compare all elements of 2 matching dictionaries. If any of the elements are not equal, I want to print the none-equal elements.

Would you please help,

Thanks Best Regards

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1  
whathaveyoutried.com - Have you attempted this? If so, what code have you written? –  Lattyware Mar 23 '12 at 19:32

2 Answers 2

up vote 9 down vote accepted

Assuming that the dicts line up like in your example input, you can use the zip() function to get a list of associated pairs of dicts, then you can use any() to check if there is a difference:

>>> list_1 = [{'unique_id':'001', 'key1':'AAA', 'key2':'BBB', 'key3':'EEE'}, 
              {'unique_id':'002', 'key1':'AAA', 'key2':'CCC', 'key3':'FFF'}]
>>> list_2 = [{'unique_id':'001', 'key1':'AAA', 'key2':'DDD', 'key3':'EEE'},
              {'unique_id':'002', 'key1':'AAA', 'key2':'CCC', 'key3':'FFF'}]
>>> pairs = zip(list_1, list_2)
>>> any(x != y for x, y in pairs)
True

Or to get the differing pairs:

>>> [(x, y) for x, y in pairs if x != y]
[({'key3': 'EEE', 'key2': 'BBB', 'key1': 'AAA', 'unique_id': '001'}, {'key3': 'EEE', 'key2': 'DDD', 'key1': 'AAA', 'unique_id': '001'})]

You can even get the keys which don't match for each pair:

>>> [[k for k in x if x[k] != y[k]] for x, y in pairs if x != y]
[['key2']]

Possibly together with the associated values:

>>> [[(k, x[k], y[k]) for k in x if x[k] != y[k]] for x, y in pairs if x != y]
[[('key2', 'BBB', 'DDD')]]

NOTE: In case you're input lists are not sorted yet, you can do that easily as well:

>>> from operator import itemgetter
>>> list_1, list_2 = [sorted(l, key=itemgetter('unique_id')) 
                      for l in (list_1, list_2)]
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1  
+1 for an elegant first stage of the approach. This solution should be augmented to print the non-equal elements of each output dictionary pair to resolve the OP's question, though. –  MrGomez Mar 23 '12 at 19:38
1  
@MrGomez: Edited while you commented :) –  Niklas B. Mar 23 '12 at 19:39
3  
You are presuming that the lists are sorted already. If this is not true, then you would need to do list_1.sort(key=operator.itemgetter('unique_id')), and then again for each of the other list(s). –  Lattyware Mar 23 '12 at 19:40
1  
@alwbtc: Added to the answer. –  Niklas B. Mar 23 '12 at 19:46
1  
It's worth to mention that ZIP method will works ONLY if we have the same number of dict inside each list. –  Doomsday Dec 12 '13 at 14:28

The following compares the dictionaries and prints the non-equal items:

for d1, d2 in zip(list_1, list_2):
    for key, value in d1.items():
        if value != d2[key]:
            print key, value, d2[key]

Output: key2 BBB DDD. By using zip we can iterate over two dictionaries at a time. We then iterate over the items of the first dictionary and compare the value with the corresponding value in the second dictionary. If these are not equal, then we print the key and both values.

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How does it know that it should compare dictionaries with the same "unique_id" key? –  alwbtc Mar 23 '12 at 19:46
    
Based on the example I assumed the list with dictionaries was ordered. If that's not the case then you need to order it first by unique_id. –  Simeon Visser Mar 23 '12 at 19:48

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