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Refernece file : file.py

class requestDicts():
    dictrefA={
    "operation_module":"cbs",
    "operation_group":"xxx",
    "operation_type":"yyy"}

    dictrefB={
    "operation_module":"cbs",
    "operation_group":"xxx",
    "operation_type":"yyy1"}

    dictrefC={
    "operation_module":"cbs",
    "operation_group":"xxx1",
    "operation_type":"yyy1"}

comparefile head.py

recievedDict={
    "msg_id":100,
    "operation_module":"cbs",
    "operation_group":"xxx",
    "operation_type":"yyy1",
    "user_name":"venkat",
    "msg_length":50}

How to perform a partial compare dictionaries and return the name of the dictionary in which it matches

the expected answer above is : dictrefB

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1  
Variable name is just a reference to an object. Better create a dict of dicts here. –  Ashwini Chaudhary Apr 2 '13 at 15:02
    
Or maybe even a list of dicts ... –  mgilson Apr 2 '13 at 15:06

4 Answers 4

up vote 1 down vote accepted

Something like this looks more appropriate here, using a dict of dicts:

main_dict={
    'dictrefA':{
      "operation_module":"cbs",
      "operation_group":"xxx",
      "operation_type":"yyy"},
    'dictrefB':{
      "operation_module":"cbs",
      "operation_group":"xxx",
      "operation_type":"yyy1"},
    'dictrefC':{
      "operation_module":"cbs",
      "operation_group":"xxx1",
      "operation_type":"yyy1"}
      }

recievedDict={
    "msg_id":100,
    "operation_module":"cbs",
    "operation_group":"xxx",
    "operation_type":"yyy1",
    "user_name":"venkat",
    "msg_length":50}

for x,y in main_dict.items():
    if all(v in recievedDict.items() for v in y.items()):
        print x
        break

output:

dictrefB
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Assuming your original data, I'd create an intermediate lookup and a helper function, and go for something like:

from operator import itemgetter

key = itemgetter('operation_module', 'operation_group', 'operation_type')
lookup = {key(v): k for k,v in requestDicts.__dict__.iteritems() if isinstance(v, dict)}
print lookup[key(recievedDict)]
share|improve this answer
    
Hey, new gravitar ... –  mgilson Apr 2 '13 at 15:20
    
@mgilson yeah - fancied a change :) –  Jon Clements Apr 2 '13 at 15:28
    
I think that viewitems (or just items on py3k) is the best way to go about this. It's a little frustrating because view aren't actual sets, so I can't use issubset, but that's OK -- Tests for length works too. –  mgilson Apr 2 '13 at 15:31

UPDATE

On python2.7 and python3.x, there is a better way:

items = ((k,v) for (k,v) in requestDicts.__dict__.items() if k.startswith('dictref'))
r_items = recievedDict.viewitems()
print next(k for k,sub in items if len(sub.viewitems() & r_items) == len(sub))

The first line is just an attempt at putting your class-holding-dictionaries into a slightly more useful data-structure. The second line is simply to shorten the third line and to avoid an extra attribute-lookup/method call in the generator.

On python3.x, dict.items returns the same thing that dict.viewitems did in python2.x. I assume that 2to3 will understand that. Basically, the view returns the items as a set-like object. I get the intersection of the two sets and check to make sure that it is a complete intersection. In other words, I check to make sure that the one dictionary is a subset of the other. I don't guarantee that this is more efficient than my other answer, but it is a bit more concise (and I wouldn't be surprised if it is faster). I suppose we'd need to timeit to know.


I don't see any better way than looping to compare them:

def compare(sub,full):
    try:
        return all(sub[k] == full[k] for k in sub)
    except KeyError:
        return False  #sub's keys aren't a subset of full's keys.

Now to figure out which is the first match:

next(sub for sub in (dictrefA,dictrefB,dictrefC) if compare(sub,recievedDict))

Here's a full, concrete working example:

class requestDicts():
    dictrefA={
    "operation_module":"cbs",
    "operation_group":"xxx",
    "operation_type":"yyy"}

    dictrefB={
    "operation_module":"cbs",
    "operation_group":"xxx",
    "operation_type":"yyy1"}

    dictrefC={
    "operation_module":"cbs",
    "operation_group":"xxx1",
    "operation_type":"yyy1"}

recievedDict={
    "msg_id":100,
    "operation_module":"cbs",
    "operation_group":"xxx",
    "operation_type":"yyy1",
    "user_name":"venkat",
    "msg_length":50}


def compare(sub,full):
    try:
        return all(sub[k] == full[k] for k in sub)
    except KeyError:
        return False  #sub's keys aren't a subset of full's keys.

items = ((k,v) for (k,v) in requestDicts.__dict__.items() if k.startswith('dictref'))
print next(k for k,sub in items if compare(sub,recievedDict))
share|improve this answer
main_dict={
    'dictrefA':{
      "operation_module":"cbs",
      "operation_group":"xxx",
      "operation_type":"yyy"},
    'dictrefB':{
      "operation_module":"cbs",
      "operation_group":"xxx",
      "operation_type":"yyy1"},
    'dictrefC':{
      "operation_module":"cbs",
      "operation_group":"xxx1",
      "operation_type":"yyy1"}
      }
recieved_dict={
    "msg_id":100,
    "operation_module":"cbs",
    "operation_group":"xxx",
    "operation_type":"yyy1",
    "user_name":"venkat",
    "msg_length":50}

compare_dict = {
    "operation_module": recieved_dict["operation_module"],
    "operation_group": recieved_dict["operation_group"],
    "operation_type": recieved_dict["operation_type"],
}

matching_dict_key = [key for key, value in main_dict.items() if value == compare_dict]

print matching_dict_key[0]

Result:

$ python so.py
dictrefB

If it needs to be faster, you could make a dictionary of hashes.

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