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My problem is somewhat similar to this
Intersect multiple lists in a dictonary using python
I have a dictionary something like

 a=  {'t1':[{4,5},{6,7,8},{1}],
    't2':[{4,5,6},{7,8},{1,2}],
    't3':[{4,5,6,7},{8},{1,2}],
    't4':[{4},{5,6,7},{1,2,8}]}

and i want something like

b=  {'t1': [set([6, 7, 8])],
   't1,t2': [set([7, 8])],
   't1,t2,t3': [set([4, 5])],
   't1,t3,t4': [set([6, 7])],
   't1,t4': [set([6, 7])],
   't2': [set([7, 8])],
   't4': [set([1, 2, 8])]}

so far I have written this code. But I don't think it is efficient.

for key1 in sorted(a.keys()): #a is the source dictionary,b is the resulting dictionary

 if len(b)!=0:
    count=0

    for key2 in b.keys():#for all keys in b

    k=[i&j for i in a[key1] for j in b[key2]] #find all possible subsets/intersections
        for i in range(len(a[key1])): #decide to enter a[key1] values in b or not
            for j in k[i*len(b[key2]):(i+1)*len(b[key2])]: #each intersection contributes to values in k in chunks of len(b[key2])
                if len(j)==0:#if the intersection is null till the len(b[key2]) then we need to append a[key1] as it is to b
                    count=count+1 
            if count==len(b[key2]):#intersection being null till len(b[key2]_
                if key1 not in b.keys():#if key1 is not in b then create the key
                    b[key1]=[]
                if a[key1][i] not in b[key1] and len(a[key1][i])!=1:
                    b[key1].append(a[key1][i])
                count=0#make count 0 for next b[key1] iteration

        k=[j for j in k if len(j)>1]#len(j)>1 => Min(O) in the intersection is greater than or equal to 2
    if len(k)==0:#if not intersection, pass
        pass
    else:
        try:
             b['%s%s%s' %(key2,',',key1)]=k
        except KeyError:
          b['%s%s%s' %(key2,',',key1)]=[]
        for i in k:#after appending elements to key2,key1 intersection, check if the same value is present in a[key2], if present, remove them
            if i in b[key2]:
                 b[key2].remove(i)
            if len(b[key2])==0:#if they list gets empty in b, delete the list
                 del b[key2]
  else:
#first time no entry in b, so enter complete 't1' values in b
    b[key1]=a[key1]

If i develop a test case, and in each key of 'a' if there are suppose 50 elements in each set, then it takes roughly 5 minutes. Can the above code be optimized or is there any other way to tackle the problem? can anybody please help?

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5  
How does your input transform into the output? –  Blender Mar 24 '13 at 8:13
    
Your input a does not match your output b in an obvious way. For example, in a, you have the pair: 't1':[{4,5},{6,7,8},{1}] which is three sets for key t1. But in b you have only one of those sets: 't1': [set([6, 7, 8])] and it's not clear how or why you chose {6,7,8} instead of {4,5} or {1}. –  askewchan Mar 25 '13 at 17:04
    
can you please follow here? stackoverflow.com/questions/15525817/… –  user2179627 Mar 25 '13 at 17:36

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