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I have a following problem while trying to do some nodal analysis:

For example:

my_list=[[1,2,3,1],[2,3,1,2],[3,2,1,3]]

I want to write a function that treats the element_list inside my_list in a following way:

-The number of occurrence of certain element inside the list of my_list is not important and, as long as the unique elements inside the list are same, they are identical.

Find the identical loop based on the above premises and only keep the first one and ignore other identical lists of my_list while preserving the order.

Thus, in above example the function should return just the first list which is [1,2,3,1] because all the lists inside my_list are equal based on above premises.

I wrote a function in python to do this but I think it can be shortened and I am not sure if this is an efficient way to do it. Here is my code:

def _remove_duplicate_loops(duplicate_loop):

        loops=[]
        for i in range(len(duplicate_loop)):

            unique_el_list=[]

            for j in range(len(duplicate_loop[i])):
                if (duplicate_loop[i][j] not in unique_el_list):
                    unique_el_list.append(duplicate_loop[i][j])

            loops.append(unique_el_list[:])

        loops_set=[set(x) for x in loops]
        unique_loop_dict={}

        for k in range(len(loops_set)):
            if (loops_set[k] not in list(unique_loop_dict.values())):
                unique_loop_dict[k]=loops_set[k]

        unique_loop_pos=list(unique_loop_dict.keys())

        unique_loops=[]

        for l in range(len(unique_loop_pos)):
            unique_loops.append(duplicate_loop[l])

        return unique_loops
share|improve this question
1  
does it need to be a list? couldn't/shouldn't you use a set data structure as opposed to a list? –  Jordan Oct 23 '13 at 14:24
    
Also, Python does not use ;. –  limelights Oct 23 '13 at 14:24
    
@limelights : was playing with C# and Java before I visited python, the language I used 3 years ago for a short time. Thus got the habit of ; –  Jack_of_All_Trades Oct 23 '13 at 14:26
    
@Yoel: I am outputting the list as the loops I get from nodal analysis and came far with it. Please suggest if think there is suitable data structure for this. –  Jack_of_All_Trades Oct 23 '13 at 14:31
1  
@Jack_of_All_Trades: I was only pointing out that C#/Java conventions need to be abandoned when using another language. There are no problems with respect to declarations. I was just trying to convince you to jettison the use of semicolons. –  Steven Rumbalski Oct 23 '13 at 14:48

2 Answers 2

up vote 4 down vote accepted
from collections import OrderedDict
my_list = [[1, 2, 3, 1], [2, 3, 1, 2], [3, 2, 1, 3]]

seen_combos = OrderedDict()
for sublist in my_list:
    unique_elements = frozenset(sublist)
    if unique_elements not in seen_combos:
        seen_combos[unique_elements] = sublist
my_list = seen_combos.values()
share|improve this answer

you could do it in a fairly straightforward way using dictionaries. but you'll need to use frozenset instead of set, as sets are mutable and therefore not hashable.

def _remove_duplicate_lists(duplicate_loop):
     dupdict = OrderedDict((frozenset(x), x) for x in reversed(duplicate_loop))
     return reversed(dupdict.values())

should do it. Note the double reversed() because normally the last item is the one that is preserved, where you want the first, and the double reverses accomplish that.

edit: correction, yes, per Steven's answer, it must be an OrderedDict(), or the values returned will not be correct. His version might be slightly faster too..

edit again: You need an ordered dict if the order of the lists is important. Say your list is

[[1,2,3,4], [4,3,2,1], [5,6,7,8]]

The ordered dict version will ALWAYS return

[[1,2,3,4], [5,6,7,8]]

However, the regular dict version may return the above, or may return

[[5,6,7,8], [1,2,3,4]]

If you don't care, a non-ordered dict version may be faster/use less memory.

share|improve this answer
    
+1 for nice analysis. –  Steven Rumbalski Oct 23 '13 at 14:49
    
Thanks for the nice answer. –  Jack_of_All_Trades Oct 23 '13 at 14:54

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