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So, there is a list like

list=["one","two","ne","three"....]

I wonder, how do I compare each element of the list with others by using endswith() method? in this list, for example, list[0] endwith list[2].

I couldn't get how to make a comparison itself. I'm trying something like:

aa=list
flg=False
for i in range(len(ll)-1):
    aa.append(ll[i+1])
    if ll[i].endswith(aa[i]):
        flg=True

however, it's good only for the first element, not with each one.

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4  
How does list[2] contain list[3]? –  61612 May 4 '14 at 15:35
    
sorry, list[0] contain list[2] –  Leo May 4 '14 at 15:41
2  
How does list[0] contain list[3]? Also, what's is ll? –  61612 May 4 '14 at 15:41
    
list[0] contain list[2] –  Leo May 4 '14 at 15:42

2 Answers 2

up vote 2 down vote accepted

Using sets:

words = {"one","two","ne","three"}

[x for x in words if any(word.endswith(x) for word in words - {x})]
Out[69]: ['ne']

Basically, for each element, remove it from the words set, and then test if any of the other words in the truncated set end with that word.

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okay, seems very nice, thx, 'll check sets in pytho on the internet –  Leo May 4 '14 at 15:53

You are only doing a single pass through the list, even though you have stated your goal as "Compare each element of the list with the others". This necessitates making one traversal of the list per element in the list. If you have n items, you will traverse the list n times for every item, for a total of n^2 traversals.

Hence, you need two for loops in your solution: one to traverse the list once and select the element that will be compared, and inside that loop, another that will check that element against the others.

for n in ll:
    for m in ll:
        if m.endswith(n) and m != n:
            print(m, "ends with", n)
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