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I want to append characters to a string but I want to make sure all the letters in the final list will be unique.

Example: "aaabcabccd" -> "abcd"

Now of course I have two solutions in my mind. One is using a list that will map the characters with their ASCII codes. So whenever I encounter a letter it will set the index to true. And I will later on I will scan the list append all the ones that are set to true. It will have a time complexity of O(n)

Another solution would be using the dict of python and following the same procedure. After mapping every char I will do the operation for each key in the dictionary. This will hold a linear running time as well.

Since I am a python newbie I was wondering which would be more space efficient. Which one could be implemented more efficiently?

PS: Order is not important while creating the list

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4 Answers 4

up vote 17 down vote accepted

The simplest solution is probably:

In [10]: ''.join(set('aaabcabccd'))
Out[10]: 'acbd'

Note that this doesn't guarantee the order in which the letters appear in the output, even though the example might suggest otherwise.

You refer to the output as a "list". If a list is what you really want, replace ''.join with list:

In [1]: list(set('aaabcabccd'))
Out[1]: ['a', 'c', 'b', 'd']

As far as performance goes, worrying about it at this stage sounds like premature optimization.

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Thanks a lot for the answer. I was just wondering how come this method is more efficient than the dictionary or list? –  Ali Dec 16 '12 at 15:39
    
@Ali It's time complexity is the same as the dict method (it's the same implementation), but you save on creating key-value pairs. –  Marcin Dec 16 '12 at 15:41
    
@Ali: I didn't say it was more efficient (although it almost certainly is). My point is that you should focus on clarity and correctness first, and only optimize when everything is working well and you have profiled your code and know what to optimize. –  NPE Dec 16 '12 at 15:42
    
@NPE I was also wondering. This solution contains calling a join over a string I guess (''.join). After this will I have to like iterate through the string and add the chars into my list, or I can apply this join to a list as well? –  Ali Dec 16 '12 at 15:43
    
@Ali: If you want a list, just use list(set('aaabcabccd')). Depending on your requirements, it might even make sense to keep the set and use it directly. –  NPE Dec 16 '12 at 15:44

Use an OrderedDict. This will ensure that the order is preserved

>>> ''.join(OrderedDict.fromkeys( "aaabcabccd").keys())
'abcd'

PS: I just timed both the OrderedDict and Set solution, and the later is faster. If order does not matter, set should be the natural solution, if Order Matter;s this is how you should do.

>>> from timeit import Timer
>>> t1 = Timer(stmt=stmt1, setup="from __main__ import data, OrderedDict")
>>> t2 = Timer(stmt=stmt2, setup="from __main__ import data")
>>> t1.timeit(number=1000)
1.2893918431815337
>>> t2.timeit(number=1000)
0.0632140599081196
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Thanks a lot. I forget to mention that order does not matter. –  Ali Dec 16 '12 at 15:38
1  
I'm pretty sure that with preserving order the complexity will be o(nlogn) and not o(n) like the set solutions –  Aviram Segal Dec 16 '12 at 15:38
1  
@AviramSegal: Why is that? Surely, preserving the order just requires a linked list running through the dict elements in insertion order? –  NPE Dec 16 '12 at 15:43
    
@AviramSegal OrderedDict uses dict internally and has hence O(1) expected lookup/membership check. Maintaining the order requires additional space (a lot), but only amortized constant additional (appending to a list if the key wasn't in the dictionary before). –  delnan Dec 16 '12 at 15:43
    
@NPE Yeah, but note that Python doesn't use linked lists (list is a dynamic over-allocating array). –  delnan Dec 16 '12 at 15:44

if the result does not need to be order-preserving, then you can simply use a set

>>> ''.join(set( "aaabcabccd"))
'acbd'
>>>
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For completeness sake, here's another recipe that sorts the letters as a byproduct of the way it works:

>>> from itertools import groupby
>>> ''.join(k for k, g in groupby(sorted("aaabcabccd")))
'abcd'
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