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I need to have an ordered set of values without duplicates. So, what is the fast/best method :

1 - Create a vector, sort it and remove duplicates ? 2 - Use a kind of "sorted" vector (if it exists) ?

Which one can be the more efficient ?

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Use a set and specify your own comparator. –  DumbCoder Dec 16 '10 at 17:06
    
Would this solution work for you? –  LB-- Oct 4 '13 at 3:53
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8 Answers

Why wouldn't you use a std::set?

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What if the order he wants is different from the set's sorting function? –  freitass May 17 '13 at 19:11
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You can define your own sorting function in that case. –  Joe May 17 '13 at 19:35
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Let me rephrase it: what if the order he wants (for instance, order of insertion) is different from the sorting function which determines the unicity of the elements in the set. –  freitass May 17 '13 at 19:51
    
What if the specific order of elements is important as well as the fact that no two elements can be the same? I am in a situation right now where I NEED to maintain and observe a specific order. –  LB-- Oct 4 '13 at 2:28
    
@LB, there's a number of approaches. 1) keep data in two structures (e.g. a vector and an unordered_set -- the set would let you look up potential dupes quickly, the vector would preserve order). 2) keep data in one container that maintains the property you want (e.g. a vector) and just binary search that before each insert. Choices here depends a lot on the amount of data and when that data is inserted/queried/etc. –  Joe Oct 4 '13 at 13:14
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If you are going to load the list once then use it multiple times then using std::vector instead of std::set will probably be more efficient in memory usage and iterating through it.

If you are going to continually add and remove elements you should definitely use std::set.

For general purpose use std::set because it is less work (building the vector requires you to sort and remove duplicates after you have finished appending all the elements), unless you have a particular need for efficiency in low memory-use or some other performance hit that indicates vector is required.

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Use std::set. It's ordered, and it does not allow duplicates.

The only downside is that you don't get random access to the elements though this was not specified as a requirement.

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It doesn't remove, it doesn't insert at all. –  DumbCoder Dec 16 '10 at 17:06
    
That is correct and what I meant. I'll edit the answer to make that clearer. –  CadentOrange Dec 16 '10 at 17:08
    
Interesting that I recently got a downvote for this. I would be interested in knowing why as it appears to be correct as far as I know. –  CadentOrange Oct 9 '13 at 19:13
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That depends on what efficiency you want. If you want something that's "just fast", use std::set<> (as others already suggested).

However, if you need chache coherency or to keep things in a vector (aligned memory guaranteed) instead of a set (nothing guaranteed, implemented as a tree if I remember correctly) then you'll have to ust directly std::vector combined with some standard algorithms that assume the container you provide is already sorted (then making the check faster), like std::binary_search().

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Insert into a set takes log(n). And the sort is free.

Insert into a vector (push_back) takes constant time. Sorting a vector takes n*log(n). But you still need to remove duplicates.

If you insert in one go and then sort, you can consider also vector. If you insert frequently set is the right one.

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Inserting into the set N elements is thus N*logN which means the same complexity as building the vector. Removing duplicates if done efficiently is O(N) so the whole process is still O(N log N ) –  CashCow Oct 3 '13 at 13:53
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The efficiency will depend on the ratio of insertions/accesses you have (i.e., the number of times you'll need to sort your vector). If performance is really important there, I suggest that you try both approaches and use the fastest one for a real case of application usage.

Note: std::set is not a sorted vector because it is not contiguous in memory (it is a tree). The "sorted vector" you want is a heap over std::vector. See: http://stdcxx.apache.org/doc/stdlibug/14-7.html.

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No, a heap is not sorted. –  Chris Hopman Dec 16 '10 at 18:21
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There is always Loki::AssocVector

Otherwise you can easily roll your own:

  • use a std::vector or std::deque as the base container
  • use lower_bound / upper_bound / equal_range and binary_search generic algorithms to look up an object
  • also inplace_merge is great when you already know that the value is not present

But really, use a std::set :)

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Thanks for all the answer, but ... –  Spectral Dec 17 '10 at 10:14
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Try this in your .h or .hpp:

struct TestWithTime
{
    TestWithTime(unsigned long long timeSecs) : m_timeSecs(timeSecs) {}

    unsigned long long m_timeSecs;
}

struct OrderedByTime
{
    bool operator() (const TestWithTime* first,  const TestWithTime* second) const
    {
        // Important: if the time is equal
        if (first->m_timeSecs == second->m_timeSecs)
        {
            // then compare the pointers
            return first < second;
        }
        return first->m_timeSecs < second->m_timeSecs;
    }
};

typedef std::set<TestWithTime*, OrderedByTime> OrderedDataByTime;

Now you can use your OrderedDataByTime set !!

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