13

I have a vector of strings:

std::vector<std::string> fName

which holds a list of file names <a,b,c,d,a,e,e,d,b>.

I want to get rid of all the files that have duplicates and want to retain only the files that do not have duplicates in the vector.

for(size_t l = 0; l < fName.size(); l++)
{
    strFile = fName.at(l);
    for(size_t k = 1; k < fName.size(); k++)
    {
        strFile2 = fName.at(k);
        if(strFile.compare(strFile2) == 0)
        {
            fName.erase(fName.begin() + l);
            fName.erase(fName.begin() + k);
        }
    }
}

This is removing a few of the duplicate but still has a few duplicates left, need help in debugging.

Also my input looks like <a,b,c,d,e,e,d,c,a> and my expected output is <b> as all other files b,c,d,e have duplicates they are removed.

2
  • Do you want to keep any copy of the duplicates? I.e. do you want <a,b,c,d,e>, or just <c>? Feb 11, 2012 at 2:11
  • I dont want to keep the copy of dupilcates.
    – Deepak B
    Feb 11, 2012 at 2:14

4 Answers 4

20
#include <algorithm>

template <typename T>
void remove_duplicates(std::vector<T>& vec)
{
  std::sort(vec.begin(), vec.end());
  vec.erase(std::unique(vec.begin(), vec.end()), vec.end());
}

Note: this require that T has operator< and operator== defined.

Why it work?

std::sort sort the elements using their less-than comparison operator

std::unique removes the duplicate consecutive elements, comparing them using their equal comparison operator

What if i want only the unique elements?

Then you better use std::map

#include <algorithm>
#include <map>

template <typename T>
void unique_elements(std::vector<T>& vec)
{   
  std::map<T, int> m;
  for(auto p : vec) ++m[p];
  vec.erase(transform_if(m.begin(), m.end(), vec.begin(),
                         [](std::pair<T,int> const& p) {return p.first;},
                         [](std::pair<T,int> const& p) {return p.second==1;}),
            vec.end());
}

See: here.

10
  • Also need to include #include <algorithm> for std::sort and std::unique to work.
    – Deepak B
    Feb 11, 2012 at 2:19
  • Gigi thank you this worked but did not solve my original problem... I started off with <a,b,c,d,e,e,d,b,a> I want my output to be <a> and not <a,b,c,d,e>
    – Deepak B
    Feb 11, 2012 at 2:20
  • Sorry I want my output to be <c> which is not repeated.
    – Deepak B
    Feb 11, 2012 at 2:26
  • Your solution using std::set does the same thing as your solution using std::sort/unique. Feb 11, 2012 at 2:37
  • @Gigi Gigi thank you this worked but did not solve my original problem... I started off with <a,b,c,d,e,e,d,b,a> I want my output to be <c> and not <a,b,c,d,e>
    – Deepak B
    Feb 11, 2012 at 2:40
3

If I understand your requirements correctly, and I'm not entirely sure that I do. You want to only keep the elements in your vector of which do not repeat, correct?

Make a map of strings to ints, used for counting occurrences of each string. Clear the vector, then copy back only the strings that only occurred once.

map<string,int> m;
for (auto & i : v)
    m[i]++;
v.clear();
for (auto & i : m)
    if(i.second == 1)
        v.push_back(i.first);

Or, for the compiler-feature challenged:

map<string,int> m;
for (vector<string>::iterator i=v.begin(); i!=v.end(); ++i)
    m[*i]++;
v.clear();
for (map<string,int>::iterator i=m.begin(); i!=m.end(); ++i)
    if (i->second == 1)
        v.push_back(i->first);
2
#include <algorithms>

template <typename T>
remove_duplicates(std::vector<T>& vec)
{
  std::vector<T> tvec;
  uint32_t size = vec.size();
  for (uint32_t i; i < size; i++) {
    if (std::find(vec.begin() + i + 1, vec.end(), vec[i]) == vector.end()) {
      tvec.push_back(t);
    } else {
      vec.push_back(t);
    }
  vec = tvec; // : )
  }
}
3
  • 1
    std::vector does not have pop_front() Feb 11, 2012 at 2:46
  • there is only pop_back() could not find a pop_front(). Mr Lindley would be great if you could help. thank you perreal
    – Deepak B
    Feb 11, 2012 at 2:49
  • @DeepakB: I helped. Do you not see my answer? Feb 11, 2012 at 2:50
0

You can eliminate duplicates in O(log n) runtime and O(n) space:

std::set<std::string> const uniques(vec.begin(), vec.end());
vec.assign(uniques.begin(), uniques.end());

But the O(log n) runtime is a bit misleading, because the O(n) space actually does O(n) dynamic allocations, which are expensive in terms of speed. The elements must also be comparable (here with operator<(), which std::string supports as a lexicographical compare).

If you want to store only unique elements:

template<typename In>
In find_unique(In first, In last)
{
    if( first == last ) return last;
    In tail(first++);
    int dupes = 0;
    while( first != last ) {
        if( *tail++ == *first++ ) ++dupes;
        else if( dupes != 0 ) dupes = 0;
        else return --tail;
    }
    return dupes == 0 ? tail : last;
}

The algorithm above takes a sorted range and returns the first unique element, in linear time and constant space. To get all uniques in a container you might use it like so:

auto pivot = vec.begin();
for( auto i(find_unique(vec.begin(), vec.end()));
     i != vec.end();
     i = find_unique(++i, vec.end())) {
    std::iter_swap(pivot++, i);
}
vec.erase(pivot, vec.end());
3
  • To be frank I'd go with the std::sort() and std::unique() approach. I just thought I'd show an alternative. :) Feb 11, 2012 at 2:48
  • a horrible example in any case (performance, etc), smells like a workaround for those who are lazy enough to not check the algorithm library
    – newhouse
    Nov 24, 2017 at 9:44
  • O( log N) runtime is not possible. This is a sorting-problem and as such O( N * log N ) - or if the data is already sorted than O( N ). Jun 8 at 9:23

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