109

Perhaps this is a duplicate but I did not find anything searching: When erase(value) is called on std::multiset all elements with the value found are deleted. The only solution I could think of is:

std::multiset<int>::iterator hit(mySet.find(5));
if (hit!= mySet.end()) mySet.erase(hit);

This is ok but I thought there might be better. Any Ideas ?

8
  • 25
    This is a perfectly reasonable approach. Feb 6, 2012 at 21:49
  • Does this approach ensures that the given key ("5") is duplicate?
    – Arun
    Feb 6, 2012 at 22:18
  • 1
    For multimap: is there any guarantee on which elements find returns? (Order of insertion? Even after such erasure? Implementation dependent?)
    – P Marecki
    Feb 10, 2013 at 14:46
  • 2
    Honestly it's such an unobvious pitfall while using multiset which is not among the most frequently used classes.
    – Predelnik
    May 19, 2017 at 16:35
  • 4
    7 years later still wondering where std::multiset<T>::erase_one_of is! Oct 16, 2019 at 19:49

9 Answers 9

40
auto itr = my_multiset.find(value);
if(itr!=my_multiset.end()){
    my_multiset.erase(itr);
}

I would imagine there is a cleaner way of accomplishing the same. But this gets the job done.

3
  • 16
    This is no different to what is in the question.
    – Troubadour
    Aug 29, 2018 at 15:09
  • 2
    I agree! Doesn't make any sense. 12 other people saw something useful in the answer so I know i am not going crazy. Sep 4, 2018 at 22:24
  • 9
    Never overlook the possibility that you're going crazy along with everyone else :) Oct 17, 2019 at 19:44
37

Try this one:

multiset<int> s;
s.erase(s.lower_bound(value));

As long as you can ensure that the value exists in the set. That works.

1
  • 1
    It is nice that this snippet is cleaner, however it feels less intention revealing.
    – EarthenSky
    Apr 22, 2021 at 18:07
4
 if(my_multiset.find(key)!=my_multiset.end())
   my_multiset.erase(my_multiset.equal_range(key).first);

This is the best way i can think of to remove a single instance in a multiset in c++

2
  • 1
    Compared to the solution i proposed in the question your code does two searches (find + equal_range) instead of one which is inefficient
    – Martin
    Aug 7, 2016 at 21:50
  • as this is same complexity, I very like this answer. Thank you
    – Crystal
    Nov 12, 2019 at 17:51
3

This worked for me:

multi_set.erase(multi_set.find(val));

if val exists in the multi-set.

0
2

I would try the following.

First call equal_range() to find the range of elements that equal to the key.

If the returned range is non-empty, then erase() a range of elements (i.e. the erase() which takes two iterators) where:

  • the first argument is the iterator to the 2nd element in the returned range (i.e. one past .first returned) and

  • the second argument as the returned range pair iterator's .second one.


Edit after reading templatetypedef's (Thanks!) comment:

If one (as opposed to all) duplicate is supposed to be removed: If the pair returned by equal_range() has at least two elements, then erase() the first element by passing the the .first of the returned pair to single iterator version of the erase():

Pseudo-code:

pair<iterator, iterator> pit = mymultiset.equal_range( key );

if( distance( pit.first, pit.second ) >= 2 ) {
    mymultiset.erase( pit.first );
}
2
  • 2
    I think the question is asking about eliminating just one duplicate, not all duplicates. Feb 6, 2012 at 21:53
  • Do have an idea whether this is faster than my solution and if yes why ?
    – Martin
    Feb 7, 2012 at 18:26
0

We can do something like this:

multiset<int>::iterator it, it1;
it = myset.find(value);
it1 = it;
it1++;
myset.erase (it, it1);
1
  • 1
    Overkill. "Iterator pointing to a single element to be removed from the unordered_multiset."
    – Andrew
    May 19, 2018 at 20:05
0

Here is a more elegant solution using "if statement with initializer" introduced in C++17:

if(auto it = mySet.find(value); it != mySet.end())
    mySet.erase(value);

The advantage of this syntax is that the scope of the iterator it is reduced to this if statement.

-1
 auto itr=ms.find(value);  
  while(*itr==value){
  ms.erase(value);
  itr=ms.find(value);  
  }

Try this one It will remove all the duplicates available in the multiset.

-2

In fact, the correct answer is:

my_multiset.erase(my_multiset.find(value));
1
  • 1
    If value doesn't exist in the multiset, it causes undefined behaviour. Feb 23, 2015 at 14:27

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.