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I'm new to C++. I'd like to know how experienced coders do this.

what I have:

set<int> s;
s.insert(1);
s.insert(2);
s.insert(3);
s.insert(4);
s.insert(5);

for(set<int>::iterator itr = s.begin(); itr != s.end(); ++itr){
if (!(*itr % 2))
    s.erase(itr);
}

and of course, it doesn't work. because itr is incremented after it is erased. does it mean Itr has to point to the begin of the set everytime after i erase the element from the set?

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4 Answers

up vote 12 down vote accepted
 for(set<int>::iterator itr = s.begin(); itr != s.end(); ){
  if (!(*itr % 2))
      s.erase(itr++);

  else ++itr;
 }

effective STL by Scott Myers

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You have extra bracket in code. –  qba Jan 18 '10 at 19:32
    
why is itr++ allowed in the erase function, but not outside? –  Quincy Jan 19 '10 at 0:08
3  
itr++ is allowed outside, but ++it is in general preferable when the value is unused, for reasons way to tedious to go into every single time anyone does it ;-) In this case, it might be better to ignore the usual good practice and write itr++, just because the code reads slightly smoother if it's the same in both cases. –  Steve Jessop Jan 19 '10 at 0:52
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Erasing an element from std::set only invalidates iterators pointing to that element.

Get an iterator to the next element before erasing the target element.

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You don't need to go back to the start. set::erase only invalidates iterators that refer to the item being erased, so you just need to copy the iterator and increment before erasing:

for(set<int>::iterator itr = s.begin(); itr != s.end();)
{
    set<int>::iterator here = itr++;
    if (!(*here % 2))
        s.erase(here);
}
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OK, I give up. What's the bug? –  Mike Seymour Jan 18 '10 at 19:16
1  
I was wrong, I thought you were skipping the first element. I take back my comment and downvote. –  Terry Mahaffey Jan 18 '10 at 19:20
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The best way is to use the combination of remove_if and erase

s.erase(remove_if(s.begin(), s.end(), evenOddFunctor), s.end())

This will be helpful http://en.wikibooks.org/wiki/More_C%2B%2B_Idioms/Erase-Remove

Also Refer to effective STL by scott meyers

Edit: Although my solution is wrong i am not deleting it. It might be a good learning for someone like me who does not about mutable/immutable iterators

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5  
remove_if requires that operator* returns an non-const lvalue. std::set enforces that it's always ordered; returning a non-const lvalue from std::set::operator* would break that guarantee. Therefore std::remove_if() does not take std::set::iterators –  MSalters Jan 19 '10 at 11:52
    
Thanks i dint know that –  Yogesh Arora Jan 19 '10 at 15:37
2  
That was actually helpful. I've been stuck trying to do this with remove_if and this told me what the issue was. Thanks. –  Ade Miller Jul 16 '10 at 5:38
    
@AdeMiller Me too. I hate remove_if. –  bobobobo Aug 2 '13 at 2:03
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