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I'm doing some tests with a std::list of pointers. I'm using remove_if algorithm to eliminate some elements of the list. But I encountered some problems, remove_if is creating memory leaks because it doesn't destroy the pointers (I think).

I found a solution, but I don't know if it is well made, correct or at least acceptable...

Here is the code:

#include <algorithm>
#include <iostream>
#include <list>

using namespace std;

class Object
{
 private:
         int intData;   
 public:
        Object(int n) : intData(n) { };
        int getIntData(void) { return intData; };
        void setIntData(int n) { intData = n; };
};

/** Functor */
struct listFunctor
{ 
 bool operator()(Object* obj1, Object* obj2) const
 {
  return (obj1->getIntData() < obj2->getIntData());
 }
};

class removeFunctor
{
 private:
         int remover;
 public:
        removeFunctor(int n) : remover(n) { };
        bool operator()(Object* obj)
        {
         bool res = (obj->getIntData() != remover);

         if(res)
          delete obj;

         return res; 
        }
};

typedef list<Object*> objList;
typedef list<Object*>::iterator objectListIter;

int main(int argc, char** argv)
{
 objList objectList;

 objectList.push_back(new Object(8));
 objectList.push_back(new Object(0));
 objectList.push_back(new Object(2));

 /** sort elements. */
 objectList.sort(listFunctor());

 /** print. */
 for(objectListIter it = objectList.begin(); it != objectList.end(); ++it)
  cout<<*it<<"  "<<(*it)->getIntData()<<'\n';   

 /** remove. */
 objectListIter iter = remove_if(objectList.begin(), objectList.end(), removeFunctor(8));

 /** print. */
 for(objectListIter it = objectList.begin(); it != iter; ++it)
  cout<<*it<<"  "<<(*it)->getIntData()<<'\n';   

 /** delete list. */
 for(objectListIter it = objectList.begin(); it != iter; ++it)
  delete *it;   

 objectList.clear(); //IS THIS NECESSARY?

 return 0;
}

The program first creates the list, sort it an then removes some elements.

Is this code a good and viable solution to this problem? Valgrind's default scan doesn't report any problems but I'm doing more tests.

Thanks.

share|improve this question
7  
typedef std::list<std::unique_ptr<Object*>> objList;: no delete required. And, unless you really need pointers, don't use them at all and instead use std::list<Object>. delete leads to pain and suffering. Finally and unless you really, really need a linked list, std::vector<Object>. –  James McNellis May 10 '12 at 18:21
4  
@Fredrik Why, exactly, would you need to copy the unique_ptrs out of the container? –  R. Martinho Fernandes May 10 '12 at 18:27
1  
@Fredrik : That's true of C++03, but std::unique_ptr<> is not in C++03 so obviously C++11 rules apply here. –  ildjarn May 10 '12 at 18:29
2  
@Fredrik: unique_ptr is movable, so it works fine in lists. Don't tell people to use shared_ptr unless it's absolutely needed. –  TBohne May 10 '12 at 18:29
1  
@JamesMcNellis: That should be std::unique_ptr<Object>, no? (Obviously too late to edit now.) –  GManNickG May 10 '12 at 20:55

1 Answer 1

up vote 9 down vote accepted

Removing from a list<Object*> will only remove the pointers from the list. You should prefer a list<unique_ptr<Object>> or a list<shared_ptr<Object>> which will automatically delete the objects pointed to when the smart pointers are removed from the list.

share|improve this answer
2  
And as James said, because those prefer std::list<Object>, and before that prefer std::vector<Object>. The fewer pointers the better. –  GManNickG May 10 '12 at 20:56

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