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If I want to delete all the elements with a value from vector,I call remove algorithm and then call vector's erase member function to physically delete it. But in the case of list , simple call remove member function and it will delete all elements with that value. I am not sure why vector does't provide the remove MF while list does it.

For Exp: I want to delete value '4' from vector v.

vector<int> v;
vector<int> ::iterator Itr;
for (int i=0; i< 6; i++)
   v.push_back(i*2);
v.push_back(4);
v.push_back(8);
v.push_back(4);
v.erase(remove(v.begin(),v.end(),4), v.end()); 

and for list:

list.remove(4); // will delete all the element which has value 4
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1  
to be fair all that initial code is just to populate the vector the comparison is: v.erase(std::remove(v.begin(),v.end(),4), v.end()); vs. l.remove(4); –  AJG85 Jun 22 '11 at 22:11
    
wrong question. the real question is why std::list provides a member function instead of using the general algorithm. and the answer is: list can do better. –  Gene Bushuyev Jun 22 '11 at 23:25

5 Answers 5

up vote 9 down vote accepted

The question is not why std::vector does not offer the operation, but rather why does std::list offer it. The design of the STL is focused on the separation of the containers and the algorithms by means of iterators, and in all cases where an algorithm can be implemented efficiently in terms of iterators, that is the option.

There are, however, cases where there are specific operations that can be implemented much more efficiently with knowledge of the container. That is the case of removing elements from a container. The cost of using the remove-erase idiom is linear in the size of the container (which cannot be reduced much), but that hides the fact that in the worst case all but one of those operations are copies of the objects (the only element that matches is the first), and those copies can represent quite a big hidden cost.

By implementing the operation as a method in std::list the complexity of the operation will still be linear, but the associated cost for each one of the elements removed is very low, a couple of pointer copies and releasing of a node in memory. At the same time, the implementation as part of the list can offer stronger guarantees: pointers, references and iterators to elements that are not erased do not become invalidated in the operation.

Another example of an algorithm that is implemented in the specific container is std::list::sort, that uses mergesort that is less efficient than std::sort but does not require random-access iterators.

So basically, algorithms are implemented as free functions with iterators unless there is a strong reason to provide a particular implementation in a concrete container.

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+1 - good explanation. –  Node Jun 22 '11 at 22:36
    
Interesting. But I wonder why list has erase and remove for respectively iterator and value, but set has erase for both iterator (O(1)) and value (O(log n)) arguments. What's the reason for the different interfaces? –  Kerrek SB Jun 22 '11 at 23:00
    
@Kerrek SB: The standard considers two families of containers, sequences (Section §23.2, vector, list, deque, vector<bool>) and associative containers (§23.3, set, map, multiset, multimap). The interfaces are uniform within each family, but not across families, but I would not know why the authors of the library decided to share the names for the disparate erase operations in associative containers. –  David Rodríguez - dribeas Jun 22 '11 at 23:07

I believe the rationale is that std::list offers a very efficient remove method (if implemented as a doubly linked listed it just adjusts the pointers to the element and deallocates its storage), while element removal for std::vector is comparably slow.

The remove+erase trick is the standard way which works for all container types that offer the required iterator type. Presumably, the designers of the STL wanted to point out this difference. They could have opted to give all containers a remove method, which would be remove+erase for all containers except those who knew a better way, but they didn't.

This seems to violate the idea of generic code at a first glance, but I don't think it really does. Having a simple, generic remove that is easily accessible makes it easy to write generic code that compiles fine with all container types, but at the end generic code that would run extremely slow in 9 out of 10 cases and blazingly fast in the tenth is not truly generic, it just looks so.

The same pattern can be found at std::map::find vs. the generic std::find.

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Removing an element from a vector is much slower than doing so for a list: it is (on average) proportional to the size of the vector, whereas the operation on a list is executed in constant time.

The designers of the standard library decided not to include this feature under the principle of "things that look easy should BE (computationally) easy".

I'm not sure whether I agree with this philosophy, but it's considered a design goal for C++.

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Um, removing a list element by iterator is constant time. But removing it by value (as the questioner is doing) is O(n) time. Just like it would be for a vector. –  Nemo Jun 22 '11 at 22:08
    
True. However, finding an element is certainly cheaper than copying a bunch of elements if their size is non-trivial. –  Brennan Vincent Jun 22 '11 at 22:12
1  
@Nemo, when you remove something from the middle of a vector, it has to copy all the elements after it to fill the gap - you dont have to do this with the list, its just a quick change of pointer values. –  Node Jun 22 '11 at 22:13
2  
+1: This is exactly the reason why and if you find that methods you want seem to be missing you should consider using a more appropriate container for the operations you intend to perform. –  AJG85 Jun 22 '11 at 22:15
1  
@AJG85: That is a nice looking bogus comment, which if followed would mean that if you want a sequential container and you want to sort it at some time or another you should use a std::list, as that is the only sequential container that offers a sort method, when in fact a vector will be more efficient for the task. The fact that the operation is implemented in the container does not imply that it will be more efficient than a freestanding operation, only that it will be more efficient than that freestanding operation when applied to this particular container. –  David Rodríguez - dribeas Jun 22 '11 at 23:23

Because dropping item from a list is cheap, while doing so on a vector is expensive - all following elements have to be shifted, i.e. copied/moved.

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But just finding the element in the list is equally expensive (linear time). This is actually a very reasonable question. –  Nemo Jun 22 '11 at 22:09
    
Yes, how's that for usability design :) –  Nikolai N Fetissov Jun 22 '11 at 22:15
    
IF remove() is not part of vector then why erase()? erase also delete the element. –  Alok Jun 22 '11 at 22:22
1  
@Alok - you need to be able to remove from the vector, and given the way it works, its most efficient to remove contiguous chunks, which erase does, rather than random bits, which the remove-erase idiom does. Granted it could just do the same, perhaps they are following Scott Meyer's "Prefer non-member non-friend functions to member functions" rule. That works for vector, but in the case of list, its a member function to allow it to be done more efficiently. –  Node Jun 22 '11 at 22:27
    
@Alok: because erase() must be a member function, only container can erase its element, algorithms can only play with iterators, and remove actually does partitioning, so name maybe confusing, but algorithm is not. –  Gene Bushuyev Jun 22 '11 at 23:34

I imagine its due to efficiency, its slower to remove random elements from a vector than it is from a list. It might mean a little more typing for situations like this, but at least its obvious in the interface that the std::vector isn't the best data structure if you need to do this often.

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