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I have already the list pointer of CDrawObject*

std::list<CDrawObject*> elements;

How I can move some element to the end of list. I see STL Algorithms Reference but i don't find this operations. How i can do it?

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  • 8
    Not 100% pertinent with your question, but are you sure that a linked list of pointers is a sensible data structure choice? There are only a few cases in which I'd consider it the best option...
    – 6502
    Feb 6, 2011 at 8:49
  • 1
    It is when what he is doing is moving an item from the middle of the list to the end. list is the only collection in which doing this is constant time.
    – CashCow
    Feb 6, 2011 at 17:55
  • 1
    @CashCow: That time, though constant, might still be longer than it takes to std::memmove() the content of a std::vector of containers, especially when aspects like locality of data (CPU cache) is taken into account.
    – sbi
    Oct 22, 2013 at 7:28

3 Answers 3

75

Use the list method splice()

void list::splice ( iterator position, list<T,Allocator>& x, iterator i );

Move iterator i from list x into current list at position "position"

Thus to move it to the end put

x.splice( x.end(), x, iter );

(they can both be the same list or different lists as long as the list from which the item is moved has the same type, both T and Allocator)

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    In your example, what if iter is already pointing to the last element—is it necessary to special-case that? Dec 23, 2013 at 10:27
  • It should not be necessary to test for it, and the library function should still work. Whether it would be as optimal is not certain as the C++ spec only says what the outcome of a function must be and not whether it must be done in the most optimal way.
    – CashCow
    Jan 6, 2014 at 12:08
  • WARNING: there is a danger in using splice with list. It can invalidate all iterators even when splicing to itself... This is somewhat unexpected from a list data type where one of the advantages to using list is that its most iterators remain valid when things are added removed. But this is not the case with splice so if you are counting on this behavior you might want to use this answer instead: stackoverflow.com/a/4912419/3768831 Jul 14, 2020 at 17:10
  • @RickWildes can you give an example or reference for this statement?
    – Emil
    Mar 12 at 11:57
  • @RickWildes your warning is incorrect. en.cppreference.com/w/cpp/container/list/splice : No iterators or references become invalidated, the iterators to moved elements remain valid
    – shawn
    Jun 22 at 4:50
3

A std::list is a doubly-linked list, which means you do not have random access to element n. You have to can remove the element, and then use push_back.

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    No you don't have to do it that way and the poster was too quick to accept the answer.
    – CashCow
    Feb 6, 2011 at 9:13
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    I didn't mean "have to" in the sense of "that's the only way", but anyway, @G-71 feel free to un-accept my answer if another answer is better. Feb 6, 2011 at 9:33
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    +1 totally acceptible for a container of pointers. If copying a T is more costly, though, splicing should be preferred.
    – sellibitze
    Feb 6, 2011 at 12:09
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    It'll be problematic if the list contains custom objects. In that case remove destructs the object, and it could be non-trivial to re-construct a new one.
    – Samuel Li
    Mar 29, 2019 at 19:48
  • The random access ability has nothing to do with the ability of moving an item from one (already known) position (you already have iterator for) to another.
    – Sasha
    May 29, 2020 at 4:46
-3

Remove it then append it to your list.

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