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I am reading Accelerated C++ and I need few suggestions on the question posted below.

  1. What does this code do?

    vector<int>u(10,100)    
    vector<int>v;    
    copy(u.begin(), u.end(), v.end());
    
  2. Provide 2 possible ways to correct the program, and list its advantages and disadvantages.

The first part was pretty straightforward, but I need help in the second part. I have provided 3 approaches and I am wondering if there are any more possible solutions.

Also, I am not sure of advantages and disadvantages of my approach. I have made an attempt, so please give me your views.


copy()

std::vector<int> u(10, 100);
std::vector<int> v;
std::vector<int> w ;
std::vector<int> x ;
std::copy(u.begin(), u.end(), back_inserter(v)); // 1st way of doing

Advantages

  • std::copy() doesn't change the value of iterator
  • Since the parameters of std::copy() don't depend on the specific container, the code can be reused with different containers

Disadvantages

  • std::back_inserter() only works with sequential containers and hence cannot be used with maps
  • Assigning the wrong iterator value to third parameter of std::copy() will not result in compiler errors but the program may behave differently

insert()

w.insert(w.end(), u.begin(), u.end() );

Advantages

  • insert() can be used with most containers

Disadvantages

Can't think of any.


push_back()

for ( std::vector<int>::const_iterator it = w.begin(); it != w.end(); ++it )
{
    x.push_back( *it );
}

Advantages

Cant think of any.

Disadvantages

  • Slow compared to std::copy() or vector::insert().

Is my approach correct? What other possible solutions are there?

share|improve this question
1  
In all cases, you're forgetting dest.reserve(src.size()); :) Though dest.insert(...) will most likely do this internally through src_end - src_begin, it's better to to do it beforehand since it's not guaranteed (and you have the size at hand anyways). –  Xeo Aug 31 '12 at 16:27
    
@xeo, Thanks for this information. what do you think of adv and disadv of approaches that I have followed? –  samantha Aug 31 '12 at 16:34
    
@Long, Thanks for editing –  samantha Aug 31 '12 at 16:36
1  
@Xeo -- Unless one is using a specialised custom allocator or data from repeated profiling suggests so, I seldom see the need to use either reserve or capacity. –  Happy Green Kid Naps Aug 31 '12 at 16:39
    
std::vector::assign, resizing and copy with normal iterator –  Lol4t0 Aug 31 '12 at 16:48

2 Answers 2

up vote 5 down vote accepted

Your title suggests that you're interested in copying a vector, but your code suggests you're interested in inserting into a vector (keeping in mind that despite its name std::copy is used for insertion here).

If you want to copy:

// This requires the vector types to match exactly
std::vector<int> v = u;

// In case the vector differ in their value_type
// This requires that the value_type of the source be
// convertible to the value_type of the destination
std::vector<int> v(u.begin(), u.end());

If you want to insert, then both methods you describe (using std::copy plus an iterator adaptor or calling the insert member) are appropriate. You should pick one according to whether you're working with containers or with iterators in your particular spot of code. (When working with iterators the burden of using the iterator adaptor is put on the client that passes the iterator, so there's no need to worry about push_back.) If all you have is iterators, then calling e.g. insert is simply not an option; if you do have the containers and one of the members can do the job then feel free to use it. I would not consider an error to use an algorithm though.

Try to leave the explicit loop as a last resort option.

share|improve this answer
    
There's also a copy constructor that could be used instead of assignment operator: std::vector<int> v(u);. This way u is copied during the construction of v where assignment operator copies u when v has been constructed. –  Helstein Aug 31 '12 at 16:57
4  
@Helstein No assignment operator is involved. –  Luc Danton Aug 31 '12 at 16:59
    
@LucDanton , thanks for the detailed explaination –  samantha Aug 31 '12 at 18:47

It seems to me, the authors mean std::copy() still should be used. So the first solution would be (as you suggested):

std::copy(u.begin(), u.end(), back_inserter(v));

Another one could be:

v.resize(u.size());
std::copy( u.begin(), u.end(), v.begin() );
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