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I have a std::vector with element of the type std::pair. With some algorithm, I return two iterators (range) so I would like to pick up all elements within that range and copy the first entry of the pair to another vector

std::vector< pair<double, int> > data;
std::vector<double> data2;
std::vector< pair<double, int> >::iterator it1, it2;

for (;it1!=it2; it1++)
{
  data2.push_back(it1->first);
}

Using a loop will do that but I wonder if there is a straightforward stl algorithm to do that. Since the data size if pretty big and above operation will be repeated for many times, using a loop is pretty slow.

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3  
Whether you write the loop by hand or use a Standard Library algorithm, you still have to iterate over every element of data. You can make it prettier but it will take just as long. (Suggestion: use data2.reserve() to save some memory (re)allocation time). –  Blastfurnace Jul 28 '13 at 19:21
    
If this operation happens very often and is more important than the data locality of the pair then you could try to use std::pair<vector<double>,vector<int> > data; instead. Then always access it with data.first[i] instead of data[i].first. –  PeterT Jul 28 '13 at 19:43

2 Answers 2

up vote 3 down vote accepted

If you are after an algorithm to do this for you, you can use the four parameter overload of std::transform:

#include <algorithm> // for transform
#include <iterator>  // for back_inserted and distance

....
std::vector< pair<double, int> > data;
std::vector<double> data2;
data2.reserve(std::distance(it1, it2));
std::transform(it1, 
               it2, 
               std::back_inserter(data2), 
               [](const std::pair<double, int>& p){return p.first;});

If you don't have C++11 support, you can use a function instead of the lambda expression:

double foo(const std::pair<double, int>& p) { return p.first; }

std::transform(it1, 
               it2, 
               std::back_inserter(data2),
               foo);
share|improve this answer
    
thanks. but it doesn't compile, it reported error in the expression [](...), does it mean my compiler doesn't support this syntax? Also, does it have to reserve the size for data2 first? I am copying the data from iterator it1 and it2 (not all) to data2, so how do I estimate the size within that range? –  user1285419 Jul 28 '13 at 19:44
    
@user1285419 looks like your compiler doesn't support C++11 then, you can replace the lambda with a pointer to a function that does the same (or a functor). –  PeterT Jul 28 '13 at 19:49
    
@user1285419 Maybe your compiler does not support C++11. In this case, you can declare a function that does the same thing as the [] line, and pass that function to std::transform. You don't have to call reserve, it is to avoid some re-allocations. I will edit my answer to use the two iterators. –  juanchopanza Jul 28 '13 at 19:49
    
thanks a lot. It works :) –  user1285419 Jul 28 '13 at 19:58

It's because of the operator precedence. The select operator . has higher precedence than the dereference operator *.

So what the compiler thinks you're writing is

*(it1.first)

when you mean

(*it1).first
share|improve this answer
    
It would have been so much easier to write it1->first :) –  juanchopanza Jul 28 '13 at 18:57
    
Thanks I modified the code already. But I am still looking for a fast stl algorithm instead of loop to achieve it. –  user1285419 Jul 28 '13 at 19:00

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