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I have a map<id,age>,; how to get the age of each <id,age> pair, and assign the age to a C-style array in C++?

what is the efficient way to do it? I mean how to fill the C-style array in the same order as map?

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sorry, not map to vector, it is to array –  user707549 Sep 29 '11 at 14:34
2  
@ratzip: Don't use arrays. Use std::vector. –  Cat Plus Plus Sep 29 '11 at 14:35
    
I want to use vector, but other people defined it as array –  user707549 Sep 29 '11 at 14:39
    
i just updated my sample to also show how it's done for auto/dynamic arrays ideone.com/Kf2du –  sehe Sep 29 '11 at 15:08
    
have you already read my advice from your other question to finally get an introductory C++ book? all your questions are about very basic C++. –  phresnel Sep 30 '11 at 7:52

4 Answers 4

up vote 3 down vote accepted

If you decide to stick with the fixed array approach

//Assuming both id and age are integers
map<int,int> myMap; // Your id and age map
map<int,int>::iterator it;
int myList[100];
int i = 0;
for(it = myMap.begin(); (i < 100 && it != myMap.end()); it++)
{
  myList[i++] = (*it).second;
}

A MUCH better approach is to use a vector instead of an array

//Assuming both id and age are integers
map<int,int> myMap; // Your id and age map
map<int,int>::iterator it;
vector<int> myList;
for(it = myMap.begin(); it != myMap.end(); it++)
{
  myList.push_back((*it).second);
}
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sorry, it is a array, not a list –  user707549 Sep 29 '11 at 14:32
    
@ratzip vectors are like arrays, but better –  Mansuro Sep 29 '11 at 14:34
    
@ratzip then you need to dynamically allocate the array based on the map size. Will edit answer in a sec. –  Pepe Sep 29 '11 at 14:34
    
the array size if fixed, it is 100, but the data to be filled is just 20, the rest is just for future use –  user707549 Sep 29 '11 at 14:35
    
@ratzip you need to be careful not to go out of bounds in that case since your map might have more than 100 entries. –  Pepe Sep 29 '11 at 14:37

If you can use c++11 you can use a lambda expression.

map<id,age> m;
std::list<age> l;
std::for_each(m.begin(), m.end(), [&l](std::pair<id,age> p){
    l.push_back(p.second);
});
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+1 nice one indeed. Curious though: what is [&l]? –  Avada Kedavra Sep 29 '11 at 14:36
2  
it means that the Lambda will capture the local variable l by reference –  sehe Sep 29 '11 at 14:36
    
@sehe: cheers for straighten me out :) .. looking at it again it feels obvious.. every day you learn something new... except sundays.. –  Avada Kedavra Sep 29 '11 at 14:37
1  
std::transform would seem like a better candidate. While this sounds more like homework, I would imagine that most professionals already have an "extractor" functional object, that given a structure, returns one member of it: in this case, you'd instantiate it to return the member second. –  James Kanze Sep 29 '11 at 14:40

I don't think what you're asking makes a lot of sense, but in the interest of just fiddling with C++ containers

(Note:: not using any C++0x features) http://ideone.com/Kf2du

Edit In response to the excellent comments by David Rodríguez, I have edited the code to avoid copying (see also https://ideone.com/7Oa5n):

#include <map>
#include <list>
#include <algorithm>
#include <iterator>
#include <vector>

typedef std::map<std::string, int> map_t;

int getage(const map_t::value_type& pair)
{ 
    return pair.second; 
}

int main()
{
     map_t agemap;
     agemap["jill"] = 13;
     agemap["jack"] = 31;

     std::list<int> agelist(agemap.size());
     std::transform(agemap.begin(), agemap.end(), agelist.begin(), getage);

     // or:
     std::vector<int> v;
     std::transform(agemap.begin(), agemap.end(), std::back_inserter(v), getage);

}

By popular demand, and just to spell it out:

int age_array[10];
std::transform(agemap.begin(), agemap.end(), age_array, getage);

or even

int *dyn_array = new int[agemap.size()];
std::transform(agemap.begin(), agemap.end(), dyn_array, getage);

// ...
delete[] dyn_array;
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OP wants to move the elements to a C-style array. –  John Dibling Sep 29 '11 at 14:59
    
@JohnDibling: Ok, I spelled out the trivial example to work with an array. –  sehe Sep 29 '11 at 15:03
1  
There is an interesting small detail that sometimes goes undetected in this answer. The std::map<std::string,int>::value_type is std::pair<const std::string,int>, rather than std::pair<std::string,int>. The implication of that is that, because the former can be converted to the latter, the transform loop will create a std::pair<std::string,int> temporary for each element in the map, and then bind the constant reference used as argument to it. Which in turn means that you are copying all the elements at least once in the operation. –  David Rodríguez - dribeas Sep 29 '11 at 17:23
    
Additionally, with boost, in C++03 you can do: std::transform( agemap.begin(), agemap.end(), array, boost::bind( &std::map<std::string,int>::value_type::second, _1 ) ); for a single-liner. –  David Rodríguez - dribeas Sep 29 '11 at 17:28
    
@DavidRodríguez-dribeas: (re: 1st) astute point. Do you think that applied in my code (I don't know for sure, but I do know that the getage function doesn't implicitely force the copy (taking the const pair by ref); It could happen due to the fact that the non-const versions of .begin() and .end() are being preferred?) –  sehe Sep 29 '11 at 17:30

You've stated you want a C array and I'll answer particularly your request.

  std::map<int,int> some_map;

  int * c_array=new int[some_map.size()];
  size_t k=0;
  for (std::map<int,int>::iterator i=some_map.begin();
       i != some_map.end(); ++i)
    {
      c_array[k++]=(*i).second;
    }
  delete[] c_array;

As others have stated, the standard for C++ would be the vector. I would add, you would want to reserve the proper space before-hand since you already know it. It can be reserved via the c-tor for a vector.

  std::map<int,int> some_map;
  std::vector<int>  some_vector(some_map.size());
  for (std::map<int,int>::iterator i=some_map.begin();
       i != some_map.end(); ++i)
    {
      some_vector.push_back((*i).second);
    }
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