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I have the following data:

FolioA Name1 100
FolioA Name2 110
FolioA Name3 100
FolioB Name1 100
FolioB Name3 106
FolioC Name1 108
FolioC Name2 102
FolioC Name3 110

I want to only insert unique names(i.e. Name1, Name2 and Name3, each once) into

std::vector<std::string> name;

as I iterate through the data.

So, I have the following code where I have stored the data in a map called test:

std::map<std::string, std::map<std::string, double> >test;
std::map<std::string, std::map<std::string, double > >::iterator it1 = test.begin(), end1 = test.end();
    while (it1 !=end1) {
      std::map<std::string, double>::iterator it2 = it1->second.begin(), end2=it1->second.end();
      **name.push_back(it2->first);**
      ++it2;
    }
    ++it1;
  }

But, currently by pushing the data into name the way I am has 3 instances of Name1, 2 of Name2, and 3 of Name3, which is expected from my code. How do I fix it to only have unique names.

share|improve this question
    
How would you chose which instance to include? –  juanchopanza Apr 29 '12 at 21:21
4  
Do you have to have a vector of names? I would suggest using a set of names for this instead. If you have to have a vector, you can still insert first into a set, then move the objects into a vector using the constructor overload that takes iterators. –  Chad Apr 29 '12 at 21:22
    
@juanchopanza, I would pick the first instance of each, so if the vector already contains (Name1, Name2, Name3), then when it hits the 4th record, it identifies that the record already exists, so it skips it, and goes to the next record. –  user1155299 Apr 29 '12 at 21:25
    
@Chad, can you post sample code –  user1155299 Apr 29 '12 at 21:27

5 Answers 5

up vote 5 down vote accepted

Since you want to keep the first instance for a given name, you will have to perform a name lookup at some point. A simple algorithm involving only your vector would be to can check if the the entry already exists using std::find

std::vector<std::string> name;

....
if (std::find(name.begin(), name.end(), someName) != name.end()) {
  name.push_back(someName);
}

But here you are performing a search each time you want to insert an element, and this (by itself) is up to O(N) complexity, giving O(N*N) for the whole algorithm. So you could optimize by using an intermediary container with fast look up, such as an std::set as suggested by @Chad and which has O(logN) complexity for look-up, giving O(N*logN) overall, or a hash container such as C++11's std::unordered_set, which has close to constant time look-up, giving ~O(N) overall complexity.

std::unordered_set name_set;
....
// still need to search, since you want to keep the first instance of each name, and not the last.
if (std::find(name_set.begin(), name_set.end(), someName) != name_set.end()) {
  name.insert(someName);
}

and then, following @Chad's example,

std::vector<std::string> name(names_set.begin(), name_set.end());

If you don't have C++11, hash map alternatives are boost::hash_map and tr1::hash_map.

share|improve this answer
    
aha, that sounds like it might do it. Can you post sample code as to how I would use it. –  user1155299 Apr 29 '12 at 21:28
    
@user1155299 just did it. –  juanchopanza Apr 29 '12 at 21:29
    
it works. thanks! –  user1155299 Apr 29 '12 at 21:34
    
Schlemiel the painter's algorithm. I.e. O(N*N). It works, but Chad's solution scales far better. –  MSalters Apr 30 '12 at 0:39
    
@MSalters, perhaps you can explain why you classify it the way you do. Chad's solution works too, but what is the mistake with the above. –  user1155299 Apr 30 '12 at 2:24

In case you do not care which instance you want to enter into your data-structure, std::set would server your purpose

share|improve this answer

Maybe you should use another map istead of a vector to have unique names.

std::map < std::string, double > name;

share|improve this answer

You asked for sample code, so here's how I would have done it:

std::set<std::string> unique_names;

// ...
while (it1 !=end1)
{
    // ...
    // **name.push_back(it2->first);**
    unique_names.insert(it2->first);
}

std::vector<std::string> name(unique_names.begin(), unique_names.end());
share|improve this answer

list has the ability to .sort() and then .unique(), which will provide you with .

you can iterate over it with an iterator and initialize it with initializer_list.

that data looks actually more like a struct to me:

#include <iterator>
#include <list>
#include <string>
#include <fstream>

typedef struct NODE_S {
    string name1, name2;
    int n;
} NODE_S NODE;

bool compare_NODE (NODE first, NODE second)
{
    unsigned int i=0;
    if (first.name1 < second.name1) {
        return true;
    } else if (first.name2 < second.name2) {
        return true;
    } else if (first.n < second.n) {
        return true;
    } else { return false;}
}


bool readfile(list<NODE>& ln, string filepath) {
    std::ifstream filein;
    NODE n;
    filein.open(filepath.c_str(), std::iofstream::in);
    if (!filein.good()) {
        filein.close();
        std::cerr << "ERROR: unable to open file \"" << filepath << "\" or file is zero-length." << std::endl;
        return false;
    }
    do {
        filein >> n.name1 >> n.name2 >> n.name3 >> std::skipws;
        ln.push_back(n);
        ln.sort(compare_NODE);
        ln.unique();
        //add node to list

    } while (!filein.good()); //can use .eof here, but if bad disk blocks...
    filein.close();
    return true;
}


int main(int argc, char * argv[], char * envp[]) {
    string filepath="somefile.txt";
    if (!readfile(filepath)) {
        return 1;
    }
    list<NODE>::iterator lni;
    for (lni = ln.begin(); lni != ln.end(); lni++) {
        std::cout<<lni->name1<<' '<<lni->name2<<' '<<lni->n<<std::endl;
    }
    return 0;
}

http://www.cplusplus.com/reference/stl/list/sort/

http://www.cplusplus.com/reference/stl/list/unique/

share|improve this answer
    
You'll want to move the sort and unique calls down, outside the loop. Now they're called once per NODE. BTW, the typedef struct thing hasn't been needed in 20 years. –  MSalters Apr 30 '12 at 20:15

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