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boost::algorithm::join provides a convenient join on std::vector<std::string>.

How would you expand this functionality to use std::vector<std::tuple<std::string,bool>> to surround the results with single-quotes (for strings) if true, before doing the join.

This is not hard to do with loops, but I am looking for a solution that makes the most use of standard algorithms and C++11 features (eg lambdas).

Continue to use boost's join, if feasible: elegance/readability/conciseness are more important.

CODE

#include <string>
#include <vector>
#include <tuple>
#include <boost/algorithm/string/join.hpp> 

int main( int argc, char* argv[] )
{
  std::vector<std::string> fields = { "foo", "bar", "baz" };
  auto simple_case = boost::algorithm::join( fields, "|" );

  // TODO join surrounded by single-quotes if std::get<1>()==true
  std::vector<std::tuple< std::string, bool >> tuples =
   { { "42", false }, { "foo", true }, { "3.14159", false } };

  // 42|'foo'|3.14159 is our goal
}

EDIT

OK, I took kassak's suggestion below and took a look at boost::transform_iterator() - I got put off by the verbosity of the example in boost's own documentation, so I tried std::transform() - it's not as short as I wanted, but it seems to work.

ANSWER

#include <string>
#include <vector>
#include <tuple>
#include <iostream>
#include <algorithm>
#include <boost/algorithm/string/join.hpp> 

static std::string
quoted_join( 
    const std::vector<std::tuple< std::string, bool >>& tuples, 
    const std::string& join
)
{
    std::vector< std::string >  quoted;
    quoted.resize( tuples.size() );
    std::transform( tuples.begin(), tuples.end(), quoted.begin(),
        []( std::tuple< std::string, bool > const& t ) 
        {
            return std::get<1>( t ) ? 
                "'" + std::get<0>(t) + "'" :
                std::get<0>(t);
        }
    );
  return boost::algorithm::join( quoted, join );
}

int main( int argc, char* argv[] )
{
  std::vector<std::tuple< std::string, bool >> tuples =
  { 
    std::make_tuple( "42", false ), 
    std::make_tuple( "foo", true ), 
    std::make_tuple( "3.14159", false ) 
  };

  std::cerr << quoted_join( tuples, "|" ) << std::endl;
}
share|improve this question
    
The downside of your version is that it is two steps: a complete copy of the vector file is made. –  Yakk Dec 22 '12 at 11:55
    
@Yakk if you can put up a better version (in code) as an answer, I'll +1 your post (it'd be nice to do it in one shot) –  kfmfe04 Dec 22 '12 at 12:05

4 Answers 4

up vote 1 down vote accepted

If you want to use join, you could wrap collection in boost::transform_iterator and add quotes if needed

share|improve this answer
    
ok - I essentially took your solution (look at edits in the OP)... –  kfmfe04 Dec 22 '12 at 10:03
    
You could pass transformed iterators as std::pair to join algorithm, like in @Yakk 's answer. That would be better, you won't have memory overhead, your quoted sequence would be evaluated lazily. –  kassak Dec 22 '12 at 20:11

First write make_transform_range( old_range, functor ). For a first version assume old_range is a std::pair of iterators, but ideally it should be anything that admits begin(c).

Then the answer becomes really clean and efficient. Take the range you are working on, transform it without actually calling the functions, then call join on it.

In am on my phone, so typing up the rather hairy make_transform_range is beyond me. And it is pretty hairy.

Here is a less abstracted attempt.

auto functor = []( my_pair const&p )->std::string {
  if (p.second) return quote( p.first );
  return p.first;
};
auto tbegin = boost::make_transform_iterator( b, functor );
auto tend = boost::make_transform_iterator( e, functor );
join(…);

...which is less nasty than I feared, if it works. I still think make_transform_range is worth it, but maybe not for a one off.

Another approach would be the boost range library, with all that funky syntax. It has ranged based transform already.

share|improve this answer

It's easiest to use Boost.Range's transformed adaptor:

#include <string>
#include <vector>
#include <tuple>
#include <iostream>
#include <algorithm>
#include <boost/algorithm/string/join.hpp> 
#include <boost/range/adaptor/transformed.hpp>

int main()
{
    std::vector<std::tuple< std::string, bool >> tuples =
    { 
        std::make_tuple( "42", false ), 
        std::make_tuple( "foo", true ), 
        std::make_tuple( "3.14159", false ) 
    };

  std::cout
      << boost::algorithm::join( 
                tuples | boost::adaptors::transformed(
                    [](std::tuple< std::string, bool > const &tup){
                        return std::get<1>(tup) ? 
                            "'" + std::get<0>(tup) + "'" :
                                  std::get<0>(tup);
                    }
                ), "|" )
      << std::endl;
}
share|improve this answer

Your requirement is not a generic one for that why not just loop through the vector and append the strings ?

std::vector<std::tuple<std::string, bool>> coll;
coll.push_back(make_tuple("foo", false));
coll.push_back(make_tuple("bar", true));
coll.push_back(make_tuple("foo", false));
std::string result;
result.reserve(coll.size());

for(auto& val : coll)
{
  result += std::get<1>(val) ? ("'" + std::get<0>(val) + "'|") 
                             : std::get<0>(val) + "|";
}

boost::trim_if(result, boost::is_any_of("|"));
std::cout << result << "\n";
share|improve this answer

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