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I'm looking for the most elegant way to implode a vector of strings into a string. Below is the solution I'm using now:

static std::string& implode(const std::vector<std::string>& elems, char delim, std::string& s)
{
    for (std::vector<std::string>::const_iterator ii = elems.begin(); ii != elems.end(); ++ii)
    {
        s += (*ii);
        if ( ii + 1 != elems.end() ) {
            s += delim;
        }
    }

    return s;
}

static std::string implode(const std::vector<std::string>& elems, char delim)
{
    std::string s;
    return implode(elems, delim, s);
}

Is there any others out there?

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10 Answers 10

up vote 2 down vote accepted

It might be not obvious but while adding strings in implode you are doing lots of memory allocations and deallocations. A possible improvement is to do reserve() for s once and the then all your additions.

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Use boost::algorithm::join(..):

#include <boost/algorithm/string/join.hpp>
...
string joinedString = boost::algorithm::join(elems, delim);

See also this question.

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You should use std::ostringstream rather than std::string to build the output (then you can call its str() method at the end to get a string, so your interface need not change, only the temporary s).

From there, you could change to using std::ostream_iterator, like so:

copy(elems.begin(), elems.end(), ostream_iterator<string>(s, delim)); 

But this has two problems:

  1. delim now needs to be a const char*, rather than a single char. No big deal.
  2. std::ostream_iterator writes the delimiter after every single element, including the last. So you'd either need to erase the last one at the end, or write your own version of the iterator which doesn't have this annoyance. It'd be worth doing the latter if you have a lot of code that needs things like this; otherwise the whole mess might be best avoided (i.e. use ostringstream but not ostream_iterator).
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Or use one that's already written: stackoverflow.com/questions/3496982/… –  Jerry Coffin Apr 16 '11 at 20:03
std::vector<std::string> strings;

const char* const delim = ", ";

std::ostringstream imploded;
std::copy(strings.begin(), strings.end(),
           std::ostream_iterator<std::string>(imploded, delim));

(include <string>, <vector>, <sstream> and <iterator>)

If you want to have a clean end (no trailing delimiter) have a look here

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1  
keep in mind, though, that it will add extra delimiter (the second parameter to the std::ostream_iterator constructor at the end of the stream. –  Michael Krelin - hacker Apr 16 '11 at 19:38
    
fixed that for ya –  sehe Apr 16 '11 at 19:39

Slightly long solution, but doesn't use std::ostringstream, and doesn't require a hack to remove the last delimiter.

http://www.ideone.com/hW1M9

And the code:

struct appender
{
  appender(char d, std::string& sd, int ic) : delim(d), dest(sd), count(ic)
  {
    dest.reserve(2048);
  }

  void operator()(std::string const& copy)
  {
    dest.append(copy);
    if (--count)
      dest.append(1, delim);
  }

  char delim;
  mutable std::string& dest;
  mutable int count;
};

void implode(const std::vector<std::string>& elems, char delim, std::string& s)
{
  std::for_each(elems.begin(), elems.end(), appender(delim, s, elems.size()));
}
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A version that uses std::accumulate:

#include <numeric>
#include <iostream>
#include <string>

struct infix {
  std::string sep;
  infix(const std::string& sep) : sep(sep) {}
  std::string operator()(const std::string& lhs, const std::string& rhs) {
    std::string rz(lhs);
    if(!lhs.empty() && !rhs.empty())
      rz += sep;
    rz += rhs;
    return rz;
  }
};

int main() {
  std::string a[] = { "Hello", "World", "is", "a", "program" };
  std::string sum = std::accumulate(a, a+5, std::string(), infix(", "));
  std::cout << sum << "\n";
}
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Because I love one-liners (they are very useful for all kinds of weird stuff, as you'll see at the end), here's a solution using std::accumulate and C++11 lambda:

std::accumulate(alist.begin(), alist.end(), std::string(), 
    [](const std::string& a, const std::string& b) -> std::string { 
        return a + (a.length() > 0 ? "," : "") + b; 
    } )

I find this syntax useful with stream operator, where I don't want to have all kinds of weird logic out of scope from the stream operation, just to do a simple string join. Consider for example this return statement from method that formats a string using stream operators (using std;):

return (dynamic_cast<ostringstream&>(ostringstream()
    << "List content: " << endl
    << std::accumulate(alist.begin(), alist.end(), std::string(), 
        [](const std::string& a, const std::string& b) -> std::string { 
            return a + (a.length() > 0 ? "," : "") + b; 
        } ) << endl
    << "Maybe some more stuff" << endl
    )).str();
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Don't use accumulate for strings. Most of the other answers are O(n) but accumulate is O(n^2) because it makes a temporary copy of the accumulator before appending each element. And no, move semantics don't help. –  Oktalist Sep 9 '13 at 20:31
    
@Oktalist, I'm not sure why you say that - cplusplus.com/reference/numeric/accumulate says "Complexity is linear in the distance between first and last". –  Guss Sep 10 '13 at 6:43
    
That's assuming that each individual addition takes constant time. If T has an overloaded operator+ (like string does) or if you provide your own functor then all bets are off. Although I may have been hasty in saying move semantics don't help, they don't solve the problem in the two implementations that I've checked. See my answers to similar questions. –  Oktalist Sep 10 '13 at 23:43
    
Ok, I see your point - though as @skwllsp says in the approved answer - this is a price that you will have to pay when doing string joining, at least without reverting to some gritty c-style "highly efficient" code. –  Guss Sep 11 '13 at 8:08
    
skwllsp's comment is nothing to do with it. Like I said, most of the other answers (and the OP's implode example) are doing the right thing. They are O(n), even if they don't call reserve on the string. Only the solution using accumulate is O(n^2). No need for C-style code. –  Oktalist Sep 11 '13 at 14:32
string join(const vector<string>& vec, const char* delim)
{
    stringstream res;
    copy(vec.begin(), vec.end(), ostream_iterator<string>(res, delim));
    return res.str();
}
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just add !! String s = "";

for (int i = 0; i < doc.size(); i++)   //doc is the vector
    s += doc[i];
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Here is another one that doesn't add the delimiter after the last element:

std::string concat_strings(const std::vector<std::string> &elements, const std::string &separator)
{       
    if (!elements.empty())
    {
        std::stringstream ss;
        auto it = elements.cbegin();
        while (true)
        {
            ss << *it++;
            if (it != elements.cend())
                ss << separator;
            else
                return ss.str();
        }       
    }
    return "";
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