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Everyone encounters this issue at some point:

for(const auto& item : items) {
    cout << item << separator;
}

... and you get an extra separator you don't want at the end. Sometime it's not printing, but, say, performing some other action, but such that consecutive actions of the same type require some separator action - but the last doesn't.

Now, if you work with old-school for loops and an array, you would do

for(int i = 0; i < num_items; i++)
    cout << items[i];
    if (i < num_items - 1) { cout << separator; }
}

(or you could special-case the last item out of the loop.) If you have anything that admits non-destructive iterators, even if you don't know its size, you can do:

for(auto it = items.cbegin(); it != items.cend(); it++) {
    cout << *it;
    if (std::next(it) != items.cend()) { cout << separator; }
}

I dislike the aesthetics of the last two, and like ranged for loops. Can I obtain the same effect as with the last two but using more spiffy C++11ish constructs?

Edit:

To expand the question further (beyond, say, this one), I'll say I would also like not to expressly have special-case the first or the last element. That's an "implementation detail" which I don't want to be bothered with. So, in imaginary-future-C++, maybe something like:

for(const auto& item : items) {
    cout << item;
} and_between {
    cout << separator;
}
share|improve this question

marked as duplicate by djechlin, Blackwood, Matthieu M. c++ Feb 14 at 15:13

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

4  
If you wanted to take a page from the functional programming book, you can always use the accumulate method, although this tends to be overkill a lot of the time – Kevin W. Feb 12 at 21:57
4  
C++ does not have algorithmic join. This is a huge shame. – SergeyA Feb 12 at 21:57
1  
@KevinW., fold is not going to help you - it will apply operation for every element, including the first and the last. – SergeyA Feb 12 at 21:58
3  
@SergeyA if you notice, the c++ implementation of accumulate takes in 3 arguments in addition to the joining method, so you just join from the second element to the last element and have the first element as the base element. It would work just fine this way. In fact, separating something with a delimiter is literally one of the examples in the link. – Kevin W. Feb 12 at 22:01
1  
@SergeyA: I agree you can't call std::accumulate when your container is empty, but one element should be just fine (the single element gets passed as init, and begin == end initially, resulting in no folds) – Ben Voigt Feb 13 at 16:06

12 Answers 12

My way (without additional branch) is:

const auto separator = "WhatYouWantHere";
auto sep = "";
for(const auto& item : items) {
    std::cout << sep << item;
    sep = separator;
}
share|improve this answer
    
Clever, that... not quite what I was looking for but pretty nice. – einpoklum Feb 12 at 22:14
    
This is of course the more obvious, simpler and cleaner way – edc65 Feb 12 at 23:12
    
Ridiculously concise and elegant. The type of code I hope to write one day. – MtRoad Feb 19 at 2:01
    
Yes, it's simple and clever. I can well imagine to use this method the next time I have this kind of task. But then, it comes at the cost of introducing an additional (mutable) variable and assigning a value to it at every iteration. – Frank Puffer Feb 20 at 9:47

Excluding an end element from iteration is the sort of thing that Ranges proposal is designed to make easy. (Note that there are better ways to solve the specific task of string joining, breaking an element off from iteration just creates more special cases to worry about, such as when the collection was already empty.)

While we wait for a standardized Ranges paradigm, we can do it with the existing ranged-for with a little helper class.

template<typename T> struct trim_last
{
    T& inner;

    friend auto begin( const trim_last& outer )
    { using std::begin;
      return begin(outer.inner); }

    friend auto end( const trim_last& outer )
    { using std::end;
      auto e = end(outer.inner); if(e != begin(outer)) --e; return e; }
};

template<typename T> trim_last<T> skip_last( T& inner ) { return { inner }; }

and now you can write

for(const auto& item : skip_last(items)) {
    cout << item << separator;
}

Demo: http://rextester.com/MFH77611

For skip_last that works with ranged-for, a Bidirectional iterator is needed, for similar skip_first it is sufficient to have a Forward iterator.

share|improve this answer
1  
@SergeyA: Means that an input list of zero elements creates an output of zero elements, instead of breaking. – Ben Voigt Feb 12 at 22:09
4  
@SergeyA: Of course that's guaranteed, has been ever since the first time C was standardized. See [conv.prom] for the current C++ wording: " A prvalue of type bool can be converted to a prvalue of type int, with false becoming zero and true becoming one." – Ben Voigt Feb 12 at 22:10
6  
OP wants a join in fact, not skipping last element. (just the last separator should be kept). – Jarod42 Feb 12 at 22:12
2  
@SergeyA: Sure, it is not the only way to solve concatenation without trailing separator. OP has an X-Y problem. But the question that OP asked, "for each except the last", is interesting and useful, and this answer provides that. – Ben Voigt Feb 12 at 22:26
2  
@einpoklum: You could make a good argument that ranged-for in general is used more for reading than updating... yet the Standard committee chose to allow write access to the elements (not to the container) and leave it up to the programmer to choose read-only access (by-value iteration variable, or const reference) or write (non-const reference). My solution preserves that feature. – Ben Voigt Feb 13 at 15:21

Do you know Duff's device?

int main() {
  int const items[] = {21, 42, 63};
  int const * item = items;
  int const * const end = items + sizeof(items) / sizeof(items[0]);
  // the device:
  switch (1) {
    case 0: do { cout << ", ";
    default: cout << *item; ++item; } while (item != end);
  }

  cout << endl << "I'm so sorry" << endl;
  return 0;
}

(Live)

Hopefully I didn't ruin everyone's day. If you don't want to either then never use this.

(mumble) I'm so sorry ...


The device handling empty containers (ranges):

template<typename Iterator, typename Fn1, typename Fn2>
void for_the_device(Iterator from, Iterator to, Fn1 always, Fn2 butFirst) {
  switch ((from == to) ? 1 : 2) {
    case 0:
      do {
        butFirst(*from);
    case 2:
        always(*from); ++from;
      } while (from != to);
    default: // reached directly when from == to
      break;
  }
}

Live test:

int main() {
  int const items[] = {21, 42, 63};
  int const * const end = items + sizeof(items) / sizeof(items[0]);
  for_the_device(items, end,
    [](auto const & i) { cout << i;},
    [](auto const & i) { cout << ", ";});
  cout << endl << "I'm (still) so sorry" << endl;
  // Now on an empty range
  for_the_device(end, end,
    [](auto const & i) { cout << i;},
    [](auto const & i) { cout << ", ";});
  cout << "Incredibly sorry." << endl;
  return 0;
}
share|improve this answer
2  
It's not foreach but doing something for each element. A loop's a loop, most of the time. – Daniel Jour Feb 13 at 1:04
5  
I could've lived a long and blissful life without ever knowing of this. Thank you. – Bilal Akil Feb 13 at 1:56
1  
I did know about Duff's device, but many thanks for showing that it applies here. It is an elegant tool for a more civilized age... ok, maybe a less-civilized age. – einpoklum Feb 13 at 10:26
2  
The funniest thing is that the boolean flag approach effectively is optimized into the device by gcc. – SergeyA Feb 13 at 13:08
4  
What not a simple goto? – Carsten S Feb 13 at 21:18

I don't know of any special idioms for this. However, I prefer to special case the first and then perform the operation on the remaining items.

#include <iostream>
#include <vector>

int main()
{
    std::vector<int> values = { 1, 2, 3, 4, 5 };

    std::cout << "\"";
    if (!values.empty())
    {
        std::cout << values[0];

        for (size_t i = 1; i < values.size(); ++i)
        {
            std::cout << ", " << values[i];
        }
    }
    std::cout << "\"\n";

    return 0;
}

Output: "1, 2, 3, 4, 5"

share|improve this answer
    
Exactly the same reaction here; also fits well in any language that can head and tail a list. – Tommy Feb 12 at 21:56
6  
Important to note that that loop can be written as for( const auto& item : skip_first(values) )... in order to meet the requirements of the question. – Ben Voigt Feb 12 at 21:57
    
@einpoklum Yes, thank you. I fixed the typo. – James Adkison Feb 12 at 22:00
1  
@BenVoigt: Is skip_first a (hypothetical) function that we'd have to define, or is there a C++ function that does what would be needed? – R_Kapp Feb 12 at 22:01
    
@R_Kapp: I was busy writing it, see my answer. – Ben Voigt Feb 12 at 22:04

Typically I do it the opposite way:

bool first=true;
for(const auto& item : items) {
    if(!first) cout<<separator;
    first = false;
    cout << item;
}
share|improve this answer
2  
You need an if/else to make that work – Ben Voigt Feb 12 at 21:58
    
@BenVoigt, why? It works perfectly well without else in this case. However, it has an unpleasant branch on every iteration - in extreme cases can be a performance hit (can't imagine any real ones, though). – SergeyA Feb 12 at 22:02
    
@SergeyA: well predicted branches are essentially free (and this one is perfectly predicted after a few iterations), I wouldn't worry about it. – Matteo Italia Feb 12 at 22:03
2  
first will never go false – Christophe Feb 12 at 22:04
2  
@Deduplicator, I tested it on Clang and gcc. gcc completely removes the flag altogether - just orders jmps to make sure it is called only once, but clang goes by the book, checking it on every iteration (puts in register in my test, though). – SergeyA Feb 13 at 1:15

I like plain control structures.

if (first == last) return;

while (true) {
  std::cout << *first;
  ++first;
  if (first == last) break;
  std::cout << separator;
}

Depending on your taste, you can put the increment and test in a single line:

...
while (true) {
  std::cout << *first;
  if (++first == last) break;
  std::cout << separator;
}
share|improve this answer
    
A step further, and this would have been written in assembly. – Ruslan Feb 13 at 21:52

I don't thing you can get around having a special case somewhere... For example, Boost's String Algorithms Library has a join algorithm. If you look at its implementation, you'll see a special case for the first item (no proceeding delimitier) and a then delimiter is added before each subsequent element.

share|improve this answer
2  
Have a look at ostream joiners. – einpoklum Feb 12 at 22:50
    
@einpoklum thanks, I didn't know that was coming. Reinforces that there's no algorithm(/iterator) will get around having a special case: for ostream_joiner it's embodied in the boolean that tracks whether you're about to write the first element. Basic thesis is that when you're joining N elements this way (where N > 1), you're not doing the same operation N times--you've got one element that must be handled differently. – Mark Waterman Feb 12 at 23:15
1  
Ok, yes, but it's not the coding using those joiner that has to track anything. See also @MaartenHilferink 's answer. The principle of "the best line of code is the one you don't have to write yourself", as others have quipped here. – einpoklum Feb 13 at 10:24

You could define a function for_each_and_join that takes two functors as argument. The first functor does work with each element, the second works with each pair of adjacent elements:

#include <iostream>
#include <vector>

template <typename Iter, typename FEach, typename FJoin>
void for_each_and_join(Iter iter, Iter end, FEach&& feach, FJoin&& fjoin)
{
    if (iter == end)
        return;

    while (true) {
        feach(*iter);
        Iter curr = iter;
        if (++iter == end)
            return;
        fjoin(*curr, *iter);
    }
}

int main() {
    std::vector<int> values = { 1, 2, 3, 4, 5 };
    for_each_and_join(values.begin(), values.end()
    ,  [](auto v) { std::cout << v; }
    ,  [](auto, auto) { std::cout << ","; }
    );
}

Live example: http://ideone.com/fR5S9H

share|improve this answer
    
You really can do without the first function. The concept of a monoid lets you kick things off with a special empty value for the "left" and the first real element for "right". – JDługosz Feb 13 at 20:02
int a[3] = {1,2,3};
int size = 3;
int i = 0;

do {
    std::cout << a[i];
} while (++i < size && std::cout << ", ");

Output:

1, 2, 3 

The goal is to use the way && is evaluated. If the first condition is true, it evaluates the second. If it is not true, then the second condition is skipped.

share|improve this answer

I don't know about "idiomatic", but C++11 provides std::prev and std::next functions for bidirectional iterators.

int main() {
    vector<int> items = {0, 1, 2, 3, 4};
    string separator(",");

    // Guard to prevent possible segfault on prev(items.cend())
    if(items.size() > 0) {
        for(auto it = items.cbegin(); it != prev(items.cend()); it++) {
            cout << (*it) << separator;
        }
        cout << (*prev(items.cend()));
    }
}
share|improve this answer
    
Way way too many lines of code my friend :-) ... and I don't want to have to check the size of items either. – einpoklum Feb 12 at 22:11
2  
@einpoklum, I agree with your sentiment. "The best line of code is one you don't have to write." I was just trying to give you something using new C++11 fancy tools. – MtRoad Feb 12 at 22:21

I like the boost::join function. So for more general behavior, you want a function that is called for each pair of items and can have a persistent state. You'd use it as a funcgion call with a lambda:

foreachpair (range, [](auto left, auto right){ whatever });

Now you can get back to a regular range-based for loop by using range filters!

for (auto pair : collection|aspairs) {
    Do-something_with (pair.first);
}

In this idea, pair is set to a pair of adjecent elements of the original collection. If you have "abcde" then on the first iteration you are given first='a' and second='b'; next time through first='b' and second='c'; etc.

You can use a similar filter approach to prepare a tuple that tags each iteration item with an enumeration for /first/middle/last/ iteration and then do a switch inside the loop.

To simply leave off the last element, use a range filter for all-but-last. I don't know if that's already in Boost.Range or what might be supplied with Rangev3 in progress, but that's the general approach to making the regular loop do tricks and making it "neat".

share|improve this answer

Heres a little trick I like to use:

For bi-directionally iterable objects: for ( auto it = items.begin(); it != items.end(); it++ ) { std::cout << *it << (it == items.end()-1 ? "" : sep); };

Using the ternary ? operator I compare the current position of the iterator against the item.end()-1 call. Since the iterator returned by item.end() refers to the position after the last element, we decrement it once to get our actual last element.

If this item isn't the last element in the iterable, we return our separator (defined elsewhere), or if it is the last element, we return an empty string.

For single direction iterables (tested with std::forward_list): for ( auto it = items.begin(); it != items.end(); it++ ) { std::cout << *it << (std::distance( it, items.end() ) == 1 ? "" : sep); };

Here, we're replacing the previous ternary condition with a call to std::distance using the current iterator location, and the end of the iterable.

Note, this version works with both bidirectional iterables as well as single direction iterables.

EDIT: I realize you dislike the .begin() and .end() type iteration, but if you're looking to keep the LOC count down, you're probably going to have to eschew range based iteration in this case.

The "Trick" is simply wrapping the comparison logic within a single ternary expression, if your comparison logic is relatively simple.

share|improve this answer
    
I don't really see where the trick is. Also, you assume items is bidirectionally iterable. – einpoklum Feb 13 at 20:35
    
Edited to account for single direction iterables. Your question didn't specify them as a constraint, but it's worth accounting for. The second example will work with both. – WeRelic Feb 13 at 21:49
1  
In the single-direction iterables example, won't it run at O(n^2) complexity? I'd imagine that std::distance has not way to know the answer other than iterating all the way to end, and you're doing it in every loop iteration. – Jonathan Feb 14 at 7:52
    
@Jonathan True, it's not the most efficient. I suppose it could be improved by storing the length of the iterable in an int before the loop and converting the iterator position to an int type somehow then comparing the values. That would bring it closer to O(n), right? (Sorry if I'm off, I'm not great with big O notation, it's something I'm working on) – WeRelic Feb 15 at 3:37

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