289

Should I use

std::sort(numbers.begin(), numbers.end(), std::greater<int>());

or

std::sort(numbers.rbegin(), numbers.rend());   // note: reverse iterators

to sort a vector in descending order? Are there any benefits or drawbacks with one approach or the other?

  • 2
    +1 I think the answer is obvious, but this question has an interesting bit of trivium. :) – wilhelmtell Jan 27 '12 at 19:00
  • 2
    I'd vote for the first option, just because then I won't ever have to deal with reverse_iterator's. – evandrix Jan 29 '13 at 16:56
  • 2
    @wilhelmtell A noob question but why should the second one sort in descending order ? We are giving the same array as input to the sort method. It's just that we are giving it in the reverse order so why should it be sorted in descending and not ascending order as would be the case with ar.begin() and ar.end. – shshnk Jun 6 '16 at 6:26
  • 6
    @shshnk std::sort(b, e); puts the minimum at b (in our case rbegin, so the last element) and the maximum at e (in our case rend, so the first element). – fredoverflow Jun 6 '16 at 16:55

11 Answers 11

107

Actually, the first one is a bad idea. Use either the second one, or this:

struct greater
{
    template<class T>
    bool operator()(T const &a, T const &b) const { return a > b; }
};

std::sort(numbers.begin(), numbers.end(), greater());

That way your code won't silently break when someone decides numbers should hold long or long long instead of int.

  • 9
    Mention N3421 with a link and you get my upvote ;) – fredoverflow Apr 28 '13 at 20:30
  • 1
    @FredOverflow: You did the honors in your comment ;) – Mehrdad Apr 28 '13 at 20:43
  • 2
    Or stick with the first one. Use a typedef for the numberContainer - a good idea so that someone CAN swap to long long - and write: std::sort(numbers.begin(), numbers.end(), std::greater<numContainer::value_type>()); – RichardHowells May 14 '13 at 19:39
  • 4
    FWIW: open-std.org/jtc1/sc22/wg21/docs/papers/2012/n3421.htm – user220878 Aug 2 '13 at 17:27
  • 6
    Why not just std::greater<typename decltype(numbers)::value_type>() or something? – einpoklum Dec 21 '16 at 14:19
65

Use the first:

std::sort(numbers.begin(), numbers.end(), std::greater<int>());

It's explicit of what's going on - less chance of misreading rbegin as begin, even with a comment. It's clear and readable which is exactly what you want.

Also, the second one may be less efficient than the first given the nature of reverse iterators, although you would have to profile it to be sure.

56

With c++14 you can do this:

std::sort(numbers.begin(), numbers.end(), std::greater<>());
25

What about this?

std::sort(numbers.begin(), numbers.end());
std::reverse(numbers.begin(), numbers.end());
  • 10
    A reason could be to avoid the additional complexity: O(n * log(n)) + O(n) vs O(n * log(n)) – greg Feb 22 '16 at 18:06
  • 28
    @greg O(n * log(n)) = O(n * log(n) + n). They are two ways of defining the same set. You mean to say "This might be slower." – pjvandehaar Mar 1 '16 at 20:56
  • 3
    @pjvandehaar Greg is fine. He explicitly didn't say, O(n * log(n) + n), he said O(n * log(n)) + O(n). You're right that his wording is unclear (especially his misuse of the word complexity), but you could've answered in a kinder way. E.g.: Maybe you meant to use the word 'computation' instead of the word 'complexity'. Reversing the numbers is an unnecessary O(n) step to an otherwise identical O(n * log(n)) step. – Ofek Gila Sep 30 '18 at 9:16
  • 2
    @OfekGila My understanding is that big-O notation is about sets of functions, and notation involving = and + are just conveniences meaning and . In that case, O(n*log(n)) + O(n) is a convenient notation for O(n*log(n)) ∪ O(n) which is the same as O(n*log(n)). The word "computation" is a good suggestion and you are right about the tone. – pjvandehaar Oct 3 '18 at 9:38
20

Instead of a functor as Mehrdad proposed, you could use a Lambda function.

sort(numbers.begin(), numbers.end(), [](const int a, const int b) {return a > b; });
15

According to my machine, sorting a long long vector of [1..3000000] using the first method takes around 4 seconds, while using the second takes about twice the time. That says something, obviously, but I don't understand why either. Just think this would be helpful.

Same thing reported here.

As said by Xeo, with -O3 they use about the same time to finish.

  • 12
    Did you maybe just not compile with optimizations turned on? Sounds very much like the reverse_iterator operations weren't inlined, and given that they're just a wrapper around the actual iterators, it's no wonder they take double the time without inlining. – Xeo Jan 26 '12 at 20:58
  • @Xeo Even if they were inlined some implementations use an addition per dereference. – Pubby Jan 26 '12 at 21:00
  • @ildjarn: Because it's like that? The base() member function for example returns the wrapped iterator. – Xeo Jan 26 '12 at 21:00
  • 1
    @Xeo Now they both finish in a second. Thanks! – Ziyao Wei Jan 26 '12 at 21:03
  • 3
    @Xeo : I take it back; the standard actually mandates that std::vector<>::reverse_iterator is implemented in terms of std::reverse_iterator<>. Bizarre; today I learned. :-P – ildjarn Jan 26 '12 at 21:03
10

First approach refers:

    std::sort(numbers.begin(), numbers.end(), std::greater<>());

You may use the first approach because of getting more efficiency than second.
The first approach's time complexity less than second one.

  • 3
    how is the complexity of first less then second one??? – rimalonfire Dec 12 '17 at 16:04
  • This is the same answer as mrexciting's one. The remark about complexity is also unclear to me. – Philipp Claßen Apr 9 '18 at 22:42
6
bool comp(int i, int j) { return i > j; }
sort(numbers.begin(), numbers.end(), comp);
  • 4
    to be a valid answer, you should consider writing something about advantages/drawbacks of your vs. the OP's mentions methods – Stefan Hegny Mar 22 '17 at 16:12
1

I don't think you should use either of the methods in the question as they're both confusing, and the second one is fragile as Mehrdad suggests.

I would advocate the following, as it looks like a standard library function and makes its intention clear:

#include <iterator>

template <class RandomIt>
void reverse_sort(RandomIt first, RandomIt last)
{
    std::sort(first, last, 
        std::greater<typename std::iterator_traits<RandomIt>::value_type>());
}
  • 2
    This is like a thousand times more confusing than just using the std::greater comparator.... – Apollys Dec 15 '17 at 10:29
  • @Apollys I agree that starting with C++14, std::greater<> looks like the prefered solution. If you do not have C++14, it could still be useful if you want to rule out any surprises with std::greater<int> (e.g., when the types at some point change from int to long). – Philipp Claßen Apr 9 '18 at 22:48
1

You can either use the first one or try the code below which is equally efficient

sort(&a[0], &a[n], greater<int>());
0

TL;DR

Use any. They are almost the same.

Boring answer

As usual, there are pros and cons.

Use std::reverse_iterator:

  • When you are sorting custom types and you don't want to implement operator>()
  • When you are too lazy to type std::greater<int>()

Use std::greater when:

  • When you want to have more explicit code
  • When you want to avoid using obscure reverse iterators

As for performance, both methods are equally efficient. I tried the following benchmark:

#include <algorithm>
#include <chrono>
#include <iostream>
#include <fstream>
#include <vector>

using namespace std::chrono;

/* 64 Megabytes. */
#define VECTOR_SIZE (((1 << 20) * 64) / sizeof(int))
/* Number of elements to sort. */
#define SORT_SIZE 100000

int main(int argc, char **argv) {
    std::vector<int> vec;
    vec.resize(VECTOR_SIZE);

    /* We generate more data here, so the first SORT_SIZE elements are evicted
       from the cache. */
    std::ifstream urandom("/dev/urandom", std::ios::in | std::ifstream::binary);
    urandom.read((char*)vec.data(), vec.size() * sizeof(int));
    urandom.close();

    auto start = steady_clock::now();
#if USE_REVERSE_ITER
    auto it_rbegin = vec.rend() - SORT_SIZE;
    std::sort(it_rbegin, vec.rend());
#else
    auto it_end = vec.begin() + SORT_SIZE;
    std::sort(vec.begin(), it_end, std::greater<int>());
#endif
    auto stop = steady_clock::now();

    std::cout << "Sorting time: "
          << duration_cast<microseconds>(stop - start).count()
          << "us" << std::endl;
    return 0;
}

With this command line:

g++ -g -DUSE_REVERSE_ITER=0 -std=c++11 -O3 main.cpp \
    && valgrind --cachegrind-out-file=cachegrind.out --tool=cachegrind ./a.out \
    && cg_annotate cachegrind.out
g++ -g -DUSE_REVERSE_ITER=1 -std=c++11 -O3 main.cpp \
    && valgrind --cachegrind-out-file=cachegrind.out --tool=cachegrind ./a.out \
    && cg_annotate cachegrind.out

std::greater demo std::reverse_iterator demo

Timings are same. Valgrind reports the same number of cache misses.

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