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I have this algorithm for generating the partitions of n:

def partitions(n):
    if n == 0:
        yield []
        return
    for p in partitions(n-1):
        yield [1] + p
        if p and (len(p) < 2 or p[1] > p[0]):
            yield [p[0] + 1] + p[1:]

However I am not sure how to even go about translating this to C++, mostly because I don't know the shorthand equivalents for yield functionality or substring slices or list concatenations, etc. What's the most straightforward translation?

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2  
The simplest translation is a vector and eager evaluation. Whether that's an option depends on how big n gets. Past a certain point, you're probably gonna have to build a state machine. –  cHao Mar 18 '13 at 16:03
    
@cHao Not sure I understand what you mean by that –  MyNameIsKhan Mar 18 '13 at 16:05
    
What i mean is, rather than using yield to generate the elements one by one, figure them all immediately and add them to a std::vector that you then return. If n is too big, though, that won't be feasible. –  cHao Mar 18 '13 at 16:07
    
So you're saying to make it iterative, not recursive? –  MyNameIsKhan Mar 18 '13 at 16:08
    
Recursion, yield-alikes, and C++ don't get along well. Any two together work fine, but all three together are just all kinds of ugly. If you want the functionality of yield, you'll want your function iterative, as a deeper call stack == more crap to have to keep track of. If you don't care, just use a vector and add stuff to it. –  cHao Mar 18 '13 at 16:10

1 Answer 1

I slightly edited BLUEPIXY's answer on this post for your convenience.

#include <iostream>
#include <vector>

void save(std::vector<std::vector<int> > & dest, std::vector<int> const & v, int level){
    dest.push_back(std::vector<int>(v.begin(), v.begin() + level + 1));
}

void partition(int n, std::vector<int> & v, std::vector<std::vector<int> > & dest, int level = 0){
    int first; /* first is before last */
    if(0 == n){
        return;
    }
    v[level] = n;
    save(dest, v, level);

    first = (level == 0) ? 1 : v[level - 1];

    for(int i = first; i <= (n / 2); ++i){
        v[level] = i; /* replace last */
        partition(n - i, v, dest, level + 1);
    }
}

int main(int argc, char ** argv) {
    int N = 30;

    std::vector<int> vec(N);
    std::vector<std::vector<int> > partitions;
    // You could change N * N to minimize the number of relocations
    partitions.reserve(N * N);

    partition(N, vec, partitions);

    std::cout << "Partitions: " << partitions.size() << std::endl;
    for(std::vector<std::vector<int> >::iterator pit = partitions.begin(); pit != partitions.end(); ++pit) {
        std::cout << '[';
        for(std::vector<int>::iterator it = (*pit).begin(); it != (*pit).end(); ++it) {
            std::cout << *it << '\t';
        }
        std::cout << ']' << std::endl;
    }
    return 0;
}

Output on ideone

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