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The map of the form map<long long, vector<long long>> is given. One has to take all keys and values modulo some integer N. Some keys can merge and corresponding values must join accordingly. For example, the map {{1,{2,6,4}}, {5,{8,4,9}}, {10,{5,1,7}}} should be equal to {{1,{2,1,4}}, {0,{0,1,2,3,4}}} after reduction modulo 5.

My way is in using a new map but I think there should be a better way.

code added

vector<long long> tmp;
//integer N, for example N = 5
int N = 5;
unordered_map<long long, vector<long long>> map;
//temporary map
unordered_map<long long, vector<long long>> map_tmp;
     for (auto & x : map)
        {
            tmp.clear();
            for (auto & y : x.second) tmp.push_back(y % N);
            ind = x.first % N;
            map_tmp[ind].insert(map_tmp[ind].end(), tmp.begin(), tmp.end());
            sort(map_tmp[ind].begin(), map_tmp[ind].end());
            map_tmp[ind].erase(unique(map_tmp[ind].begin(), map_tmp[ind].end()), map_tmp[ind].end());
        }
        map = map_tmp;
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  • Can you use C++17 or newer? Aug 3 at 13:43
  • This seems like a heavy lift for std::transform. Anyway, if you have working code and you're wondering how it could be improved, that's a question for code review. But please do take a look at the how to ask, because in particular you will need to post the code instead of an extremely brief high-level summary of the code. Aug 3 at 13:53
  • what have you done? I see task description, but no attempts to solve it.
    – Marek R
    Aug 3 at 13:53
  • "should be equal" does that include the order of the vector elements?
    – Caleth
    Aug 3 at 13:55
  • keys in maps are const, at least you need to create new elements, and then I don't see the advantage over creating a new map Aug 3 at 14:02
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Since apparently values in map are unique and after applying modulo operation values contains unique items, then you should use different data structure. for example:

using Map = std::unordered_map<int, std::set<int>>;

std::set will handle uniqueness and order of items for given key.

Now the whole trick is to inspect API of std::unordered_map and std::set and how item can be inserted there. See:

Note return value: std::pair<iterator,bool> which gives you iterator to inserted or exciting item in map/set.

Knowing this thing writing a code which is able to meet your requriements is quite simple:

using Map = std::unordered_map<int, std::set<int>>;

Map moduloMap(const Map& in, int mod)
{
    Map out;
    for (const auto& [k, s] : in) {
        if (s.empty())
            continue;
        auto& destSet = out.insert({ k % mod, {} }).first->second;
        for (auto x : s) {
            destSet.insert(x % mod);
        }
    }
    return out;
}

Live demo with tests

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  • but you should be able to approve answer. This is strange that SO has this limitation. If I remember correctly it wasn't like this when I started
    – Marek R
    Aug 4 at 9:47
0

Sometimes a for loop can be the easiest, clearest way to do something.

map<long long, vector<long long>> result;
for (const auto& [key, vec] : input) {
    process (result[key%5], vec);
    }

and process takes the vector by (non-const) reference and appends the reduced values from the second (const) argument.


update

After seeing the code you posted, I have several suggestions:

  1. use a set instead. You are spending multiple steps to append the new values, sort the whole thing together, then remove duplicates. Just use a set which maintains a single copy of each value automatically.
  2. use structured binding in your loop. Instead of x.second and x.first you can just name them key and vec as in my earlier post.
  3. Assuming you still need tmp, declare it where you are calling .clear() now, instead of declaring it way up at the top of your code. You don't need to clear it each time through the loop; it will be empty each time through the loop naturally.
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  • @463035818_is_not_a_number As does my code.
    – JDługosz
    Aug 3 at 14:06
  • @463035818_is_not_a_number input is unchanged. result is populated with the modulo keys and merged modulo values. I don't remove anything.
    – JDługosz
    Aug 3 at 14:08
  • arghs, really sorry. Completely misread the code. I should take a break Aug 3 at 14:09

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