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  1. Prepare
  2. Algorithms
  3. Implementation
  4. Sequence Equation
  5. Discussions

Sequence Equation

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  • mallachandu99
     + 0 comments
    function permutationEquation(p) {
// Write your code here
var map = new Map(),
   ar = [];


p.forEach((v,i) => map.set(v, i+1))

for(let i=1; i<=p.length; i++)
     ar.push( map.get ( map.get(i) ));

    return ar;

  • alban_tyrex
     + 0 comments

    Here is my O(N) c++ solution, you can watch the explanation here : https://youtu.be/D9nfVOmmv7Q

    vector<int> permutationEquation(vector<int> p) {
    vector<int> indexes(p.size() + 1), result;
    for(int i = 1; i <= p.size(); i++) indexes[p[i-1]] = i;
    for(int i = 1; i <= p.size(); i++) result.push_back(indexes[indexes[i]]);
    return result;
}

  • ujjwalgupta12721
     + 0 comments
    vector<int> permutationEquation(vector<int> p) {
vector<int>ans;
for(int i=1;i<=p.size();i++){
   int  it=find(p.begin(),p.end(),i)-p.begin();
    int iit=find(p.begin(),p.end(),it+1)-p.begin();
    ans.push_back(iit+1);
}
    return ans;
}

  • sabsfilho
     + 0 comments

    c# version

        public static List<int> permutationEquation(List<int> p)
    {
        var rs = new List<int>();
        for(int x = 1, n = p.Count; x <= n; x++)
        {
            int y = p.IndexOf(x) + 1;
            rs.Add(p.IndexOf(y) + 1);
        }
        return rs;
    }

  • devin1299
     + 0 comments

    pythnon: 

    def permutationEquation(p):
    result = [0] * len(p)
    for i in range(len(p)):
        result[i] = p.index(p.index(i+1) + 1) + 1
    return result
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