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  1. Prepare
  2. Algorithms
  3. Implementation
  4. Absolute Permutation
  5. Discussions

Absolute Permutation

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  • thanhtai1703
     + 0 comments

    C++ code solution

    vector<int> Permutation(vector<int> arr, int k){
    vector<int>result;
    int size = arr.size();
    int start = 0;
    int end = k;
    int count = 0;
    while(start < size){
        swap(arr[start], arr[end]);
        count++;
        if (k != 1){
            start = start + 1;
            end = end + 1;
            if (count == k){
                start = start + k;
                end = end + k;
                count = 0;
            }
        } else {
            if (count == 1){
                start = start + 2*k;
                end = end + 2*k;
                count = 0;
            }
        }
    }
    result = arr;
    return result;
}
vector<int> absolutePermutation(int n, int k) {
    vector<int> newarr;
    vector<int> result;
    int m = n % k;
    if (k == 0){
        for(int i = 0; i < n; i++){newarr.push_back(i+1);}
        result = newarr;
    }
    else if (k == 1)
    {
        if (n % 2 != 0){newarr.push_back(-1);result = newarr;}
        else {
            for (int i = 0; i < n; i++) newarr.push_back(i+1);
            result = Permutation(newarr, k);
        }
    }
    else {
        if (m != 0){newarr.push_back(-1);result = newarr;}
        else 
        {
            if ((n/k) % 2 != 0){newarr.push_back(-1);result = newarr;}
            else {
                for (int i = 0; i < n; i++) newarr.push_back(i+1);
                result = Permutation(newarr, k);}
        }
    }
    return result;
}

  • tiagoiesbick
     + 0 comments

    Python 3

    def absolutePermutation(n, k):
    # Write your code here    
    if k == 0:
        return [i for i in range(1,n+1,1)]
    elif n % (2*k) != 0:
        return [-1]
    else:
        if k == 1:
            return [i+1 if i%2 != 0 else i-1 for i in range(1,n+1,1)]
        elif k <= n/2 and n % k == 0:
            a = 1
            flag = True
            ans = []
            while a <= n:
                if flag:
                    ans.append(a+k)
                else:
                    ans.append(a-k)
                a += 1
                if a % k == 1:
                    flag = not flag
            return ans
        else:
            return [-1]

  • tanhtanh1505
     + 0 comments

    js

    function absolutePermutation(n, k) {
  let a = [];
  for (let i = 1; i <= n; i++) {
    a.push(i);
  }
  k = Math.abs(k);
  if (k == 0) return a;
  else if (k > n / 2 + 1 || n % k != 0 || (n/k % 2 != 0)) return [-1];
  else {
    a = [];
    for (let i = 1; i <= n; i++) {
      a.push(i + Math.pow(-1, Math.floor((i - 0.1) / k)) * k);
    }
    return a;
  }
}

  • mohammadhammads1
     + 0 comments

    Cpp solution O(n) time complexity 

    vector<int> absolutePermutation(int n, int k) {
        vector<int> ans(n,0) ;

        for(int i = 1 ; i <= n ; i++){
                int pos = i + k ; 
                if(i-k > 0 && ans[i-k-1] == 0 ){
                        ans[i-k-1] = i ;
                }else if(i+k <= n && ans[i+k-1] == 0){
                        ans[i+k-1] = i ;
                }else{
                        vector<int> n ;
                        n.push_back(-1) ; 
                        return n ;
                }
        }
        cout << endl ;
        for(int i = 0 ; i < n ; i++){
             if(abs(ans[i] - (i+1)) != k || ans[i] == 0 ){
                     vector<int> n ;
                     n.push_back(-1) ;
                     return n ;
             }
        }

        return ans ;
}

  • yashparihar729
     + 0 comments

    here is my solution in java, javascript, python, C, C++, Csharp HackerRank Absolute Permutation Problem Solution

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