Discussion on Sequence Equation Challenge

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4 days ago+ 0 comments

Java

public static List<Integer> permutationEquation(List<Integer> p) {
        List<Integer> result = new ArrayList<>();
        
        for (int x = 1; x <= p.size(); x++) {
            int px = p.indexOf(x) + 1;
            int py = p.indexOf(px) + 1;
            
            result.add(py);
        }

        return result;
    }

3 weeks ago+ 1 comment

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;
}

4 weeks ago+ 0 comments

Here is my one line Python solution!

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

1 month ago+ 1 comment

The Sequence Equation can be tricky, but once you break it down step by step, it starts making sense! It's kind of like how Concrete Estimating Services work — you need accuracy and attention to detail. If you're looking for an easier way, using capcut for pc tools can really simplify the process and save time.

2 months ago+ 0 comments

Python Method : Create dict to store the element as key and the index+1 of p as value. For example, [5,2,1,3,4] we can get {5:1, 2:2, 1:3, 3:4, 4:5} and use p_dict[p_dict[1]] to get the answer 4 . It can reduce the computing of list.index().

def permutationEquation(p):
    p_dict = {j:i+1 for i,j in enumerate(p)}
    y = []
    for x in range(1,len(p)+1):
        y.append(p_dict[p_dict[x]])
    return y

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