[Codility]Lesson8/Leader/EquiLeader

Mijeong Ryu·2023년 5월 28일
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Codility

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문제

A non-empty array A consisting of N integers is given.

The leader of this array is the value that occurs in more than half of the elements of A.

An equi leader is an index S such that 0 ≤ S < N − 1 and two sequences A[0], A[1], ..., A[S] and A[S + 1], A[S + 2], ..., A[N − 1] have leaders of the same value.

For example, given array A such that:

A[0] = 4
A[1] = 3
A[2] = 4
A[3] = 4
A[4] = 4
A[5] = 2

we can find two equi leaders:

0, because sequences: (4) and (3, 4, 4, 4, 2) have the same leader, whose value is 4.
2, because sequences: (4, 3, 4) and (4, 4, 2) have the same leader, whose value is 4.
The goal is to count the number of equi leaders.

Write a function:

class Solution { public int solution(int[] A); }

that, given a non-empty array A consisting of N integers, returns the number of equi leaders.

For example, given:

A[0] = 4
A[1] = 3
A[2] = 4
A[3] = 4
A[4] = 4
A[5] = 2

the function should return 2, as explained above.

Write an efficient algorithm for the following assumptions:

N is an integer within the range [1..100,000];
each element of array A is an integer within the range [−1,000,000,000..1,000,000,000].
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코드

// you can also use imports, for example:
// import java.util.*;

// you can write to stdout for debugging purposes, e.g.
// System.out.println("this is a debug message");
import java.util.*;
class Solution {
    public int solution(int[] A) {

    //리더찾기
    int[] copyA = new int[A.length];
    copyA = A.clone();
    Arrays.sort(copyA);
    int leader = 0;
    int tmpLeader = copyA[A.length/2];
    int cntLeader = 0;
    for(int i=0; i<copyA.length; i++){
        if(copyA[i] == tmpLeader){
            cntLeader ++;
        }
    }
    if(cntLeader>=A.length/2){
        leader = tmpLeader;
    }
    else{
        return 0;
    }


    int left = 0;
    int right = A.length;
    int leftLeaderCnt = 0;
    int rightLeaderCnt = cntLeader;
    int answer = 0;

    for(int current : A){
        left ++;
        right --;

        if(current == leader){
            rightLeaderCnt --;
            leftLeaderCnt ++;
        }

        if(rightLeaderCnt > right/2 && leftLeaderCnt > left/2){
            answer ++;
        }

    }
return answer;
    }
}

풀이

효율성 문제를 해결하기 위해서, 우선 리더를 구한다.
이 후, 배열의 왼쪽에서 오른쪽으로 이동하면서
왼쪽 배열의 수와 오른쪽 배열의 수를 세고
리더일 경우 왼쪽 리더 카운트는 증가시키고 오른쪽 리더 카운트는 감소시킨다.

마지막 if문에서 각 구간에서 리더가 맞는지 확인하고
둘다 리더일 경우 answer 증가시켜서 리턴한다.

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