标签:dia his you Nging com ever final origin solution
In the world of Dota2, there are two parties: the Radiant
and the Dire
.
The Dota2 senate consists of senators coming from two parties. Now the senate wants to make a decision about a change in the Dota2 game. The voting for this change is a round-based procedure. In each round, each senator can exercise one
of the two rights:
Ban one senator‘s right
: Announce the victory
:
Given a string representing each senator‘s party belonging. The character ‘R‘ and ‘D‘ represent the Radiant
party and the Dire
party respectively. Then if there are n
senators, the size of the given string will be n
.
The round-based procedure starts from the first senator to the last senator in the given order. This procedure will last until the end of voting. All the senators who have lost their rights will be skipped during the procedure.
Suppose every senator is smart enough and will play the best strategy for his own party, you need to predict which party will finally announce the victory and make the change in the Dota2 game. The output should be Radiant
or Dire
.
Example 1:
Input: "RD" Output: "Radiant" Explanation: The first senator comes from Radiant and he can just ban the next senator‘s right in the round 1.
And the second senator can‘t exercise any rights any more since his right has been banned.
And in the round 2, the first senator can just announce the victory since he is the only guy in the senate who can vote.
Example 2:
Input: "RDD" Output: "Dire" Explanation: The first senator comes from Radiant and he can just ban the next senator‘s right in the round 1.
And the second senator can‘t exercise any rights anymore since his right has been banned.
And the third senator comes from Dire and he can ban the first senator‘s right in the round 1.
And in the round 2, the third senator can just announce the victory since he is the only guy in the senate who can vote.
Note:
Approach #1: C++.
class Solution { public: string predictPartyVictory(string senate) { int len = senate.length(); queue<int> q1, q2; for (int i = 0; i < len; ++i) senate[i] == ‘R‘ ? q1.push(i) : q2.push(i); while (!q1.empty() && !q2.empty()) { int r_index = q1.front(); int d_index = q2.front(); q1.pop(), q2.pop(); r_index < d_index ? q1.push(r_index + len) : q2.push(d_index + len); } return q1.size() > q2.size() ? "Radiant" : "Dire"; } };
Analysis;
we use two queue to maintion the index of ‘R‘ and ‘D‘ in the senate. In every loop we compare the two front elements in these queue. we push the little one add len into the original queue because he can vote in the next round. If one of the queue is empty we compare the size of these queue, and return the answar.
标签:dia his you Nging com ever final origin solution
原文地址:https://www.cnblogs.com/ruruozhenhao/p/10226434.html