【leetcode】1010. Pairs of Songs With Total Durations Divisible by 60
作者:互联网
You are given a list of songs where the ith song has a duration of time[i]
seconds.
Return the number of pairs of songs for which their total duration in seconds is divisible by 60
. Formally, we want the number of indices i
, j
such that i < j
with (time[i] + time[j]) % 60 == 0
.
Example 1:
Input: time = [30,20,150,100,40]
Output: 3
Explanation: Three pairs have a total duration divisible by 60:
(time[0] = 30, time[2] = 150): total duration 180
(time[1] = 20, time[3] = 100): total duration 120
(time[1] = 20, time[4] = 40): total duration 60
Example 2:
Input: time = [60,60,60]
Output: 3
Explanation: All three pairs have a total duration of 120, which is divisible by 60.
题目是需要求数组中,一对数字对,满足二者之和能被60整除。这道题很容易可以写出暴力求解的版本。
class Solution {
public:
int numPairsDivisibleBy60(vector<int>& time) {
// 暴力法
int n=time.size();
int res=0;
for(int i=0;i<n;++i){
for(int j=i+1;j<n;++j){
if((time[i]+time[j])%60==0) res++;
}
}
return res;
}
};
再数字较多的情况下就会超时,那么该如何优化呢? 暴力法的之间复杂是o(n*n), 这时候再回过头看题目的要求,(time[i]+time[j])%==0 <=>time[i]%60+time[j]%60==0, 此时有两种情况满足上述要求,要么两个数字time[i],time[j]都能被60整除,要么其余数加和等于60,这个时候用一个mark数组记录当前余数的个数,并同时更新结果就好了。这种解法时间复杂度为o(n),可以说非常的高效了。
感觉这种优化思路非常有意思。
class Solution {
public:
int numPairsDivisibleBy60(vector<int>& time) {
// 暴力法
int res=0;
int mark[60]={0};
for(int i=0;i<time.size();++i){
int a=time[i]%60;
if(a==0){
res+=mark[0]; //查看之前该种余数的个数
}
else{
res+=mark[60-a];
}
mark[a]++; //要之后更新
}
return res;
}
};
标签:Pairs,20,Divisible,Durations,60,int,time,duration,total 来源: https://www.cnblogs.com/aalan/p/15758820.html