题意: 一个数a,一个数b. 现在要将a的每一位上的数字重新整理,生成一个新的不含前导0的数a'. 问a'是否等于b. 思路: a上每一位的数字从小到大排序,找到最小的非零数和第一位交换. 代码: char s1[15],s2[15]; int main(){ scanf("%s%s",s1,s2); if(strcmp(s1,"0")==0 && strcmp(s2,"0")==0){ puts("OK");…

题目链接: 传送门 Lawnmower time limit per test:2 second     memory limit per test:256 megabytes Description You have a garden consisting entirely of grass and weeds. Your garden is described by an n × m grid, with rows numbered 1 to n from top to bottom, an…

Soldier and Badges time limit per test 3 seconds memory limit per test 256 megabytes input standard input output standard output Colonel has n badges. He wants to give one badge to every of his n soldiers. Each badge has a coolness factor, which show…

Anya and Ghosts time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output Anya loves to watch horror movies. In the best traditions of horror, she will be visited by m ghosts tonight. Anya has lots…

Error Correct System time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output Ford Prefect got a job as a web developer for a small company that makes towels. His current work task is to create a s…

题面: 传送门 思路: 一眼看得,这是贪心[雾] 实际上,我们要求的答案就是sigma(ci*(ti-i))(i=1~n),这其中sigma(ci*i)是确定的 那么我们就要最小化sigma(ci*ti) 所以在新的每一秒,就把这一秒开始可以起飞的飞机中,cost最大的那一个拿出来,让他起飞就可以了 证明: 设最大的为m,我们取得另一个为n 那么n*ti+m*(ti+1) >= n*(ti+1)+m*ti 所以取m最好 这个过程用堆实现,懒得手打了,就用了priority_queue Code:…

One cold winter evening Alice and her older brother Bob was sitting at home near the fireplace and giving each other interesting problems to solve. When it was Alice's turn, she told the number n to Bob and said: −Shuffle the digits in this number in…

传送门 解题思路 贪心.对于一段区间中,可以将这段区间中相同的元素同时变成\(c\),但要付出的代价是区间中等于\(c\)的数的个数,设\(sum[i]\)表示等于\(c\)数字的前缀和,Max[i]表示数字\(i\)的最大个数.那么只要\(O(n)\)的扫一遍,维护一下每个数字的\(max\),具体做法是看一下\(Max[a[i]]\)大还是\(sum[i]\)大,如果\(sum\)大的话,说明前面都不变,直接把\(Max\)赋值成\(sum[i]+1\),否则直接让\(Max[i]++\),…

题意:石头剪刀布,bot有一串字符,表示他要出什么,你需要事先确定你的出招方案,然后遍历bot的字符串,从\(i\)位置开始跑一个循环,每次跑都要记录你赢的次数贡献给\(sum\),现要求\(\frac{sum}{n}\)最大,求你的最佳处找方案. 题解:贪心,全输出bot出招次数最多的对应即可. 代码: int t; string s; map<char,int> mp; int main() { ios::sync_with_stdio(false);cin.tie(0); cin>…

题意: m个水果,n个价格.每种水果只有一个价格. 问如果给每种水果分配价格,使得买的m个水果总价格最小.最大. 输出最小值和最大值. 思路: 贪心. 代码: bool cmp(int a,int b){ return a>b; } string name; map<string,int> mp; int price[200],fruit[200]; int cn; int n,m; int main(){ cin>>n>>m; mp.clear(); cn=0;…