Codeforces Round #313 (Div. 2) A. Currency System in Geraldion

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Codeforces Round #313 (Div. 2) A. Currency System in Geraldion

A. Currency System in Geraldion Time Limit: 1 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/contest/560/problem/A Description A magic island Geraldion, where Gerald lives, has its own currency system. It uses banknotes of several values. But th…

Codeforces Round #313 (Div. 2) A. Currency System in Geraldion 水题

A. Currency System in Geraldion Time Limit: 20 Sec Memory Limit: 256 MB 题目连接 http://codeforces.com/contest/560/problem/A Description A magic island Geraldion, where Gerald lives, has its own currency system. It uses banknotes of several values. But t…

【打CF，学算法——一星级】Codeforces Round #313 (Div. 2) A. Currency System in Geraldion

[CF简单介绍] 提交链接:http://codeforces.com/contest/560/problem/A 题面: A. Currency System in Geraldion time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output A magic island Geraldion, where Gerald lives,…

Codeforces Round #313 (Div. 2) A B C 思路枚举数学

A. Currency System in Geraldion time limit per test 2 seconds memory limit per test 256 megabytes input standard input output standard output A magic island Geraldion, where Gerald lives, has its own currency system. It uses banknotes of several valu…

Codeforces Round #313 (Div. 2)(A,B,C,D)

A题: 题目地址:Currency System in Geraldion 题意:给出n中货币的面值(每种货币有无数张),要求不能表示出的货币的最小值.若全部面值的都能表示,输出-1. 思路:水题,就是看看有没有面值为1的货币,假设有的话,全部面值的货币都能够通过1的累加得到,假设没有的话.最小的不能表示的就当然是1辣. #include <stdio.h> #include <math.h> #include <string.h> #include <stdli…

Codeforces Round #313 (Div. 2) 解题报告

A. Currency System in Geraldion: 题意:有n中不同面额的纸币,问用这些纸币所不能加和到的值的最小值. 思路:显然假设这些纸币的最小钱为1的话,它就能够组成随意面额. 假设这些纸币的最小值大于1,那么它所不能组成的最小面额就是1.所以自学求最小值就可以. 我的代码: #include <set> #include <map> #include <cmath> #include <stack> #include <queue…

Codeforces Round #313 (Div. 2) A.B,C,D,E Currency System in Geraldion Gerald is into Art Gerald's Hexagon Equivalent Strings

A题,超级大水题,根据有没有1输出-1和1就行了.我沙茶,把%d写成了%n. B题,也水,两个矩形的长和宽分别加一下,剩下的两个取大的那个,看看是否框得下. C题,其实也很简单,题目保证了小三角形是正三角形,一个正三角的面积=l*l*(1/2)*cos(30),由于只要算三角形个数,把六边形扩成一个大三角,剪掉三个小三角,除一下系数就没了.就变成了平方相减. D题,根据定义递归.然后注意奇数就行了.我沙茶,没加第一种判断dfs(a+len,len,b+len) && dfs(a,len,b…

Codeforces Round #313 (Div. 1)

官方英文题解:http://codeforces.com/blog/entry/19237 Problem A: 题目大意: 给出内角和均为120°的六边形的六条边长(均为正整数),求最多能划分成多少个边长为1的正三角形. 题解: 把六边形补全变成一个正三角形,然后减去三个角的正三角形即可. Problem B: 题目大意: 给出长度相等的两个串AB,定义两个串相等当且仅当 A=B 或者当长度为偶数时,A[1...n/2]=B[1...n/2] && A[n/2+1...n]=…

dp - Codeforces Round #313 (Div. 1) C. Gerald and Giant Chess

Gerald and Giant Chess Problem's Link: http://codeforces.com/contest/559/problem/C Mean: 一个n*m的网格,让你从左上角走到右下角,有一些点不能经过,问你有多少种方法. analyse: BZOJ上的原题. 首先把坏点和终点以x坐标为第一键值,y坐标为第二键值排序 . 令fi表示从原点不经过任何坏点走到第i个点的个数,那么有DP方程: fi=Cxixi+yi−∑(xj<=xi,yj<=yi)C(xi−xj)…

Codeforces Round #313 (Div. 1) B. Equivalent Strings

Equivalent Strings Problem's Link: http://codeforces.com/contest/559/problem/B Mean: 给定两个等长串s1,s2,判断是否等价. 等价的含义为: 若长度为奇数,则必须是相同串. 若长度是偶数,则将两串都均分成长度为原串一半的两个子串l1,r1和l2,r2,其中l1和l2等价且r1和r2等价,或者l1和r2等价且l2和r1等价. analyse: 直接按照题意模拟写个递归分治就行.比赛的时候总觉得这样暴力写会TLE,…