PAT甲级1049 Counting Ones (30 分)--参考于柳神
作者:互联网
1049 Counting Ones (30 分)
The task is simple: given any positive integer N, you are supposed to count the total number of 1’s in the decimal form of the integers from 1 to N. For example, given N being 12, there are five 1’s in 1, 10, 11, and 12.
Input Specification:
Each input file contains one test case which gives the positive N (≤2^30).
Output Specification:
For each test case, print the number of 1’s in one line.
Sample Input:
12
Sample Output:
5
虽然上图与下面的解释不能完全对号入座
这是一个组合的问题:好比A={x|x=i,i=0,1,2...,n},B={y|y=i,i=0,1,2...,m},对于Point(x,y)有n*m种可能。
now=0时,ans+=left*a{左边任意取一个0~(left-1)的数,在now位上都可以取1(如果左边取left的话,该数就会大于120),
a由now位所在位置产生:如果now位在十位的话,右边就可以取0~9这十个数,
好比挑选一对男女去挑拉丁舞的问题,男生有n人,女生有m人,总共有n*m种组合。}
now=1时,ans+=left*a+(right+1){在now=0的基础上加多了right+1,为什么呢?由于左边取到left时,now位上取1不会越界。
为什么可以多加right+1呢?当左边取到left时,now位上可以取1,右边可以取0~right个数,也不会发生越界现象。
就好比在中午吃饭时有m个不同的午饭可以选择,如果一次只能选一个的话,那就有m种可能。
}
now>=2时,ans+=(left+1)*a{在now位上取1的基础上,左边可以取0~left这(left+1)个数,
右边可以取0~a-1这a个数。因此就是一个n*m的组合。
}
代码
#include<iostream>
using namespace std;
int main() {
int left, right, now, a = 1, ans = 0, n;
cin >> n;
while (n / a) {
left = n / (a * 10), now = n / a % 10, right = n % a;
if (now == 0)ans += left * a;
else if (now == 1)ans += left * a + right + 1;
else if (now >= 2)ans += (left + 1) * a;
a *= 10;
}
cout << ans << endl;
return 0;
}
参考于下
https://blog.csdn.net/liuchuo/article/details/52264944
标签:10,right,PAT,--,位上,Ones,ans,now,left 来源: https://blog.csdn.net/weixin_49529683/article/details/120832842