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 (<=230).
Output Specification:
For each test case, print the number of 1's in one line.
Sample Input:
12
Sample Output:
5
题目大意:即给定一个整数N,求从1~N中包含过少个1。记得当时研究生面试时就问了这个题目,给了个整数,来求包含的1的个数。当时拿到题目,想了3分钟,面试官问答案,我还没求解出答案,只有思路。通过讲解解题思路,分别考虑1在各位、十位、百位....的情况。现在再看这题目,原来的思路还是错了。具体的思路可以参考网上博客。
#include<iostream>
#include<cstdio>
using namespace std;
int main(){
int n;
scanf("%d",&n);
int high=0;
int low=0;
int cur=0;
int base=1;
int cnt=0;
while(n/base!=0){
high=n/(base*10);
low=n%base;
cur=(n/base)%10;
switch(cur){
case 0:
cnt+=high*base;
break;
case 1:
cnt+=high*base+low+1;
break;
default:
cnt+=(high+1)*base;
}
base*=10;
}
printf("%d
",cnt);
return 0;
}