Find the nth digit of the infinite integer sequence 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, ...
Note:
n is positive and will fit within the range of a 32-bit signed integer (n < 231).
Example 1:
Input:
3
Output:
3
Example 2:
Input:
11
Output:
0
Explanation:
The 11th digit of the sequence 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, ... is a 0, which is part of the number 10.
class Solution {
public int findNthDigit(int n) {
int len = 1; //定位数的位数
long count = 9; //len长的区间一共有多少数
int start = 1; //区间的起始数
while (n > len * count) {
n -= len * count;
len += 1;
count *= 10;
start *= 10;
}
start += (n - 1) / len; //start定位到某个数
String s = Integer.toString(start);
return Character.getNumericValue(s.charAt((n - 1) % len)); //某个数的第几个数字
}
}- 使用len、count和start分别记录第n位digit对应的所属多长位数区间,区间数的个数和区间的起始数字;
- 定位准确后,用start表示n对应的数字,比如110;
- (n-1) % len是对应的110中的第几个数字。