标签:number turn nod rom arp ide less class time
Given an integer n, return 1 - n in lexicographical order.
For example, given 13, return: [1,10,11,12,13,2,3,4,5,6,7,8,9].
Please optimize your algorithm to use less time and space. The input size may be as large as 5,000,000.
Solution 1:
If we look at the order we can find out we just keep adding digit from 0 to 9 to every digit and make it a tree. Then we visit every node in pre-order. 1 2 3 ... /\ /\ / 10 ...19 20...29 30...39 ....
public class Solution {
public List<Integer> lexicalOrder(int n) {
ArrayList<Integer> res = new ArrayList<Integer>();
for (int i=1; i<=9; i++) {
helper(res, i, n);
}
return res;
}
public void helper(ArrayList<Integer> res, int cur, int n) {
if (cur > n) return;
res.add(cur);
for (int i=0; i<=9; i++) {
helper(res, cur*10+i, n);
}
}
}
Solution 2:
O(N) time, O(1) space
The basic idea is to find the next number to add.
Take 45 for example: if the current number is 45, the next one will be 450 (450 == 45 * 10)(if 450 <= n), or 46 (46 == 45 + 1) (if 46 <= n) or 5 (5 == 45 / 10 + 1)(5 is less than 45 so it is for sure less than n).
We should also consider n = 600, and the current number = 499, the next number is 5 because there are all "9"s after "4" in "499" so we should divide 499 by 10 until the last digit is not "9".
Note: 第二、三种情况不能合并的原因是:不一定是因为最后一位是9才需要/10,有可能是因为curr+1>n
public List<Integer> lexicalOrder(int n) {
List<Integer> list = new ArrayList<>(n);
int curr = 1;
for (int i = 1; i <= n; i++) {
list.add(curr);
if (curr * 10 <= n) {
curr *= 10;
} else if (curr % 10 != 9 && curr + 1 <= n) {
curr++;
} else {
while ((curr / 10) % 10 == 9) {
curr /= 10;
}
curr = curr / 10 + 1;
}
}
return list;
}
标签:number turn nod rom arp ide less class time
原文地址:http://www.cnblogs.com/apanda009/p/7643780.html
