题目:
Given a non-negative integer num represented as a string, remove k digits from the number so that the new number is the smallest possible.
Note:
- The length of num is less than 10002 and will be ≥ k.
- The given num does not contain any leading zero.
Example 1:
Input: num = "1432219", k = 3 Output: "1219" Explanation: Remove the three digits 4, 3, and 2 to form the new number 1219 which is the smallest.
Example 2:
Input: num = "10200", k = 1 Output: "200" Explanation: Remove the leading 1 and the number is 200. Note that the output must not contain leading zeroes.
Example 3:
Input: num = "10", k = 2 Output: "0" Explanation: Remove all the digits from the number and it is left with nothing which is 0.
题意及分析:有一个N为长的数字,用字符串来代替了,现在要求你将它删除K位,使得其得到的结果最小。对于每次删除的情况有两种
(1)假如第一个数不为0,第二个数为0,那么我们删除第一个数,就相当于数量级减少2,这样比删除得到的数其他任何一个方法都小
(2)另一种情况,我们找到第一次遍历的局部最大值,即遍历num第一个满足num.charAt(i)>num.charAt(i+1)的值,删除这个点,得到的值最小。这里就是贪心算法,每次删除一个局部最大
代码:
public class Solution {
public String removeKdigits(String num, int k) {
int n=0;
while(true){
n =num.length();
if(n <= k || n == 0) return "0";
if(k-- == 0){
// System.out.println(num);
return num;
};
if(num.charAt(1)=='0'){ //第二位数为0,则删除前面一位数
int firstNotZero = 1;
while(firstNotZero<n&&num.charAt(firstNotZero)=='0') firstNotZero++;
num=num.substring(firstNotZero);
}else{ //不然寻找第一个下降的数
int i=0;
while(i<n-1){
if(num.charAt(i)>num.charAt(i+1)){
num=num.substring(0, i)+num.substring(i+1);
break;
}else
i++;
}
if(i==n-1) num=num.substring(0, i);
}
}
}
}
Seen this question in a real interview before?