一、题目

Given a string containing only digits, restore it by returning all possible valid IP address combinations.

For example:
Given "25525511135",

return ["255.255.11.135", "255.255.111.35"]. (Order does not matter)

给一个由数字组成的字符串。求出其可能恢复为的所有IP地址。

注意 :中间IP位置不能以0开始,0.01.01.1非法,应该是0.0.101.1或者0.0.10.11

二、解题思路

方法一:

直接三种循环暴力求解

方法二:

深度搜索,回溯

三、解题代码

方法一

  1. public class Solution {
  2.     /**
  3.      * @param s the IP string
  4.      * @return All possible valid IP addresses
  5.      */
  6.     public ArrayList<String> restoreIpAddresses(String s) {
  7.         ArrayList<String> res = new ArrayList<String>();
  8.         int len = s.length();
  9.         for(int i = 1; i<4 && i<len-2; i++){
  10.             for(int j = i+1; j<i+4 && j<len-1; j++){
  11.                 for(int k = j+1; k<j+4 && k<len; k++){
  12.                     String s1 = s.substring(0,i), s2 = s.substring(i,j), s3 = s.substring(j,k), s4 = s.substring(k,len);
  13.                     if(isValid(s1) && isValid(s2) && isValid(s3) && isValid(s4)){
  14.                         res.add(s1+"."+s2+"."+s3+"."+s4);
  15.                     }
  16.                 }
  17.             }
  18.         }
  19.         return res;
  20.     }
  21.     public boolean isValid(String s){
  22.         if(s.length()>3 || s.length()==0 || (s.charAt(0)=='0' && s.length()>1) || Integer.parseInt(s)>255)
  23.             return false;
  24.         return true;
  25.     }
  26. }

方法二

  1. public class Solution {
  2.     /**
  3.      * @param s the IP string
  4.      * @return All possible valid IP addresses
  5.      */
  6.     public ArrayList<String> restoreIpAddresses(String s) {
  7.         ArrayList<String> result = new ArrayList<String>();
  8.         ArrayList<String> list = new ArrayList<String>();
  10.         if(s.length() <4 || s.length() > 12)
  11.             return result;
  13.         helper(result, list, s , 0);
  14.         return result;
  15.     }
  17.     public void helper(ArrayList<String> result, ArrayList<String> list, String s, int start){
  18.         if(list.size() == 4){
  19.             if(start != s.length())
  20.                 return;
  22.             StringBuffer sb = new StringBuffer();
  23.             for(String tmp: list){
  24.                 sb.append(tmp);
  25.                 sb.append(".");
  26.             }
  27.             sb.deleteCharAt(sb.length()-1);
  28.             result.add(sb.toString());
  29.             return;
  30.         }
  32.         for(int i=start; i<s.length() && i < start+3; i++){
  33.             String tmp = s.substring(start, i+1);
  34.             if(isvalid(tmp)){
  35.                 list.add(tmp);
  36.                 helper(result, list, s, i+1);
  37.                 list.remove(list.size()-1);
  38.             }
  39.         }
  40.     }
  42.     private boolean isvalid(String s){
  43.         if(s.charAt(0) == '0')
  44.             return s.equals("0"); // to eliminate cases like "00", "10"
  45.         int digit = Integer.valueOf(s);
  46.         return digit >= 0 && digit <= 255;
  47.     }
  48. }