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)
總結(jié)見(jiàn):http://www.reibang.com/p/883fdda93a66
Solution1a:Backtracking(DFS)-a
思路:回溯(類(lèi)似DFS) cur_tmp_str使用不同的string(即占用不同的內(nèi)存: code中prefix + letters.charAt(i))帜乞,則不需要退后remove的步驟。
Time Complexity: 4^3 *O(n)copyToResult Space Complexity: O(n)
Solution1b:Backtracking(DFS)-b
思路:回溯(類(lèi)似DFS) cur_tmp_str使用同一的string(占用相同的內(nèi)存)筐眷,通過(guò)StringBuilder實(shí)現(xiàn)挖函,DFS到底 后通過(guò)remove后退。
Time Complexity: 4^3 *O(n)copyToResult Space Complexity: O(n)
Solution2:Iterative
Time Complexity: 4^3 *O(n)isValid Space Complexity: O(n)
Solution1a Code:
class Solution {
public List<String> restoreIpAddresses(String s) {
List<String> result = new ArrayList<String>();
String cur_res = "";
restoreIp(s, 0, 0, cur_res, result);
return result;
}
private void restoreIp(String ip, int idx, int count, String cur_res, List<String> result) {
if (count > 4) return;
if (count == 4 && idx == ip.length()) {
result.add(cur_res);
}
for (int len = 1; len <= 3; len++) { //next potential choise
if (idx + len > ip.length()) break;
String next = ip.substring(idx, idx + len);
if(!isValid(next)) continue;
restoreIp(ip, idx + len, count + 1, cur_res + next + (count==3 ? "" : "."), result);
}
}
private boolean isValid(String s){
if(s.length() == 0 || s.length() > 3 || (s.charAt(0) == '0' && s.length() > 1) || Integer.parseInt(s) > 255) {
return false;
}
return true;
}
}
Solution1b Code:
class Solution {
public List<String> restoreIpAddresses(String s) {
List<String> result = new ArrayList<String>();
StringBuilder cur_res = new StringBuilder();
restoreIp(s, 0, 0, cur_res, result);
return result;
}
private void restoreIp(String ip, int idx, int count, StringBuilder cur_res, List<String> result) {
if (count > 4) return;
if (count == 4 && idx == ip.length()) {
result.add(cur_res.toString());
}
for (int len = 1; len <= 3; len++) { //next potential choise
if (idx + len > ip.length()) break;
String next = ip.substring(idx, idx + len);
if(!isValid(next)) continue;
cur_res.append(next).append(count == 3 ? "" : ".");
restoreIp(ip, idx + len, count + 1, cur_res, result);
// step back
cur_res.delete(cur_res.length() - (count == 3 ? next.length() : next.length() + 1), cur_res.length());
}
}
private boolean isValid(String s){
if(s.length() == 0 || s.length() > 3 || (s.charAt(0) == '0' && s.length() > 1) || Integer.parseInt(s) > 255) {
return false;
}
return true;
}
}
Solution2 Code:
class Solution {
public List<String> restoreIpAddresses(String s) {
List<String> result = new ArrayList<String>();
int len = s.length();
for(int i = 1; i <= 3 && i <= len - 3; i++){
for(int j = i + 1; j <= i + 3 && j <= len - 2; j++){
for(int k = j + 1; k <= j + 3 && k <= len - 1; k++){
String s1 = s.substring(0,i), s2 = s.substring(i,j), s3 = s.substring(j,k), s4 = s.substring(k,len);
if(isValid(s1) && isValid(s2) && isValid(s3) && isValid(s4)){
result.add(s1 + "." + s2 + "." + s3 + "." + s4);
}
}
}
}
return result;
}
private boolean isValid(String s) {
if(s.length() == 0 || s.length() > 3 || (s.charAt(0) == '0' && s.length() > 1) || Integer.parseInt(s) > 255) {
return false;
}
return true;
}
}
