Java + DFS
类似于2-SUM 转化 3-SUM的思路:
import java.util.Scanner;
import java.util.LinkedList;
import java.util.HashMap;
public class Main{
public static void main(String[] args){
Scanner sc = new Scanner(System.in);
//用于初步读取String储存
LinkedList<String> list1 = new LinkedList<>();
//用于将String转化成int储存
LinkedList<Integer> list = new LinkedList<>();
//用于还原:(1->A; 13->K)
LinkedList<String> list2 = new LinkedList<>();
list2.add("0");
list2.add("A");
for (int i = 2; i <= 10; i++){
list2.add(Integer.toString(i));
}
list2.add("J");
list2.add("Q");
list2.add("K");
//读取String:
while (sc.hasNext()){
list1.add(sc.next());
}
int flag = 0;
//转换成Integer://遇到JOKER 直接输出ERROR
for (int i = 0; i < 4 ; i++){
String cur = list1.get(i);
if (cur.equals("JOKER") || cur.equals("joker")){
System.out.println("ERROR");
flag = -1;
break;
}else if (cur.equals("A")){
list.add(1);
}else if (cur.equals("K")){
list.add(13);
}else if (cur.equals("Q")){
list.add(12);
}else if (cur.equals("J")){
list.add(11);
}else{
list.add(Integer.valueOf(cur));
}
}
//暴力遍历四个数的排列组合:
if (flag == 0){
for (int i = 0; i < 4; i++){
for (int j = 0; j < 4; j++){
if (j == i) continue;
if(flag == 1) break;
for (int k = 0; k < 4; k++){
if (k == i || k == j) continue;
if(flag == 1) break;
for (int p = 0; p < 4; p++){
if (p == i || p == j || p == k) continue;
if(flag == 1) break;
//将四个数给如helper function做判断:
String out = helper(list.get(i), list.get(j), list.get(k),list.get(p));
//输出非NONE,生成答案:
if (!out.equals("NONE")){
String res = "";
res += list2.get(list.get(i));
res += out.substring(0,1);
res += list2.get(list.get(j));
res += out.substring(1,2);
res += list2.get(list.get(k));
res += out.substring(2,3);
res += list2.get(list.get(p));
System.out.println(res);
flag = 1;
}
}
}
}
}
//helepr function输出为NONE输出NONE:
if (flag == 0) System.out.println("NONE");
}
}
//类似于2-sum --> 3-sum -->4-sum思路:
static public String helper(int a, int b){
if (a * b == 24) return "*";
else if (a + b == 24) return "+";
else if (b != 0 && a % b == 0 && a / b == 24) return "/";
else if (a - b == 24) return "-";
else return "NONE";
}
//重载
static public String helper(int a, int b, int c){
if (!helper(a * b, c).equals("NONE")) return "*" + helper(a * b, c);
else if (!helper(a + b, c).equals("NONE")) return "+" + helper(a + b, c);
else if (!helper(a - b, c).equals("NONE")) return "-" + helper(a - b, c);
else if (b != 0 && a % b == 0 && !helper(a / b, c).equals("NONE")) return "/" + helper(a * b, c);
else return "NONE";
}
//重载:输出的是三个有序运算符号
static public String helper(int a, int b, int c, int d){
if (!helper(a * b, c, d).equals("NONE")) return "*" + helper(a * b, c, d);
else if (!helper(a + b, c, d).equals("NONE")) return "+" + helper(a + b, c, d);
else if (!helper(a - b, c, d).equals("NONE")) return "-" + helper(a - b, c, d);
else if (b != 0 && a % b == 0 && !helper(a / b, c, d).equals("NONE")) return "/" + helper(a * b, c, d);
else return "NONE";
}
}
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