解题思路
这是一个经典的24点游戏问题,需要通过回溯算法来尝试所有可能的运算组合。主要步骤:
- 对于输入的4个数字,需要考虑所有可能的两两组合
- 对每个组合,尝试四种运算(加、减、乘、除)
- 将运算结果与剩余的数字继续进行组合运算
- 如果最终结果为24,则返回true
- 注意处理除法时的除数不为0的情况
代码
#include <iostream>
#include <vector>
#include <cmath>
using namespace std;
const double EPSILON = 1e-10; // 用于浮点数比较
bool isEqual(double a, double b) {
return fabs(a - b) < EPSILON;
}
bool solve24(vector<double>& numbers) {
if (numbers.size() == 1) {
return isEqual(numbers[0], 24);
}
for (int i = 0; i < numbers.size(); i++) {
for (int j = i + 1; j < numbers.size(); j++) {
double a = numbers[i];
double b = numbers[j];
vector<double> next;
// 保存剩余的数字
for (int k = 0; k < numbers.size(); k++) {
if (k != i && k != j) {
next.push_back(numbers[k]);
}
}
// 尝试四种运算
next.push_back(a + b);
if (solve24(next)) return true;
next.pop_back();
next.push_back(a - b);
if (solve24(next)) return true;
next.pop_back();
next.push_back(a * b);
if (solve24(next)) return true;
next.pop_back();
if (!isEqual(b, 0)) {
next.push_back(a / b);
if (solve24(next)) return true;
next.pop_back();
}
next.push_back(b - a);
if (solve24(next)) return true;
next.pop_back();
if (!isEqual(a, 0)) {
next.push_back(b / a);
if (solve24(next)) return true;
next.pop_back();
}
}
}
return false;
}
int main() {
int a, b, c, d;
while (cin >> a >> b >> c >> d) {
vector<double> numbers = {(double)a, (double)b, (double)c, (double)d};
cout << (solve24(numbers) ? "true" : "false") << endl;
}
return 0;
}
import java.util.*;
public class Main {
private static final double EPSILON = 1e-10;
private static boolean isEqual(double a, double b) {
return Math.abs(a - b) < EPSILON;
}
private static boolean solve24(List<Double> numbers) {
if (numbers.size() == 1) {
return isEqual(numbers.get(0), 24);
}
for (int i = 0; i < numbers.size(); i++) {
for (int j = i + 1; j < numbers.size(); j++) {
double a = numbers.get(i);
double b = numbers.get(j);
List<Double> next = new ArrayList<>();
// 保存剩余的数字
for (int k = 0; k < numbers.size(); k++) {
if (k != i && k != j) {
next.add(numbers.get(k));
}
}
// 尝试四种运算
next.add(a + b);
if (solve24(next)) return true;
next.remove(next.size() - 1);
next.add(a - b);
if (solve24(next)) return true;
next.remove(next.size() - 1);
next.add(a * b);
if (solve24(next)) return true;
next.remove(next.size() - 1);
if (!isEqual(b, 0)) {
next.add(a / b);
if (solve24(next)) return true;
next.remove(next.size() - 1);
}
next.add(b - a);
if (solve24(next)) return true;
next.remove(next.size() - 1);
if (!isEqual(a, 0)) {
next.add(b / a);
if (solve24(next)) return true;
next.remove(next.size() - 1);
}
}
}
return false;
}
public static void main(String[] args) {
Scanner sc = new Scanner(System.in);
while (sc.hasNext()) {
List<Double> numbers = new ArrayList<>();
for (int i = 0; i < 4; i++) {
numbers.add(sc.nextDouble());
}
System.out.println(solve24(numbers) ? "true" : "false");
}
}
}
def is_equal(a, b):
return abs(a - b) < 1e-10
def solve24(numbers):
if len(numbers) == 1:
return is_equal(numbers[0], 24)
for i in range(len(numbers)):
for j in range(i + 1, len(numbers)):
a = numbers[i]
b = numbers[j]
next_nums = [numbers[k] for k in range(len(numbers)) if k != i and k != j]
# 尝试四种运算
next_nums.append(a + b)
if solve24(next_nums): return True
next_nums.pop()
next_nums.append(a - b)
if solve24(next_nums): return True
next_nums.pop()
next_nums.append(a * b)
if solve24(next_nums): return True
next_nums.pop()
if not is_equal(b, 0):
next_nums.append(a / b)
if solve24(next_nums): return True
next_nums.pop()
next_nums.append(b - a)
if solve24(next_nums): return True
next_nums.pop()
if not is_equal(a, 0):
next_nums.append(b / a)
if solve24(next_nums): return True
next_nums.pop()
return False
while True:
try:
numbers = list(map(float, input().split()))
print("true" if solve24(numbers) else "false")
except:
break
算法及复杂度
- 算法:回溯法(深度优先搜索)
- 时间复杂度:
,因为需要考虑4个数字的所有排列组合
- 空间复杂度:
,其中n是递归深度
这个解法通过回溯算法尝试所有可能的运算组合,同时使用浮点数比较来处理除法可能产生的精度问题。代码中还包含了对除数为0的特殊处理。
京公网安备 11010502036488号