第一题:2,3,5 三个素数 任意拼凑组成数字 第n个为?
e.g. 第3个为5; 第12个为55; 第22个为322
import java.util.Scanner
public class Main {
public static void main(String[] args) {
Scanner scanner = new Scanner(System.in);
while (scanner.hasNextInt()){
int n = scanner.nextInt();
int res = solution(n);
System.out.println(res);
}
}
private static int solution(int n) {
int[] nums = new int[]{2,3,5};
StringBuilder sb = new StringBuilder("");
if (n == 1) return 2;
if (n == 2) return 3;
if (n == 3) return 5;
// 计算有几位数
int sum = 0;
int count = 1;
while (sum < n){
sum += Math.pow(3,count);
count++;
}
int numOfDigits = count - 1;
// 上一位数 比如 3, 12, 39
int previousDigitNum = (int) (sum - Math.pow(3,numOfDigits));
int index = 0;
// tmp number of digits
int dig = numOfDigits;
for (int i = 1; i <= numOfDigits; i++) {
// 计算index 就是 每一位 对应 第几个数
while (previousDigitNum < n) {
previousDigitNum = (int) (previousDigitNum + Math.pow(3, dig - 1));
index++;
}
// 多加的减回来
previousDigitNum = (int) (previousDigitNum - Math.pow(3, dig - 1));
// 每位计算 从最高位向下到最低位
dig = dig - 1;
if (index == 1) sb.append(nums[0]);
if (index == 2) sb.append(nums[1]);
if (index == 3) sb.append(nums[2]);
//从新归0
index = 0;
}
return Integer.parseInt(String.valueOf(sb));
}
} 第二题: 比如一个 三角形
1
2 4 2
3 4 2 1 3
从上面开始 每次只能向左下、垂直向下、右下走
问走到底,最大值为多少? 比如上图最大值为9: 1->4->4
import java.util.Scanner;
public class Main {
static int res = Integer.MIN_VALUE;
public static void main(String[] args) {
Scanner scanner = new Scanner(System.in);
int nums = scanner.nextInt();
int length = 0;
for (int i = 1; i <= nums; i++) {
length += 2 * i - 1;
}
int[] array = new int[length];
for (int i = 0; i < length; i++) {
array[i] = scanner.nextInt();
}
dfs(array,nums,0,0,0);
System.out.println(res);
}
private static void dfs(int[] array, int nums, int step, int index, int value) {
int len = array.length;
if (step >= nums || index >= len) {
if (res < value) res = value;
return;
}
step++;
dfs(array, nums, step, index + (2 * step - 1), value + array[index]);
dfs(array, nums, step, index + 1+ (2 * step - 1), value+ array[index]);
dfs(array, nums, step, index + 2+ (2 * step - 1), value+ array[index]);
}
}
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