uglynumber的定义是只能被1,2,3,5整除的数

规定1是第一个uglynumber;以此类推,1 2 3 4 5 6 8 9 10 12 15 16 18 20 24 25 27 30 32 36 40 ...

问题1,给定一个非零int整数,判断是否为ugly number

此数除以2,3,5;看是否能被整除;整除的判断是用hasDigit方法,利用小数来判断的

如果能被整除,递归下去,再除以2,3,5;直到完成判断

 /**
  * Ugly number1
  * @author Rust Fisher
  * Judge the number whether ugly
  */
 public class UglyNumber1 {
     public static boolean hasDigit(double d){
         return  d*10%10 != 0;
     }
     /**
      * @param num
      * @return boolean whether num is ugly
      */
     public static boolean isUgly(int num) {
         if (num <= 0) {
             return false;
         }
         if (num == 1) {
             return true;
         }
         if (!hasDigit(num/2.0)) {
             if (isUgly(num/2)) {
                 return true;
             }
         }
         if (!hasDigit(num/3.0)) {
             if (isUgly(num/3)) {
                 return true;
             }
         }
         if (!hasDigit(num/5.0)) {
             if (isUgly(num/5)) {
                 return true;
             }
         }

         return false;
     }
     /**
      * Find the nth ugly number
      * @param n
      * @return the nth ugly number
      */
     public static int nthUglyNumber(int n) {
         if (n <= 0) {
             return -1;
         }
         int count = 0;
         int i = 0;
         while (count <= n){
             if (isUgly(i)) {
                 count++;
             }
             if (count == n) {
                 break;
             }
             i++;

         }
         return i;
     }

     public static void main(String args[]){
         int count = 0;
         for (int i = 0; i < 100; i++) {
             if (isUgly(i)) {
                 count++;
                 System.out.print(i + "\t");
             }
             if (count == 10) {
                 count = 0;
                 System.out.println();
             }
         }
         System.out.println("\nThe n-th ugly numbers : ");
         count = 0;
         for (int i = 1; i < 21; i++) {
             System.out.print(nthUglyNumber(i) + "  ");
         }
         System.out.println("\n用这种方式输出第n个ugly number很没效率");
     }
 }

输出:

1	2	3	4	5	6	8	9	10	12
15	16	18	20	24	25	27	30	32	36
40	45	48	50	54	60	64	72	75	80
81	90	96
The n-th ugly numbers :
1  2  3  4  5  6  8  9  10  12  15  16  18  20  24  25  27  30  32  36
用这种方式输出第n个ugly number很没效率

问题2:求第n个ugly number

比如第1个ugly number是1,第二个是2,第三个是3 ...

已知1,2,3,5是ugly number,那么接下去的数能够乘以2,3,5得到;一个一个向后推算,直到第n个

设定3个游标,对应因数为2,3,5;利用到因数2一次,index2加一

 public class UglyNumber2{
     public static int getMin(int a,int b,int c){
         int min = a < b ? a : b;
         return min < c ? min : c;
     }
     public static int nthUglyNumber(int n) {
         if (n < 1) {
             return -1;
         }
         int index2 = 0, index3 = 0, index5 = 0;  //  three index
         int[] uglyNums = new int[n];
         uglyNums[0] = 1;
         int next = 1;
         while (next < n) {
             uglyNums[next] = getMin(uglyNums[index2]*2,uglyNums[index3]*3,uglyNums[index5]*5);
             if (uglyNums[next] == uglyNums[index2]*2) index2++;// find out which index should move
             if (uglyNums[next] == uglyNums[index3]*3) index3++;// index moving forward
             if (uglyNums[next] == uglyNums[index5]*5) index5++;
             next++;
         }
         return uglyNums[next - 1];
     }

     public static void main(String args[]){
         for (int i = 1; i < 21; i++) {
             System.out.print(nthUglyNumber(i) + " ");
         }
     }
 }

输出:

1 2 3 4 5 6 8 9 10 12 15 16 18 20 24 25 27 30 32 36

输出了前20个ugly number

05-11 13:23