Write a function, persistence, that takes in a positive parameter numand returns its multiplicative persistence, which is the number of times you must multiply the digits in num until you reach a single digit.
For example:
persistence(39) == 3 // because 3*9 = 27, 2*7 = 14, 1*4=4
// and 4 has only one digit
persistence(999) == 4 // because 9*9*9 = 729, 7*2*9 = 126,
// 1*2*6 = 12, and finally 1*2 = 2
persistence(4) == 0 // because 4 is already a one-digit number代码:
public class Persist {
//方法一
public static int persistence(long n) {
int times = 0;
while (n >= 10) {
n = Long.toString(n).chars().reduce(1, (r, i) -> r * (i - '0'));
times++;
}
return times;
}
//方法二
public static int persistence2(long n) {
if(n<10){
return 0;
}
int times = 1;
String str = String.valueOf(n);
int sum = getNum(str);
while (sum >= 10) {
str = String.valueOf(sum);
sum = getNum(str);
++times;
}
return times;
}
public static int getNum(String str) {
int num = 1;
for (int i = 0; i < str.length(); i++) {
num = num * Integer.valueOf(String.valueOf(str.charAt(i)));
}
return num;
}
public static void main(String[] args) {
System.out.println(persistence(999));
System.out.println(persistence2(999));
}
}