如何计算素数斐波那契数?
How to calculate prime fibonacci numbers?
(这是我之前问题的延伸)。
任务:
作业中我遇到困难的部分如下:
- 判断前 20 个斐波那契数中哪些是素数。
- 在 Basic 挑战的打印输出中添加“这是素数”文本通知。
- 将 FibPrime 存储在名为 FibPrime 的数组中。
问题:
我似乎无法弄清楚如何获取每个单独的斐波那契数,确定它是素数,将素数斐波那契数放入数组中,然后打印输出。我之前能够制作一个工作程序,但我没有使用代码来计算素数,我手动将它们输入到一个数组中(参见底部的先前尝试)。
尝试:
这是我尝试过的:
与该问题相关的代码已用注释强调。
package fibonaccinumbers;
public class FibonacciNumbers {
public static void main(String[] args) {
// Creation of Fibonacci Numbers Array.
// Let i represent the index number.
int [] FibNums = new int[20];
FibNums[0] = 0;
FibNums[1] = 1;
// Will add on each successive FibNums.
// Will be used to calculate average.
int FibSum = 1;
// RELEVANT TO QUESTION.
// Creation if Fibonacci Primes Array.
// Let n represent the index number.
int [] FibPrimes = new int[7];
int n=0;
// Printing first two fibonacci numbers.
System.out.println(0);
System.out.println(1 + "*");
// Printing remaining fibonacci numbers up to 20th term.
for (int i=2; i<FibNums.length;i++){ // Begin number generation loop.
FibNums[i] = FibNums[i-1] + FibNums[i-2];
// Checks if the fibonacci number is odd.
// A number is not odd if two divides into it evenly.
boolean oddcheck = true;
if (FibNums[i]%2==0){
oddcheck = false;
}
// RELEVANT TO QUESTION.
// A prime number can only be divided by 1 and inself.
// Divide FibNums[i] by every number inbetween.
// If a number divides evenly, it is not a prime (exception: 2).
// Else, the number is a prime.
boolean primecheck;
for (int divisor = 2; divisor < FibNums[i]/2; divisor++){
if (FibNums[i] % divisor == 0){
primecheck = false;
} else {
primecheck = true;
}
// REVELANT TO QUESTION.
// Add FibNums[i] to the FibPrimes[n] array if it is a prime.
if (primecheck == false){
FibPrimes[n] = FibNums[i];
n = n + 1;
}
// RELEVANT TO QUESTION.
// If any element in the FibPrimes array is equal to the FibNums
// array, then the number is a prime.
for (n=0; n<FibPrimes.length; n++){
if (FibNums[i] == FibPrimes[n]){
System.out.print("This is a prime." + " ");
}
}
// Prints odd fibonacci numbers with a star beside it.
// Prints even fibonacci numbers with no star beside it.
if (oddcheck == true){
System.out.println(FibNums[i] + "*");
} else {
System.out.println(FibNums[i]);
}
FibSum = FibSum + FibNums[i];
} // End number generation loop.
System.out.print ( "The average is" + " " + FibSum/20);
}
}
输出:
0
1*
The average is 0The average is 0The average is 0The average is 0This is a prime. 8
This is a prime. 8
The average is 013*
13*
13*
13*
The average is 321*
这是不正确的。
上次尝试:
这个解决方案 "worked",但是为了不采用 "lazy route" 我必须使用代码进行计算。仅显示相关片段:
// Creation if Fibonacci Primes Array.
// Ideally, this should be caulculated.
int [] FibPrimes = new int[7];
FibPrimes[0] = 2;
FibPrimes[1] = 3;
FibPrimes[2] = 5;
FibPrimes[3] = 13;
FibPrimes[4] = 89;
FibPrimes[5] = 233;
FibPrimes[6] = 1597;
// If any element in the FibPrimes array is equal to the FibNums
// array, then the number is a prime.
for (int n=0; n<FibPrimes.length; n++){
if (FibNums[i] == FibPrimes[n]){
System.out.print("This is a prime." + " ");
}
}
输出:
0
1*
1*
This is a prime. 2
This is a prime. 3*
This is a prime. 5*
8
This is a prime. 13*
21*
34
55*
This is a prime. 89*
144
This is a prime. 233*
377*
610
987*
This is a prime. 1597*
2584
4181*
The average is 547
这是所需的输出!但是,我不能使用它,因为我必须使用代码计算素数斐波那契数。这就是"lazy route"。
谢谢。
在 google 上只需 10 分钟,您就可以简单快速地创建一些东西。
使用下面的数学公式:
你可以找到更多这个 paper you can make your prime fibonacci sequence. In addition you will need a way to check which numbers in the sequence are primes so a quick way is through AKS algorithm
这是上述所有内容的完整示例:
public class FibonacciSequence {
public static void main(String[] args) {
for (int i = 1; i <= 20; i++) {
int num = (int) ((getY_1(i) - getY_2(i)) / Math.sqrt(5));
if (isPrime(num)) {
System.out.print("This is a prime : ");
}
System.out.println(num);
}
}
public static double getY_1(int N) {
return Math.pow((1 + Math.sqrt(5.0)) / 2.0, N);
}
public static double getY_2(int N) {
return Math.pow((1 - Math.sqrt(5.0)) / 2.0, N);
}
public static boolean isPrime(int num) {
if (num == 2 || num == 3)
return true;
if (num % 2 == 0 || num % 3 == 0) {
return false;
}
int i = 5;
int s = 2;
while (i * i <= num) {
if (num % i == 0) {
return false;
}
i += s;
s = 6 - s;
}
return true;
}
}
当然,如果您不想将值 (1) 识别为质数,则可以排除它:P。
输出:
This is a prime : 1
This is a prime : 1
This is a prime : 2
This is a prime : 3
This is a prime : 5
8
This is a prime : 13
21
34
55
This is a prime : 89
144
This is a prime : 233
377
610
987
This is a prime : 1597
2584
4181
6765
P.S : 我有空 :P
(这是我之前问题的延伸)。
任务:
作业中我遇到困难的部分如下:
- 判断前 20 个斐波那契数中哪些是素数。
- 在 Basic 挑战的打印输出中添加“这是素数”文本通知。
- 将 FibPrime 存储在名为 FibPrime 的数组中。
问题:
我似乎无法弄清楚如何获取每个单独的斐波那契数,确定它是素数,将素数斐波那契数放入数组中,然后打印输出。我之前能够制作一个工作程序,但我没有使用代码来计算素数,我手动将它们输入到一个数组中(参见底部的先前尝试)。
尝试:
这是我尝试过的:
与该问题相关的代码已用注释强调。
package fibonaccinumbers;
public class FibonacciNumbers {
public static void main(String[] args) {
// Creation of Fibonacci Numbers Array.
// Let i represent the index number.
int [] FibNums = new int[20];
FibNums[0] = 0;
FibNums[1] = 1;
// Will add on each successive FibNums.
// Will be used to calculate average.
int FibSum = 1;
// RELEVANT TO QUESTION.
// Creation if Fibonacci Primes Array.
// Let n represent the index number.
int [] FibPrimes = new int[7];
int n=0;
// Printing first two fibonacci numbers.
System.out.println(0);
System.out.println(1 + "*");
// Printing remaining fibonacci numbers up to 20th term.
for (int i=2; i<FibNums.length;i++){ // Begin number generation loop.
FibNums[i] = FibNums[i-1] + FibNums[i-2];
// Checks if the fibonacci number is odd.
// A number is not odd if two divides into it evenly.
boolean oddcheck = true;
if (FibNums[i]%2==0){
oddcheck = false;
}
// RELEVANT TO QUESTION.
// A prime number can only be divided by 1 and inself.
// Divide FibNums[i] by every number inbetween.
// If a number divides evenly, it is not a prime (exception: 2).
// Else, the number is a prime.
boolean primecheck;
for (int divisor = 2; divisor < FibNums[i]/2; divisor++){
if (FibNums[i] % divisor == 0){
primecheck = false;
} else {
primecheck = true;
}
// REVELANT TO QUESTION.
// Add FibNums[i] to the FibPrimes[n] array if it is a prime.
if (primecheck == false){
FibPrimes[n] = FibNums[i];
n = n + 1;
}
// RELEVANT TO QUESTION.
// If any element in the FibPrimes array is equal to the FibNums
// array, then the number is a prime.
for (n=0; n<FibPrimes.length; n++){
if (FibNums[i] == FibPrimes[n]){
System.out.print("This is a prime." + " ");
}
}
// Prints odd fibonacci numbers with a star beside it.
// Prints even fibonacci numbers with no star beside it.
if (oddcheck == true){
System.out.println(FibNums[i] + "*");
} else {
System.out.println(FibNums[i]);
}
FibSum = FibSum + FibNums[i];
} // End number generation loop.
System.out.print ( "The average is" + " " + FibSum/20);
}
}
输出:
0
1*
The average is 0The average is 0The average is 0The average is 0This is a prime. 8
This is a prime. 8
The average is 013*
13*
13*
13*
The average is 321*
这是不正确的。
上次尝试:
这个解决方案 "worked",但是为了不采用 "lazy route" 我必须使用代码进行计算。仅显示相关片段:
// Creation if Fibonacci Primes Array.
// Ideally, this should be caulculated.
int [] FibPrimes = new int[7];
FibPrimes[0] = 2;
FibPrimes[1] = 3;
FibPrimes[2] = 5;
FibPrimes[3] = 13;
FibPrimes[4] = 89;
FibPrimes[5] = 233;
FibPrimes[6] = 1597;
// If any element in the FibPrimes array is equal to the FibNums
// array, then the number is a prime.
for (int n=0; n<FibPrimes.length; n++){
if (FibNums[i] == FibPrimes[n]){
System.out.print("This is a prime." + " ");
}
}
输出:
0
1*
1*
This is a prime. 2
This is a prime. 3*
This is a prime. 5*
8
This is a prime. 13*
21*
34
55*
This is a prime. 89*
144
This is a prime. 233*
377*
610
987*
This is a prime. 1597*
2584
4181*
The average is 547
这是所需的输出!但是,我不能使用它,因为我必须使用代码计算素数斐波那契数。这就是"lazy route"。
谢谢。
在 google 上只需 10 分钟,您就可以简单快速地创建一些东西。
使用下面的数学公式:
你可以找到更多这个 paper you can make your prime fibonacci sequence. In addition you will need a way to check which numbers in the sequence are primes so a quick way is through AKS algorithm
这是上述所有内容的完整示例:
public class FibonacciSequence {
public static void main(String[] args) {
for (int i = 1; i <= 20; i++) {
int num = (int) ((getY_1(i) - getY_2(i)) / Math.sqrt(5));
if (isPrime(num)) {
System.out.print("This is a prime : ");
}
System.out.println(num);
}
}
public static double getY_1(int N) {
return Math.pow((1 + Math.sqrt(5.0)) / 2.0, N);
}
public static double getY_2(int N) {
return Math.pow((1 - Math.sqrt(5.0)) / 2.0, N);
}
public static boolean isPrime(int num) {
if (num == 2 || num == 3)
return true;
if (num % 2 == 0 || num % 3 == 0) {
return false;
}
int i = 5;
int s = 2;
while (i * i <= num) {
if (num % i == 0) {
return false;
}
i += s;
s = 6 - s;
}
return true;
}
}
当然,如果您不想将值 (1) 识别为质数,则可以排除它:P。
输出:
This is a prime : 1
This is a prime : 1
This is a prime : 2
This is a prime : 3
This is a prime : 5
8
This is a prime : 13
21
34
55
This is a prime : 89
144
This is a prime : 233
377
610
987
This is a prime : 1597
2584
4181
6765
P.S : 我有空 :P