2
class FibR
{
   int c=0;
   void fib(int i,int j,int n){
     if(c==n) return;
     System.out.print(i+" "+j+" ");
     int t=j;
     i=i+j;
     j=i+t;
     c++;
     fib(i,j,n);     
   }

   public static void main(String[] args) {
       FibR f=new FibR();
       f.fib(0,1,5);
    }
}

The output is:

0 1 1 2 3 5 8 13 21 34

I need to print only 0 1 1 2 3 ,i.e, 5 terms What corrections do I need to the condition in if statement ? Tried c+=2 instead of c++ ,but the code enters into infinite loop. Thanks in advance

  • reduce your counter to 3 insted of 5 and note that you are printing in pairs, so... your output will be 0 1 1 2 3 5 – Giancarlo Benítez Mar 11 '17 at 0:04
  • Actually you can do c+=2, and change the if to if(c>=n) . You are printing two values at time, so those two values get printed 5*2 times based on your current code – ShayHaned Mar 11 '17 at 0:05
4

In order to use c += 2 you should also include equality in your if-statement.

class FibR
{
   int c = 0 ;
   void fib(int i, int j, int n){
     if (c >= n) return;
     System.out.print(i+" " + j +" ");
     int t = j;
     i += j;
     j = i + t;
     c += 2;
     fib(i, j, n);     
   }

   public static void main(String[] args) {
       FibR f = new FibR();
       f.fib(0, 1, 5);
       System.out.println();
    }
}

Since you can't get just 5 characters, the output will be:

0 1 1 2 3 5
| improve this answer | |
6

In each of your fib call, you print two fib numbers:System.out.print(i+" "+j+" ");

Following is a simplier version:

public class FibR {
void fib(int i, int j, int n) {
    if (n == 0) return;
    System.out.println(i);
    fib(j, i + j, n - 1);
}

public static void main(String[] args) {
    FibR f = new FibR();
    f.fib(0, 1, 5);
}
}

Each time you call fib, you pass the latest two number (i and j), and how many number left to print (n).

| improve this answer | |
3

As you are printing both i and j together, you can't print 5 terms. It can be either 4 or 6.

Now, as far as infinite loop is concerned, if you are changing c++ to c+=2 then you need to change if (c == n) to if (c >= n) as c will be greater than 5 after 2nd iteration.

| improve this answer | |
2

Reduce the counter to 3 and if your iteration reaches counter -1 just print i and drop j

class FibR {
    int c = 0;

    void fib(int i, int j, int n) {
        if (c == n) return;
        if (c < n - 1)
            System.out.print(i + " " + j + " ");
        else
            System.out.print(i);//c == n-1 => just print i

        int t = j;i = i + j;j = i + t;c++;fib(i, j, n);
    }

    public static void main(String[] args) {
        FibR f = new FibR();
        f.fib(0, 1, 3);//reduce to 3
    }
}
| improve this answer | |
  • By changing code from int c = 0 to static int c = 0, you are going to put the guy in some real trouble when he will start things like , FibR f = new FibR() , other = new FibR(); f.fib(0,1,3); other.fib(0,1,3). The guy would be crying :) – ShayHaned Mar 11 '17 at 0:16
  • Yes u're right! Don't know why i did this. Updated the code. Thanks! – Jérôme Mar 11 '17 at 0:19
  • No problem at all :) – ShayHaned Mar 11 '17 at 0:39
0

Why would you write your function like that? Since it is recursion, your function should only take one parameter, the number of elements you want.

It seems you over complicated it using 3 arguments.

| improve this answer | |
0

In a recursive function, you'd better not save/depends on some external status/fileds. And in your example code, it's because you print two terms in each call, so you'll never make it print odd numbers.

| improve this answer | |
  • if you can describe your answer using code, that will be helpful – isuruAb Mar 18 '17 at 3:45

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