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I'm starting to learn about recursion and how it can be used to solve problems.

The question is, what does the method call recur(4) display?

public static void recur (int n)
{
  if(n==1)
  {
    System.out.print(n);
  }
  else
  {
    System.out.print(n);
    recur(n - 1);
  }
}

since n does not equal 1, it resorts to recur(n - 1) but this is where I am confused as to what happens here? Would the output be something along the lines of 3,2,1,0?

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6  
can't you just call recur(4) and see for yourself? – R.J Mar 25 '13 at 3:26
    
Yep, as @R.J states, and even better, step through the code with your debugger as it runs. – Hovercraft Full Of Eels Mar 25 '13 at 3:27
    
Why don't you run the program and check the output that ways? On first glance, the output should be 4 3 2 1 – Piyush Mattoo Mar 25 '13 at 3:27

It will print: 4321.

If you call recur(4), then n == 4 when you start. It is not 1, so it goes to the else block, where it prints a 4, and then calls recur(3) (4-1 = 3). After that, it still isn't 1, so once again you go to the else block. This time n == 3, so 3 is printed out. Then recur(2) is called, which once again goes to the else block, printing out 2 and calling recur(1). n is equal to 1 now, so the if block is executed, which simply prints 1.

Note that you get 4321 as you have a System.out.print() statement, with no spaces. A println() would put it on a new line everytime, and you'd get:

4
3
2
1

But with a print() statement and no spacing, you'll simply get 4321

share|improve this answer
    
Thanks, wanted to know exactly this instead of just "plugging it in" – aiuna Mar 25 '13 at 3:31
    
@aiuna You're welcome. However, it would be much clearer to you if you used breakpoints and saw the values change as the execution happened. – Raghav Sood Mar 25 '13 at 3:33

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