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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)
    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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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

1 Answer 1

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:


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

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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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