5

This is a question that I was asked in an interview:
Implement a function that gets an integer n and does the following:
1. if n is 3 -> return 7.
2. else if n is 7 -> return 3.
3. otherwise return any number you like (undefined behavior).

Also describe what's the runtime and space complexity of each way.

So first I gave the trivial way of using if-else statement - and said it's O(1) run-time + space complexity. Then the interviewer said: "what if you can't use if statements (including switch-case and other if statements similarities)?"

So I suggested using bitwise operations: return n^=4. Said that it's O(1) run-time + space complexity. Then the interviewer said: "what if you can't use bitwise operations?"

So I suggested using an array like this:

int mem[8] = {-1, -1, -1, 7, -1, -1, -1, 3}; 
return mem[n];               

Said it's O(1) run-time + space complexity, how ever it might be non-efficient if we have large numbers instead of 3 and 7.

Then the interviewer said: "what if you can't use arrays?" - and here I got stuck.

It seems like there is a fourth way... any suggestions?

  • 1
    Did the interview not ask what if you can't use +,-,*,/,%? – vivek_23 Nov 28 '18 at 18:49
  • 1
    @vivek_23 lol, added 2nd solution without using math operation – Christhofer Natalius Nov 29 '18 at 4:44
8

how about

def foo(n)
  return 10 - n
end


foo(3) => 7
foo(7) => 3
  • 2
    lol we are thinking the same with using math calculation – Christhofer Natalius Nov 28 '18 at 15:49
7

How about this

function myfunc(n) {
   return 21 / n
}

console.log(myfunc(7))
console.log(myfunc(3))

UPDATE: #2 Solution

function myfunc(n) {
   return "37".replace(n, "")
}

console.log(myfunc(7))
console.log(myfunc(3))

  • 1
    Nice one , +1. However I have a preference for the subtraction way, since this one will cause an error when n is 0. – John Nov 28 '18 at 16:02
  • You're right. Idk why did I think about division first rather than substraction lol – Christhofer Natalius Nov 28 '18 at 16:04
  • @ChristhoferNatalius Nice +1. – vivek_23 Nov 29 '18 at 6:02
2

Another one is. (n + 4) % 8.

"All the ways" is surely infinite.

0

The fourth way:

def foo(n):
    return 10-n
  1. For n=7, foo(7) returns 10-7=3.
  2. For n=3, foo(3) returns 10-3=7.
  3. For any other value of n, I can return any number I like, so I return 10-n.

So, time complexity: O(1) and space complexity: O(1).

Disclaimer: I'm not the interviewer. :P

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