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Here's the codingbat java problem:

Given 2 int values greater than 0, return whichever value is nearest to 21 without going over. Return 0 if they both go over.

blackjack(19, 21) → 21

blackjack(21, 19) → 21

blackjack(19, 22) → 19

My solutions is:

public int blackjack(int a, int b) {
  if (a>21){
    if (b>21){ 
     return 0;
   }
   return b;
  }

  else if(b>21) return a;

  return Math.max(a,b);
}

Is there something in my logic that can be improved to make it more efficient? Am I doing something unnecessary?

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7  
You shouldn't worry about efficiency on such a tiny, tiny function –  hugomg Aug 12 '11 at 4:19
1  
what if he's going to be playing a lot of blackjack? –  Paul Bellora Aug 12 '11 at 4:26
    
In python I've found that with 2 numbers using if statements is more efficient than using max. I.e. If A>B return a else return B. –  Charles L. Aug 29 '11 at 2:49
    
return a < 22 && b < 22 ? a < b ? b : a : a < 22 ? a : b < 22 ? b : 0; ;) –  digitaljoel Aug 29 '11 at 22:33

4 Answers 4

This might be pretty close;

public int blackjack(int a, int b) { if(a > 21 && b > 21) return 0; else if (a <= 21 && a > b || b > 21) return a; return b; }

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Using ternary operator:

public int blackjack(int a, int b) {
    a = a > 21 ? 0 : a;
    b = b > 21 ? 0 : b;
    return (a > b) ? a : b;
}
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This could be more efficient. At the very least it's another way of looking at the problem:

public int blackjack(int a, int b) {
  if (a>21) a = 0;
  if (b>21) b = 0;

  if (a>b) {
    return a;
  else {
    return b;
  }
}
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+1 to you but... I think people modifying Java method parameters should be shot (I also happen to think that Java creators should be shot for not mandating final on method parameters). But that's because I love functional programming and immutability and because I'm facetious too ; ) –  SyntaxT3rr0r Aug 29 '11 at 22:32
1  
We could instead do 'if (a>21) return blackjack(0, b);' ;) –  antonyt Aug 29 '11 at 23:20
    
It does get cleaner, but will declaring variables start to make it less efficient? –  Charles L. Aug 30 '11 at 3:39

I wouldn't say this is more efficient, but I re-ordered some of the if statements and arrived at the code below. I think this is, at the very least, somewhat easier to follow:

public int blackjack(int a, int b) {
  if (a <= 21 && b <= 21) return Math.max(a, b);
  if (a <= 21) return a;
  if (b <= 21) return b;
  return 0;
}
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