sunilrawat wrote:Sorry I missed the OA. It's 70
What's wrong with this?
First quadrant: 5C1
Second: 4C1
Third: 4C1
Fourth: 3C1
Total ways = (5C1*4C1*4C1*3C1) = 240
Besides the fact that it doesn't take into account the circular permutations, at least one thing that's wrong is that what you can choose for the fourth quadrant depends on what was chosen for the third quadrant. For example, let's say we have toppings A,B,C,D,E. You have 5 choices for the first quadrant, so let's say you pick A. Then you have 4 choices for the 2nd quadrant, so let's say you pick B. Now, for the third quadrant you can pick from A,C,D or E. But of you pick A, then the 4th quadrant would have 4 choices; it could be anything besides A. If you pick C, D, or E, then the 4th quadrant could have only 3 choices. Thus, it won't always be the case that you have 3 choices for the 4th quadrant.
shankar's way looks good to me, though I would probably change 5*3=30 to 10*3=30 in the second case.
