You haven't understood the method that DTES is using. DTES's method is:
- Buy two tickets and assume no number appears on both tickets.
- There are 20 different sets of 3 numbers possible on the first ticket.
- There are 20 different sets of 3 numbers possible on the second ticket.
- Therefore there are 20x20=400 different ways of picking 3 numbers from the first ticket and 3 numbers from the second ticket.
- When the draw is made we require one of these 400 ways of picking 3 from each ticket.
- Therefore the odds of this occurring are 400/13,983,816.
To use this method to calculate the odds of matching two numbers from each ticket:
- Buy two tickets and assume no number appears on both tickets.
- There are 15 different sets of 2 numbers possible on the first ticket.
- There are 15 different sets of 2 numbers possible on the second ticket.
- Therefore there are 15x15=225 different ways of picking 2 numbers from the first ticket and 2 numbers from the second ticket.
- This only gives us 4 numbers but 6 numbers will be drawn.
- The other 2 numbers can be any 2 that don't appear on the two tickets.
- There are 37C2 = 666 such sets of 2 numbers that don't appear on the first two tickets.
- Therefore there are 225x666=149850 ways of generating 6 numbers that contain 2 numbers from each of the tickets plus another 2 numbers not on either ticket.
- Therefore the odds of this occurring are 149,850/13,983,816, which is significantly higher than the odds of matching three numbers from each ticket.
To use this method to calculate the odds of matching 3 numbers from just one ticket:
- Buy one ticket.
- There are 20 sets of 3 numbers possible on this ticket.
- This gives us 3 numbers but 6 will be drawn.
- The other 3 numbers need to be numbers not on the ticket.
- There are 43C3 = 12341 different sets of 3 numbers that don't appear on the ticket.
- Therefore there are 20x12341 = 246820 ways of generating 6 numbers with exactly 3 from the ticket.
- Therefore the odds of winning are 246820/13983816 = 1/56.66.
