Hi all
My first post on here. I've searched for a solution to this and can't find one. Its seems similar to Whist scenarios, but without partners. So in theory it should be simpler, but I can't find an answer anywhere.
I'm going to run a boardgame tournament. There will be 28 or 40 participants - not sure yet - I've picked those numbers for a good reason - it makes it easier to set up the schedule.
The game is a 4 player game. I want everyone to play against everyone else once and once only.
So player A might play against B, C and D in their first game. Player A will not play any of those players again.
I figure that with 28 participants it needs each player to play 9 games to play each other player once (e.g. A plays BCD in game 1, EFG in game 2, HIJ in game 3, etc. 27 other players divided by 3 = 9 games for player A).
40 participants means 39 other people to play, at 3 per game = 13 games for each player.
I'm looking for the solution schedule. Can anyone help?
Thanks
Tony
