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Question

In a football tournament, a team T has to play with each of the 6 other teams once. Each match can result in a win, draw or loss. The number of ways in which the team T finishes with more wins than losses, is


A
392
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B
294
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C
129
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D
213
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Solution

The correct option is B 294

Total number of results =36=729

Required number of ways =12(729( Number of ways in which team T finishes with equal number of wins and losses ))

Now, we shall consider following cases :

Case I: 0 draw, 3 wins and 3 losses
WWWLLL
Number of ways =6!3! 3!=6C3=20

Case II: 1 win, 1 loss, 4 draws
WLDDDD
Number of ways =6!4!=30

Case III: 2 wins, 2 losses, 2 draws:
WWLLDD
Number of ways =6!2! 2! 2!=90

Case IV: no win and no loss, 6 draws :
DDDDDD
Number of ways =1

Total ways with equal wins and draws =20+30+90+1=141
So, required number of ways =12(729141)=5882=294


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