• Best of luck to the class of 2024 for their HSC exams. You got this!
    Let us know your thoughts on the HSC exams here
  • YOU can help the next generation of students in the community!
    Share your trial papers and notes on our Notes & Resources page
MedVision ad

Combinations part 2 (1 Viewer)

Smilebuffalo

Member
Joined
Jun 9, 2008
Messages
89
Location
Fairfield West
Gender
Male
HSC
2010
11. An eleven is to be chosen from 15 cricketers of whom 5 are bowlers only, 2 others are wicketkeepers only and the rest are batsman only. How many possible elevens can be chosen which contain at least 4 bowlers and at least 1 wicketkeeper? (answer = 742

18. In how many ways can n things be shared between 2 people? (answer = 2^n -2)
 

Timothy.Siu

Prophet 9
Joined
Aug 6, 2008
Messages
3,449
Location
Sydney
Gender
Male
HSC
2009
11. An eleven is to be chosen from 15 cricketers of whom 5 are bowlers only, 2 others are wicketkeepers only and the rest are batsman only. How many possible elevens can be chosen which contain at least 4 bowlers and at least 1 wicketkeeper? (answer = 742

18. In how many ways can n things be shared between 2 people? (answer = 2^n -2)
for 11. u just have to take a few cases, which i'm too lazy to do at this hour.
so, basically write down all the cases.
its the only way i think

18. each "thing" has 2 options. so its like n 2's 2x2x....x2=2^n but this includes the cases where one of them has nothing. so we minus 2 of these cases. 2^n-2
 

gurmies

Drover
Joined
Mar 20, 2008
Messages
1,209
Location
North Bondi
Gender
Male
HSC
2009
Case 1 (4 bowl, 1 wick, 6 bat) - 5C4.2C1.8C6 = 280

Case 2 (4 bowl, 2 wick, 5 bat) - 5C4.2C2.8C5 = 280

Case 3 (5 bowl, 1 wick, 5 bat) - 5C5.2C1.8C5 = 112

Case 4 (5 bowl, 2 wick, 4 bat) - 5C5.2C2.8C4 = 70

Sum them up, giving 742.
 

Smilebuffalo

Member
Joined
Jun 9, 2008
Messages
89
Location
Fairfield West
Gender
Male
HSC
2010
Case 1 (4 bowl, 1 wick, 6 bat) - 5C4.2C1.8C6 = 280

Case 2 (4 bowl, 2 wick, 5 bat) - 5C4.2C2.8C5 = 280

Case 3 (5 bowl, 1 wick, 5 bat) - 5C5.2C1.8C5 = 112

Case 4 (5 bowl, 2 wick, 4 bat) - 5C5.2C2.8C4 = 70

Sum them up, giving 742.

Ohhhhhh....


But in the question there's no restriction for the number of batsman that the team can have.

So couldn't we continue and do combinations like:

6 bowl, 2 wick, 3 bat

7 bowl, 2 wick, 2 bat

or....

5 bowl, 3 wick, 3 bat.. etc
 

lychnobity

Active Member
Joined
Mar 9, 2008
Messages
1,292
Gender
Undisclosed
HSC
2009
So couldn't we continue and do combinations like:

6 bowl, 2 wick, 3 bat

7 bowl, 2 wick, 2 bat

or....

5 bowl, 3 wick, 3 bat.. etc
But the question says you only have 5 bowlers, and 2 wicketkeepers. That's why you can't have those combinations
 

Aquawhite

Retiring
Joined
Jul 14, 2008
Messages
4,946
Location
Gold Coast
Gender
Male
HSC
2010
Uni Grad
2013
Ah, good old Combinations again :)

Perms are just as nice lol... -_- but the ones in the actual HSC MX1 papers are always quite simple.
 

Users Who Are Viewing This Thread (Users: 0, Guests: 1)

Top