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A committee must be formed with 4 teachers and 5 students. If thereare 10 teachers to choose from, and 8 students, how many differentways could the committee be made?

A committee must be formed with 4 teachers and 5 students. If thereare 10 teachers to choose from, and 8 students, how many differentways could the committee be made?
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A committee must be formed with 4 teachers and 5 students. If thereare 10 teachers to choose from, and 8 students, how many differentways could the committee be made?

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User MrFox
by
8.4k points

1 Answer

2 votes

We have to choose 4 teachers from 10 teachers.

So, the number of ways of doing this is


10C_4=(10!)/(4!(10-4)!)=(10!)/(4!*6!)=(10*9*8*7*6!)/(4*3*2*6!)=10*3*7=210

We have to choose 5 students from 8 students.

So, the number of ways of doing this is


8C_5=(8!)/(5!(8-5)!)=(8!)/(5!*3!)=(8*7*6*5!)/(5!*3*2)=8*7=56

Now, we have to choose both teachers and students.

So the number of ways is


10C_4*8C_5=210*56=11760

The different number of ways the committee made is 11760 ways.

answered
User Ceo
by
7.5k points
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