Binomial Help (1 Viewer)

popjin · Apr 26, 2020

Hi,

I'm having some trouble with C) iii, I'm not sure how to find the number of weeks outside of guessing and checking.

Here's what I've evaluated so far:

P(X=2) = nC2 * (9/10)^n-2 * 1/100
P(X=3) = nC3 * (9/10)^n-3 * 1/1000

Drdusk · Apr 26, 2020

popjin said:
Hi,

I'm having some trouble with C) iii, I'm not sure how to find the number of weeks outside of guessing and checking.

Here's what I've evaluated so far:

P(X=2) = nC2 * (9/10)^n-2 * 1/100
P(X=3) = nC3 * (9/10)^n-3 * 1/1000

View attachment 28250

Assuming your expressions are correct.

All you need to do is solve for n in the equation P(x=3) > P(x=2)

popjin · Apr 26, 2020

Drdusk said:
Assuming your expressions are correct.

All you need to do is solve for n in the equation P(x=3) > P(x=2)

I've simplified it to nC2 * 9^n-2 / 10^n-2 < nC3 * 9^n-3 / 10^n-3 * 1/10 but I'm not sure how to proceed further

fan96 · Apr 26, 2020

popjin said:
I've simplified it to nC2 * 9^n-2 / 10^n-2 < nC3 * 9^n-3 / 10^n-3 * 1/10 but I'm not sure how to proceed further

$\binom{n}{2} \left(\frac{9}{10}\right)^{n-2} < \binom{n}{3}\left(\frac{9}{10}\right)^{n-3} \frac 1{10}$

Divide by $(9/10)^{n-3}$ :

$\binom{n}{2} \left(\frac{9}{10}\right) < \binom{n}{3} \frac 1{10}$

Now use

$\binom{n}{k} = \frac{n!}{(n-k)! \, k!}$

so

$\frac{n!}{(n-2)! \, 2!} \left(\frac{9}{10}\right) < \frac{n!}{(n-3)! \, 3!} \cdot \frac 1{10}.$

Try the rest for yourself. There are a lot of $n$ 's you can cancel out there.

Binomial Help (1 Viewer)

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