Geometric series (2 Viewers)

enigma_1 · Jan 1, 2014

How do I do a? I'm getting 11 but the answer's 10.

enigma_1 · Jan 1, 2014

RealiseNothing · Jan 1, 2014

The general term is :

$\frac{98}{7^{k-1}}$

We want to find the largest value of $k$ such that:

$\frac{98}{7^{k-1}} > 10^{-6}$

$98000000 > 7^{k-1}$

$ln(98000000) > (k-1)ln(7)$

$\frac{ln(98000000)}{ln(7)} + 1 > k$

$10.45 > k$

So $k=10$ is the largest value of $k$ such that the inequality holds, thus there are 10 terms where the series exceeds $10^{-6}$

enigma_1 · Jan 1, 2014

Thanks! How would you do c? I keep getting one number over or under - why is this?

integral95 · Jan 1, 2014

is the answer 132?

it's the some thing that realise did....

QZP · Jan 1, 2014

Hyper_bole said:
Thanks! How would you do c? I keep getting one number over or under - why is this?

Show me your working out. Your logic is flawed

MethewYan said:
is the answer 132?

it's the some thing that realise did....

That's correct

enigma_1 · Jan 1, 2014

Can someone fix up my working? Where did I stuff up I don't even know. My school teacher doesn't even know how to do these questions - hence my flawed logic.

rumbleroar · Jan 1, 2014

You screwed up on the 6th line

rumbleroar · Jan 1, 2014

Try converting 10^-6 into a decimal and log LHS instead, I think you caused yourself problems when you tried to log both sides

enigma_1 · Jan 1, 2014

I still aint getting it bro

enigma_1 · Jan 1, 2014

QZP said:
No, its correct.

@Hyperbole, the problem with your working out is that the series is DECREASING. If you wanted to follow through, flip the inequality sign from the start and conclude that the 133 term is the one that is BELOW what is required. HENCE, the 132 term is correct answer.

ahhhhh no wonder!!!!!!!!!!!!!!!!!! i think its the wording that threw me off

Drongoski · Jan 1, 2014

don't know if this has been fixed.

$(n-1) log0.9 > log 10^{-6} \implies (n-1) < \frac {log 10^{-6}}{log 0.9}$

because log 0.9 is NEGATIVE.

enigma_1 · Jan 1, 2014

Drongoski said:
don't know if this has been fixed.

$(n-1) log0.9 > log 10^{-6} \implies (n-1) < \frac {log 10^{-6}}{log 0.9}$

because log 0.9 is NEGATIVE.

but I don't get why log 0.9 is negative?

enigma_1 · Jan 1, 2014

As in, how would you know without typing it into calculator?

Drongoski · Jan 1, 2014

because log x is negative if 0 < x < 1, whatever the base.

enigma_1 · Jan 1, 2014

Drongoski said:
because log x is negative if 0 < x < 1, whatever the base.

THANK YOUUUUU, I finally get it now!!!!!!

QZP · Jan 1, 2014

Drongoski said:
don't know if this has been fixed.

$(n-1) log0.9 > log 10^{-6} \implies (n-1) < \frac {log 10^{-6}}{log 0.9}$

because log 0.9 is NEGATIVE.

Dangit, didn't see this. Nice work

Geometric series (2 Viewers)

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Geometric series (2 Viewers)

~~~~ Miss Cricket ~~~~

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what is that?It is Cowpea

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