ffs I got the maximum turning point wrong.. (1 Viewer)

jamesfirst · Oct 26, 2011

Can I get 1 mark if I did it wrong ?

damo_g · Oct 26, 2011

It might depend where you stuffed up. You might have had to get the correct factorisation and put it equal to zero. How did you show it was a max if you got the wrong value?

I don't know what happens on the graph, could lose a mark for not having the correct turning point. If your point doesn't make it any easier to graph, then you could get 2 for that one, providing you graphed your answer right?

MrBrightside · Oct 26, 2011

You actually do turning points in 3 unit. lol Is it possible for a 2 unit student to do? or is the question much harder than a 2 unit version? what was the question?

damo_g · Oct 26, 2011

MrBrightside said:
You actually do turning points in 3 unit. lol Is it possible for a 2 unit student to do? or is the question much harder than a 2 unit version? what was the question?

A decent 2 unit student could do it.

f(x) = e^-x - 2e^-2x

Had to find f '(x), the max turning point, the x and y intercepts, what the graph did as x approached infinity, and then graph it.

That was for 8 marks. Pretty generous question 4.

SpiralFlex · Oct 26, 2011

MrBrightside said:
You actually do turning points in 3 unit. lol Is it possible for a 2 unit student to do? or is the question much harder than a 2 unit version? what was the question?

Yes, there are a few additions to trigonometry differentiation though.

MrBrightside · Oct 26, 2011

damo_g said:
A decent 2 unit student could do it.

f(x) = e^-x - 2e^-2x

Had to find f '(x), the max turning point, the x and y intercepts, what the graph did as x approached infinity, and then graph it.

That was for 8 marks. Pretty generous question 4.

Oh wow, what question would it be in? Q1 -7. I think I've done a similar question to this in past papers.

jamesfirst · Oct 26, 2011

damo_g said:
A decent 2 unit student could do it.

f(x) = e^-x - 2e^-2x

Had to find f '(x), the max turning point, the x and y intercepts, what the graph did as x approached infinity, and then graph it.

That was for 8 marks. Pretty generous question 4.

I don't know how but I got the y-intercept as the turning point...

maybe I used f(x)............ god DAMNIT

x3mattyboii · Oct 26, 2011

Was the maximum turning point at like (-1.2x, -28) ? Because the y intercept was all the way at the top? And i was like "this doesnt look right"

MrBrightside · Oct 26, 2011

jamesfirst said:
I don't know how but I got the y-intercept as the turning point...

maybe I used f(x)............ god DAMNIT

ahaha it happens. It's best to set out your work neatly for these questions and don't rush. Because a simple early error can lead to a fatal answer and you will have to do the whole question again to get the right points etc.

jamesfirst · Oct 26, 2011

dude. I put maximum as the y intercept and I was like... wtffffffffffffffff

Riproot · Oct 26, 2011

jamesfirst said:
dude. I put maximum as the y intercept and I was like... wtffffffffffffffff

Yeah I mixed them up on the graph. :/

MATHSCAPE · Oct 26, 2011

do you have to show that it's a max? :|

SpiralFlex · Oct 26, 2011

x3mattyboii said:
Was the maximum turning point at like (-1.2x, -28) ? Because the y intercept was all the way at the top? And i was like "this doesnt look right"

$f(x)=e^-^x-2e^-^2^x$

$f'(x)=-e^-^x+4e^-^2^x$

Let $u=e^-^x$

$4u^2-u=0$

$u(4u-1)=0$

$u=\frac{1}{4}$

$e^-^x=\frac{1}{4}$

$-x\lne=\ln(\frac{1}{4})$

$-x=\ln\frac{1}{4}$

$x=-\ln\frac{1}{4}$

$\therefore x = \ln 4$

When $x=\ln 4,y = \frac{1}{8}$

Don't forget to test too.

Nympha · Oct 26, 2011

x3mattyboii said:
Was the maximum turning point at like (-1.2x, -28) ? Because the y intercept was all the way at the top? And i was like "this doesnt look right"

I think the turning point was (ln4, 1/8)
The y intercept was -1.

MATHSCAPE said:
do you have to show that it's a max? :|

I assume that you'd usually have to. f'(x)=0 does not automatically mean it's a max. point. It could be a minimum or a horizontal point of inflexion or whatever for all you know.

michaeljennings · Oct 26, 2011

Nympha said:
I think the turning point was (ln4, 1/8)
The y intercept was -1.

I assume that you'd usually have to. f'(x)=0 does not automatically mean it's a max. point. It could be a minimum or a horizontal point of inflexion or whatever for all you know.

You dont have to show its a max because the question says its a max already

Nympha · Oct 26, 2011

michaeljennings said:
You dont have to show its a max because the question says its a max already

Ah, okay I couldn't remember what the question said and I cbf to look it up. I stand corrected.

michaeljennings · Oct 26, 2011

Nympha said:
Ah, okay I couldn't remember what the question said and I cbf to look it up. I stand corrected.

haha no worries =)

SpiralFlex · Oct 26, 2011

michaeljennings said:
You dont have to show its a max because the question says its a max already

I was taught to show it even though it says maximum. Either that or it must be a habit.

HyperComplexxx · Oct 26, 2011

SpiralFlex said:
I was taught to show it even though it says maximum. Either that or it must be a habit.

Same here, i was taught to show it regardless the mark allocated to that question

michaeljennings · Oct 26, 2011

HyperComplexxx said:
Same here, i was taught to show it regardless the mark allocated to that question

mmm yeah thats what our teachers tell us but id be surprised if they took marks off cos the question says "f(x) has one maximum turning point, find the coordinates of the turning point" and when you solve f'(x) you only get one possible x value that solves f'(x) = 0 so it would be fair to assume that it is the maximum turning point the question is referring too

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