For this exam 1 question, how do I know what the graph looks like and whether the median is before or after the mode?
1st image: eqn, 2nd image part iv): question (not sure if you need to do ii and iii to find iv though) and 2nd image: Ans
And for sign tables, do we need to write the corresponding value of dy/dx for an x value (apart from when dy=dx=0)? Or can we just write dy/dx= positive/ negative? e.g. x=2, dy/dx= 3 (or can we just write dy/dx=+ve)
Sorry, looks like this question was missed!
Is this a VCAA question? Looks quite difficult. In my opinion, this type of question is likely to come up in an exam.
I've been able to find solutions to part ii and iii, but am stuck on your specific question. I'll post what I've come up with and hopefully someone could see something I didn't
Spoiler
ii) Consider
=4x\sin{2x})
Multiply both sides by 1/pi and integrate
)
You can now integrate f(x) from 0 to pi/4 to find out if the median lies before or after pi/4.
Solution
So now the median
-\frac{1}{\pi}(\sin{0}-2(0)\cos{0})=0.5)
=0.5)
Get into the same form as the question
So p = pi/2
iii) For part ii, the mode can usually be found by finding the maximum i.e. find the derivative and equate to zero. So:
=0)
Multiply both sides by pi/4 (to simplify the coefficients)
And we can eventually rearrange to get
My idea was to compare this with the expression from part ii)
Since
We can write
I'm not sure if this is along the right track though, so hopefully someone can provide a reason as to why M > m.
The only other way I can see of sketching the graph is to ignore the relative locations of m and M. We know m > pi/4, so the bulk of the graph is to the right of pi/4. If you draw y = x, and y = sin(2x), I guess you could approximate the graph of f(x) by using the product of functions method. But once again, I don't think this is the type of question they usually put on VCAA exams (especially exam 1 - you are usually asked to sketch functions you are familiar with).
RE: sign tables - are you referring to sign diagrams in the context of finding the nature of stationary points? If so, writing either positive, negative or zero should be sufficient.
can someone help with the 2012 vcaa paper Multi choice q. 8?
What does f(p) = f(q) = 0 mean? We have intercepts at x = p and x = q.
What does f ′(m) = f ′(n) = 0 mean? There are stationary point at x = m and x = n.
Since a is a negative number, we know f(x) is a negative cubic.
Have a go at combining all of this information, and sketch a potential graph, and post again if you get stuck
Hope this helps
EDIT: Oops, re-did my solution, accidentally looked at the specialist exam
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