Graphs (1 Viewer)

coyazayo · Apr 6, 2016

Helloo to everyone reading this thread. Have some questions about graphs I would like to pose.

1. Express hyperobla y=-(3-x)/(2x-1) in the form y=a/x-h +k

2. consider the equation of the hyperbola x=b-cy/y-a. Express the equation in the form of y=a/x-h +k

3. Consider the equations of the straight line and the square root, y=2+ax and y=\sqrt{ 5+x}. Find the set of values of a, when the line intersects the graph of the square root at two distinct points

Thanks in Advance :^)

KingOfActing · Apr 6, 2016

leehuan · Apr 6, 2016

coyazayo said:
2. consider the equation of the hyperbola x=b-cy/y-a. Express the equation in the form of y=a/x-h +k

Please use brackets. That is very VERY confusing.

Also, note on Q1 whilst I'd vouch for KoA's method anyday, worst comes to worst polynomial long division is fine.
___________________________________

Without any sneaky tricks, Q3 can be done by equating the two equations, squaring, and then relying on the quadratic discriminant.

KingOfActing · Apr 6, 2016

leehuan said:
Please use brackets. That is very VERY confusing.

Also, note on Q1 whilst I'd vouch for KoA's method anyday, worst comes to worst polynomial long division is fine.
___________________________________

Without any sneaky tricks, Q3 can be done by equating the two equations, squaring, and then relying on the quadratic discriminant.

It can't actually be done that way, the discriminant is always positive. You could probably do some stuff with the conditions ax > -2 and x >= -5, along with the quadratic equation, but imo that seems much harder.

InteGrand · Apr 6, 2016

Yeah, a graphical approach was my first thought for Q3.

leehuan · Apr 6, 2016

Oh that's interesting. Tried it out just now.

Paradoxica · Apr 6, 2016

KingOfActing said:
$$1)$\noindent \frac{x-3}{2x-1} = \frac{x-\frac12-\frac52}{2x-1} = \frac{\frac12(2x-1) - \frac52}{2x-1}= \frac12 - \frac{\frac54}{x-\frac12}$

$$\noindent 2)$ x = b - \frac{cy}{y-a}\\xy - ax = by - ab -cy\\xy - by - cy = ax+ab\\y(x-b-c) = ax+ab\\y = \frac{ax+ab}{x-b-c}\\y = \frac{ax-ab-ac+2ab+ac}{x - b - c} = \frac{a(x-b-c) + 2ab+ac}{x-b-c} = a + \frac{2ab+ac}{x-(b+c)}$

$$\noindent 3) Looking at the two graphs, it is clear that $ a > 0 $. Consider the line through the point (0,2) as its gradient varies. The final line to intersect twice will pass through (-5,0) $\Rightarrow a = \frac{2}{5}$. Hence $ 0 < a \leq \frac{2}{5}$

One could also say by inspection...

KingOfActing · Apr 6, 2016

Yeah the other way to solve 3 is by taking the negative root of the equation once it's squared and applying the two conditions I wrote earlier and solving a quartic (I think) inequality in a.

Paradoxica · Apr 6, 2016

It's not a quartic. It is obvious that by flipping the entire graph of the scenario about the line y=x, we have a (domain restricted) quadratic intersecting a line. Then just consider the case necessary to restrict the branch.

KingOfActing · Apr 6, 2016

Paradoxica said:
It's not a quartic. It is obvious that by flipping the entire graph of the scenario about the line y=x, we have a (domain restricted) quadratic intersecting a line. Then just consider the case necessary to restrict the branch.

true true

still a pain to do tho

Graphs (1 Viewer)

coyazayo

Member

KingOfActing

lukewarm mess

leehuan

Well-Known Member

KingOfActing

lukewarm mess

InteGrand

Well-Known Member

leehuan

Well-Known Member

Paradoxica

-insert title here-

KingOfActing

lukewarm mess

Paradoxica

-insert title here-

KingOfActing

lukewarm mess

Users Who Are Viewing This Thread (Users: 0, Guests: 1)