MedVision ad

Form an equation describe the curve? (1 Viewer)

fabl

Member
Joined
Aug 7, 2014
Messages
56
Gender
Male
HSC
2014
The points A (4,-2) , B (-4,4) and P (x,y) form a right angle at P. Form an equation in x and y. hence find the equation of the curve on which P lies?

How to find the equation?
 

QZP

Well-Known Member
Joined
Oct 7, 2013
Messages
839
Gender
Undisclosed
HSC
2014
What's the condition for there to be a right angle at P?
 

fabl

Member
Joined
Aug 7, 2014
Messages
56
Gender
Male
HSC
2014
Im thinking possibly perpendicular distance. however, didn't say on the question.
 

Stygian

Active Member
Joined
Aug 11, 2014
Messages
120
Gender
Undisclosed
HSC
2015
PA and PB are perpendicular

meaning their gradients multiply to be -1

so find their gradients using the formulae y-y1/x-x1 and sub in the appropriate x1 and y1 values, equate the product of these gradients to -1 and proceed from there

(i meant y2-y1/x2-x1 but pre-emptively subbed in P(x,y) in lol)
 
Last edited:

QZP

Well-Known Member
Joined
Oct 7, 2013
Messages
839
Gender
Undisclosed
HSC
2014
Im thinking possibly perpendicular distance. however, didn't say on the question.
I was hinting at the answer. You have to look at the question and extract information (Stygian answered it- m(PA).m(PB) = -1)
 

fabl

Member
Joined
Aug 7, 2014
Messages
56
Gender
Male
HSC
2014
Do you mean like this

(y +2) (y-4) / (x-4) (x+4) = -1

which leads to y-2y = -1x +24?
 

Carrotsticks

Retired
Joined
Jun 29, 2009
Messages
9,494
Gender
Undisclosed
HSC
N/A
The points A (4,-2) , B (-4,4) and P (x,y) form a right angle at P. Form an equation in x and y. hence find the equation of the curve on which P lies?

How to find the equation?
A and B are the endpoints of the diameter of some circle, where P lies on its circumference.

So the centre of the circle is the midpoint of AB and the radius is half the distance AB. You can write down the equation of the circle from here.
 

aDimitri

i'm the cook
Joined
Aug 22, 2013
Messages
505
Location
Blue Mountains
Gender
Male
HSC
2014
A and B are the endpoints of the diameter of some circle, where P lies on its circumference.

So the centre of the circle is the midpoint of AB and the radius is half the distance AB. You can write down the equation of the circle from here.
but circle geo is 3U so the angle in a semi-circle theorem is outside of the scope of this course isn't it?
 

fabl

Member
Joined
Aug 7, 2014
Messages
56
Gender
Male
HSC
2014
A and B are the endpoints of the diameter of some circle, where P lies on its circumference.

So the centre of the circle is the midpoint of AB and the radius is half the distance AB. You can write down the equation of the circle from here.
How did you figure out the curve was a circle?
 

Carrotsticks

Retired
Joined
Jun 29, 2009
Messages
9,494
Gender
Undisclosed
HSC
N/A
How did you figure out the curve was a circle?
It's a Circle Geometry (not in the 2U course) theorem called Thales' Theorem.

Any angle subtended from the diameter of a circle onto the circumference is 90 degrees. Since angle APB is 90 degrees, A and B must be the endpoints of the diameter, and P must lie on the circumference.
 

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

Top