MedVision ad

MX1 Locus (1 Viewer)

spatula232

Active Member
Joined
Jul 18, 2013
Messages
348
Location
Mars One
Gender
Male
HSC
2015
Was asked to find the locus of the midpoint, found it to be x^2=2a(y-4a)
The answers said it was a parabola with Vertex at (0,4a)
Doesn't it have to be in the form x^2=4ay? Or would I just leave it as is?

Thanks,
Spatula
 
Last edited:

InteGrand

Well-Known Member
Joined
Dec 11, 2014
Messages
6,109
Gender
Male
HSC
N/A
Was asked to find the locus of the midpoint, found it to be x^2=2a(y-4a)
The answers said it was a parabola with Vertex at (0,4a)
Doesn't it have to be in the form x^2=4ay? Or will it work out to be the same?

Thanks,
Spatula
 
Last edited:

spatula232

Active Member
Joined
Jul 18, 2013
Messages
348
Location
Mars One
Gender
Male
HSC
2015
x^2 = 2a(y-4a)
Should that be 4a or 2a [and therefore change make it x^2=4a(y/2 - 2a)], or does it not matter?
Apologies, I wasn't very clear
 
Last edited:

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

Top