How do you graph #(y-9)^2 = -8(x+5)#?

1 Answer
Shwetank Mauria
Apr 8, 2017

Please see below.

Explanation:

The equation is of the form #x=a(y-k)^2+h#, whose vertex is #(h,k)# and axis of symmetry is #y-k=0#, as it can be written as

#x=-1/8(y-9)^2-5# ............................(A)

and its vertex is #(-5,9)# and axis of symmetry is #y=9#

Let us select a few points with ordinate around #9#,

say #{1,3,5,7,11,13,15,17}#

Putting these as #y# in (A), we get values of #x# as

#{-13,-9.5,-7,-5.5,-5.5,-7,-9.5,-13}#

Joining these sets of points i.e. #(-13,1)#, #(-9.5,3)#, #(-7,5)#, #(-5.5,7)# #(-5.5,11)#, #(-7,13)#, #(-9.5,15)# and #(-13,17)# and we get the parabola.

graph{(y-9)^2=-8(x+5) [-33.59, 6.41, -1.12, 18.88]}

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