How do you use the important points to sketch the graph of #Y=x^2 - 16#?

1 Answer
Tony B
Feb 19, 2017

y-intercept = Vertex#->(x,y)=(0,16)#
x-intercept at point: #(4,0)" and "(-4,0)#

Explanation:

Compare to #y=x^2# which is of shape #uu# and the vertex is at the point# (x,y)=(0,0)#

Now include the #-16# and it drops the whole thing down by 16.

So the vertex for #y=x^2-16# is at:

#color(blue)("Vertex"->(x,y)=(0,-16)#
~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~
To determine the x-intercepts set #y=0# giving

#y=0=(x^2-4^2) larr #always be on the lookout for this one

#0=(x-4)(x+4)#

Set #x-4=0 -> x=+4#
Set #x+4=0->x=-4#

Related questions
See all questions in Quadratic Functions and Their Graphs
Impact of this question
911 views around the world
You can reuse this answer
Creative Commons License