How do you graph #y = -x^2 + 3#?

1 Answer
Nallasivam V
Sep 23, 2015

Refer Explanation section.

Explanation:

It has no #x# term in it. You supply -

#y = -x^2 +0x+3#

vertex formula #(-b)/(2a)#
Find the vertex
#x=(-b)/(2a)=0/(2 xx 1)=0#
Its vertex is at #x = 0#
Find a few numbers on either side of zero.
Find their #y# values.
Plot the pairs on a graph sheet.
Join them with a smooth curve.

x: y
-3: -6
-2: -1
-1: 2
0: 3
1: 2
2: -1
3: -6

graph{-x^2 +3 [-10, 10, -5, 5]}

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