How do you find the intercept and vertex of #y= - .3(x+2)^2-2#?

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Answer 1 · 2016-04-26T15:26:45

No x intercepts
#y_("intercept")= -15/6#

Assumption: The question has -.3 which is assumed to mean - 0.3

The y intercept is at #x=0#

#=>y_("intercept")=-0.3(0+2)^2-2#

#y_("intercept")=(4xx0.3)-2 = (4xx3/10)-2#
#color(blue)(y_("intercept")= -(4xx3/10)-2 = -15/5)#
'~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~~

The x intercepts are at #y=0#

#=>0=-0.3(x+2)^2-2#

Add 2 to both sides

#0+2=-0.3(x+2)^2-2+2#

#2=-0.3(x+2)^2#

Divide both sides by #0.3#

#2/0.3 =-0.3/0.3(x+2)^2#

But #-0.3/0.3=-1#

#2/0.3=-(x+2)^2#

Multiply both sides by #-1#

#-2/0.3=+(x+2)^2#

Square root both sides

#x+2=sqrt( -2/0.3)#

As we are trying to take the square root of a negative number it means that the graph does not cross the x-axis. So there are no x intercepts

Tony B