What is the the vertex of $y = {(x - 1)}^{2} + 2 x - 12$ $y = (x-1)^2+2x-12$ ?

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What is the the vertex of $y = {(x - 1)}^{2} + 2 x - 12$ $y = (x-1)^2+2x-12$ ?

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Answer 1 · 2018-08-06T08:36:07

$vertex = (0, - 11)$ $"vertex "=(0,-11)$

Explanation:

$expand and rearrange into standard form$ $"expand and rearrange into standard form"$

$∙ x y = a x^{2} + b x + c x; a \neq 0$ $•color(white)(x)y=ax^2+bx+c color(white)(x);a!=0$

$y = x^{2} - 2 x + 1 + 2 x - 12$ $y=x^2-2x+1+2x-12$

$y = x^{2} - 11$ $y=x^2-11$

$A quadratic in the form y = a x^{2} + c$ $"A quadratic in the form "y=ax^2+c$

$has it's vertex at (0, c)$ $"has it's vertex at "(0,c)$

$this has it's vertex at (0, - 11)$ $"this has it's vertex at "(0,-11)$
graph{x^2-11 [-40, 40, -20, 20]}

Answer 2 · 2018-08-06T08:41:46

$y = {(x - 1)}^{2} + 2 x - 12$ $y=(x-1)^2+2x-12$

Expand the brackets

$y = x^{2} - 2 x + 1 + 2 x - 12$ $y=x^2-2x+1+2x-12$

$y = x^{2} - 11$ $y=x^2-11$

The parabola $y = x^{2}$ $y=x^2$ is a $\cup$ $uu$ curve with the vertex (a minimum) at the origin (0,0)
$y = x^{2} - 11$ $y=x^2-11$ is this same curve but translated 11 units down the y axis so the vertex (again a minimum) is at (0,-11)

Another method:
To find the x coordinate of the vertex use $\frac{- b}{2 a}$ $(-b)/(2a)$ when the equation is in the form $y = a x^{2} + b x + c$ $y=ax^2+bx+c$

From $y = x^{2} - 11 a = 1 and b = 0$ $y=x^2-11 a=1 and b=0$

$- \frac{0}{1} = 0$ $-0/1=0$ put $x = 0$ $x=0$ into the equation, $y = - 11$ $y=-11$
(0,-11) is your vertex

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What is the the vertex of $y = {(x - 1)}^{2} + 2 x - 12$ $y = (x-1)^2+2x-12$ ?

2 Answers

Explanation:

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What is the the vertex of y=(x−1)2+2x−12y = (x-1)^2+2x-12?

2 Answers

Explanation:

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What is the the vertex of $y = {(x - 1)}^{2} + 2 x - 12$ $y = (x-1)^2+2x-12$ ?