How do you find the vertex and the intercepts for $y= x^2-8x+5$ ?

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How do you find the vertex and the intercepts for $y= x^2-8x+5$ ?

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Answer 1 · 2018-07-21T18:28:56

$"vertex "=(4,-11)$

Explanation:

$"the equation of a parabola in "color(blue)"vertex form"$ is.

$•color(white)(x)y=a(x-h)^2+k$

$"where "(h,k)" are the coordinates of the vertex and a"$
$"is a multiplier"$

$"to obtain this form "color(blue)"complete the square"$

$y=x^2+2(-4)x+16-16+5$

$color(white)(y)=(x-4)^2-11larrcolor(blue)"in vertex form"$

$color(magenta)"vertex "=(4,-11)$

$"to obtain the y-intercept let x = 0"$

$y=0-0+5=5larrcolor(red)"y-intercept"$

$"to obtain the x-intercepts let y = 0"$

$(x-4)^2-11=0$

$(x-4)^2=11$

$color(blue)"take the square root of both sides"$

$x-4=+-sqrt11larrcolor(blue)"note plus or minus"$

$"add 4 to both sides"$

$x=4+-sqrt11larrcolor(red)"exact solutions"$

$x~~0.68" or "x~~7.32" to 2 dec. places"$

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How do you find the vertex and the intercepts for $y= x^2-8x+5$ ?

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How do you find the vertex and the intercepts for y= x^2-8x+5y= x^2-8x+5?

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How do you find the vertex and the intercepts for $y= x^2-8x+5$ ?