Question

Let f(x)=x^2−2bx, where b is a constant. What can you say about the zeros, y-intercept, axis of symmetry and extreme value of f(x) in terms of b? Justify your answers.(4 points)
30 points and brainlyist

Answer 1

I think it’s -b^2 sorry if I’m wrong

Answer 2

Set up equation

${x}^{2} - 2bx$

Factor out an x

$x(x - 2b)$

Set x-2b=0

$x - 2b = 0$

$x = 2b$

So our zeroes are

$0$

$2b$

When we graph our parabola, our y intercept will be at (0,0) and (0,2b).

Our axis of symmetry will be at

${b}$ since we did -b/2a

Our extreme values for this function is a minimum value since our leading factor coefficient (1) is greater than zero.

so plug in b f

into the equation at the very top will give us our minimum.

${b}^{2} - 2b(b)$

${b}^{2} - 2 {b}^{2}$

$- {b}^{2}$

so our miniumum value is

$- {b}^{2}$