N What is the solution set for this linear-quadratic system of equations? y= x2 - x-12 y-x-3 = 0 A. {(-3,0), (0,3)} B. {(-3,0), (4, 0); C. {(-3,0), (5,8)} D. {(4,0), (0,3)}

Question

asked Oct 15, 2021 231k views

1 Answer

Ricky Levi · Answer 1 · 2021-10-19T03:47:28+0000

Answer:

C

Explanation:

Given:
$y=x^2-x-12\,,\,y-x-3=0$

To find: solution set for this linear-quadratic system of equations

Solution:

A linear equation is an equation whose degree is 1 and degree of quadratic equation is 2.

$y-x-3=0\\y=x+3$

Put
y=x+3 in
y=x^2-x-12

$x+3=x^2-x-12\\x^2-2x-15=0\\x^2-5x+3x-15=0\\x(x-5)+3(x-5)=0\\(x+3)(x-5)=0\\x=-3\,,\,x=5$

For x = -3, y = -3+3=0

For x = 5, y = 5 + 3 = 8

So solutions are
$\left ( -3,0 \right )\,,\,\left ( 5,8 \right )$

Option C. is correct