Algebra 1 Final REview

To solve the system of equations, add the two equations to eliminate y. This gives 7x = 7, so x = 1. Substitute x=1 into one of the equations to find y=1. Therefore, the solution is (1, 1).

To solve for y, substitute x=9-3y into the second equation: 4(9-3y)-2y=-6. Simplify to get -14y=-42, then solve for y to get y=3. Therefore, the correct answer is 3.

After multiplying the first equation by 4, we get 16x + 12y = -4. Multiplying the second equation by -3 gives -15x - 12y = -3.

To eliminate the y's, the least common multiple of 3 and 4 is 12. Multiply the first equation by 4 and the second by -3 to get 12y and -12y respectively.

The vertex of a quadratic function in the form y = ax^2 + bx + c is given by (-b/2a, f(-b/2a)), so for y = x^2 - 6x + 11, the vertex is (3,2).

The vertex of a parabola in the form y = ax^2 + bx + c is given by the point (-b/2a, f(-b/2a)). Substituting a=5, b=-20 into the formula gives the vertex as (2, -7). Therefore, the correct answer is (2, -7).

To find the vertex, use the formula x = -b / 2a. In this case, a = -5, b = -20. Plugging in the values, x = -(-20) / 2(-5) = -20 / -10 = 2. Then substitute x back into the equation to find y. Therefore, the vertex is (-2, -6).