How do you factor $9 z^{2} + 6 z - 8$ $9z^2 + 6z - 8$ ?

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How do you factor $9 z^{2} + 6 z - 8$ $9z^2 + 6z - 8$ ?

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Answer 1 · 2016-12-24T11:02:48

$9 z^{2} + 6 z - 8 = (3 z - 2) (3 z + 4)$ $9z^2+6z-8 = (3z-2)(3z+4)$

Explanation:

Given:

$9 z^{2} + 6 z - 8$ $9z^2+6z-8$

This example can be factored using an AC method:

Find a pair of factors of $A C = 9 \cdot 8 = 72$ $AC = 9*8=72$ which differ by $B = 6$ $B=6$

The pair $12, 6$ $12, 6$ works.

Use this pair to split the middle term, then factor by grouping:

$9 z^{2} + 6 z - 8 = 9 z^{2} + 12 z - 6 z - 8$ $9z^2+6z-8 = 9z^2+12z-6z-8$

$9 z^{2} + 6 z - 8 = (9 z^{2} + 12 z) - (6 z + 8)$ $color(white)(9z^2+6z-8) = (9z^2+12z)-(6z+8)$

$9 z^{2} + 6 z - 8 = 3 z (3 z + 4) - 2 (3 z + 4)$ $color(white)(9z^2+6z-8) = 3z(3z+4)-2(3z+4)$

$9 z^{2} + 6 z - 8 = (3 z - 2) (3 z + 4)$ $color(white)(9z^2+6z-8) = (3z-2)(3z+4)$

Answer 2 · 2016-12-24T11:09:00

$9 z^{2} + 6 z - 8 = (3 z - 2) (3 z + 4)$ $9z^2+6z-8 = (3z-2)(3z+4)$

Explanation:

Given:

$9 z^{2} + 6 z - 8$ $9z^2+6z-8$

We can factor this quadratic by completing the square.

We will also use the difference of squares identity:

$a^{2} - b^{2} = (a - b) (a + b)$ $a^2-b^2 = (a-b)(a+b)$

with $a = (3 z + 1)$ $a=(3z+1)$ and $b = 3$ $b=3$

Note that:

$31^{2} = 961$ $31^2 = 961$

So:

${(3 z + 1)}^{2} = 9 z^{2} + 6 z + 1$ $(3z+1)^2 = 9z^2+6z+1$

[Think what happens when $z = 10$ $z=10$ to see why]

Hence:

$9 z^{2} + 6 z - 8 = 9 z^{2} + 6 z + 1 - 9$ $9z^2+6z-8 = 9z^2+6z+1-9$

$9 z^{2} + 6 z - 8 = {(3 z + 1)}^{2} - 3^{2}$ $color(white)(9z^2+6z-8) = (3z+1)^2-3^2$

$9 z^{2} + 6 z - 8 = ((3 z + 1) - 3) ((3 z + 1) + 3)$ $color(white)(9z^2+6z-8) = ((3z+1)-3)((3z+1)+3)$

$9 z^{2} + 6 z - 8 = (3 z - 2) (3 z + 4)$ $color(white)(9z^2+6z-8) = (3z-2)(3z+4)$

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