How do you factor the trinomial $48 b^{2} - 74 - 10$ $48b^2-74-10$ ?

Question

How do you factor the trinomial $48 b^{2} - 74 - 10$ $48b^2-74-10$ ?

1 Answer

Impact of this question

1465 views around the world

You can reuse this answer
Creative Commons License

Answer 1 · 2016-03-13T07:34:25

y = 2(8x - 1)(3x - 5)

Explanation:

I use the new systematic AC Method to factor trinomials (Socratic Search).
$y = 48 x^{2} - 74 x - 10 =$ $y = 48x^2 - 74x - 10 =$ 48(x + p)(x + q)
Converted trinomial: $y' = x^2 - 74x - 480 =$ (x + p')(x + q').
p' and q' have opposite signs.
Factor pairs of (ac = - 480) --> ...(- 5, 96)(-6, 80). This sum is 74 = -b.
The opposite sum (6, -80) gives: p' = 8, and q' = - 80.
Then, $p = (p')/a = 6/48 = 1/8$ , and $q = (q')/a = -80/48 = -5/3$
Factored form: y = 48(x + 1/8)(x - 5/3) = 2(8x + 1)(3x - 5)

Science

Math

Humanities

... and beyond

How do you factor the trinomial $48 b^{2} - 74 - 10$ $48b^2-74-10$ ?

1 Answer

Explanation:

Related questions

Impact of this question

Science

Math

Humanities

... and beyond

How do you factor the trinomial 48b^2-74-1048b2−74−1048b^2-74-10?

1 Answer

Explanation:

Related questions

Impact of this question

How do you factor the trinomial $48 b^{2} - 74 - 10$ $48b^2-74-10$ ?