Question

1. $x^2 - 5x - 6 = (x - 6)(quad)$
2. $x^2 + 18x + 81 = (x + 9)(quad)$
3. $x^2 - 16x + 63 = (x - 9)(quad)$
4. $6x^2 - 41x + 30 = (6x - 5)(quad)$
5. $2x^2 - 3x - 27 = (2x - 9)(quad)$
6. $6x^2 - 53x - 70 = (6x + 7)(quad)$

Explanation:

Problem 13:

Step1: Recall factoring quadratic.

We know that \((x - 6)(x + a)=x^{2}+(a - 6)x-6a\). Compare with \(x^{2}-5x - 6\). So, \(-6a=-6\) gives \(a = 1\), and \((a - 6)=-5\) (since \(1-6=-5\)). So the missing factor is \(x + 1\).

Step2: Verify by multiplying \((x - 6)(x + 1)\).

\((x - 6)(x + 1)=x^{2}+x-6x - 6=x^{2}-5x - 6\), which matches the left - hand side.

Step1: Recall perfect square trinomial or factoring.

We know that \((x + 9)(x + b)=x^{2}+(9 + b)x+9b\). Compare with \(x^{2}+18x + 81\). So, \(9b = 81\) gives \(b = 9\), and \(9 + b=18\) (since \(9 + 9 = 18\)). So the missing factor is \(x + 9\).

Step2: Verify by multiplying \((x + 9)(x + 9)\).

\((x + 9)(x + 9)=x^{2}+9x+9x + 81=x^{2}+18x + 81\), which matches the left - hand side.

Step1: Recall factoring quadratic.

We know that \((x - 9)(x - c)=x^{2}-(9 + c)x+9c\). Compare with \(x^{2}-16x + 63\). So, \(9c = 63\) gives \(c = 7\), and \(-(9 + c)=-16\) (since \(-(9 + 7)=-16\)). So the missing factor is \(x - 7\).

Step2: Verify by multiplying \((x - 9)(x - 7)\).

\((x - 9)(x - 7)=x^{2}-7x-9x + 63=x^{2}-16x + 63\), which matches the left - hand side.

Answer:

\(x + 1\)

Problem 14: