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High School Core Standards - Algebra I Assessment Anchors

6.06 Factoring trinomials

Lesson

Sometimes the common factor that we take out when factoring is not just a single algebraic term. Consider this example: $a\left(x+1\right)+2\left(x+1\right)$a(x+1)+2(x+1). Let's consider the similar, but simpler, expression of $ay+2y$ay+2y, where $y=\left(x+1\right)$y=(x+1). This we can factor into $y\left(a+2\right)$y(a+2). So that must mean $a\left(x+1\right)+2\left(x+1\right)$a(x+1)+2(x+1) can be factored into $\left(x+1\right)\left(a+2\right)$(x+1)(a+2).

Can you see that $\left(x+1\right)$(x+1) here is a common factor of both terms even though it is a binomial in parentheses? This is the key idea with factoring by grouping.

 

Factoring by grouping

The above technique is very useful in certain situations when factoring four terms. Let's take a look at the example $14-7v+4u-2uv$147v+4u2uv. There is no way we could factor that by finding an GCF of all four terms! But let's have a look at what factors there are in each term anyway:

Can you see that $14$14 and -$7v$7v have an GCF of $7$7, while $4u$4u and $2uv$2uv have an GCF of $2u$2u? That means we can group these four terms into two pairs and factor them separately. Let's see what happens!

$14-7v+4u-2uv$147v+4u2uv $=$= $\left(14-7v\right)+\left(4u-2uv\right)$(147v)+(4u2uv)
  $=$= $7\left(2-v\right)+2u\left(2-v\right)$7(2v)+2u(2v)

Wow, this is very similar to the example we had before, where we can take out a parenthesized term to factor! Let's try that technique!

$7\left(2-v\right)+2u\left(2-v\right)=\left(2-v\right)\left(7+2u\right)$7(2v)+2u(2v)=(2v)(7+2u)

Isn't that amazing? We managed to factor four terms!

Remember!

The key when factoring by grouping is to make sure that each pair of terms factors to give the same common factor.

 

Factoring with negatives

Sometimes we need to factor out a negative to make the two parentheses the same. Suppose we factor by grouping and get $3\left(y-1\right)-10y\left(1-y\right)$3(y1)10y(1y). We don't have the exactly same factor as we have $\left(y-1\right)$(y1) and $\left(1-y\right)$(1y), so we think that it can't be factored. However, notice that $y-1$y1 and $1-y$1y look quite similar don't they? In fact, $1-y$1y is equal to $-1\times\left(y-1\right)$1×(y1)! Let's see if we can use this to rewrite our expression.

$3\left(y-1\right)-10y\left(1-y\right)$3(y1)10y(1y) $=$= $3\left(y-1\right)-10y\times\left(-1\right)\times\left(y-1\right)$3(y1)10y×(1)×(y1)
  $=$= $3\left(y-1\right)+10y\left(y-1\right)$3(y1)+10y(y1)
This can then be factored using our usual approach:
  $=$= $\left(y-1\right)\left(3+10y\right)$(y1)(3+10y)

So when you see two binomials that are exactly the same but with inverted signs, you can use $-1$1 to help you out!

 

Practice questions

Question 1

Factor the following expression by taking out the common factor:

$5\left(a+b\right)+v\left(a+b\right)$5(a+b)+v(a+b)

Question 2

Factor the following expression:

$2x+xz-40y-20yz$2x+xz40y20yz

Question 3

Factor $x^2+5x+8x+40$x2+5x+8x+40 by grouping in pairs.

 

Factoring trinomials with a leading coefficient of 1

We have already learned how to distribute the product of two binomials, the result of which is called a quadratic. Now we are going to reverse the process of distributing and look at factoring back to the original binomial product. We are going to start with quadratics of the $x^2+bx+c$x2+bx+c, so with a leading coefficient of $1$1.

Recall that if we distribute $\left(x+m\right)\left(x+n\right)$(x+m)(x+n) and combine like terms, we found that:

 $\left(x+m\right)\left(x+n\right)=x^2+\left(m+n\right)x+mn$(x+m)(x+n)=x2+(m+n)x+mn

Notice!

A shortcut to distributing $\left(x+m\right)\left(x+n\right)$(x+m)(x+n) is to notice that the coefficient of the $x^2$x2 term will be $1$1, the coefficient of the $x$x term will be the sum of $m$m and $n$n, $\left(m+n\right)$(m+n), and the constant will be the product of $m$m and $n$n, $\left(mn\right)$(mn).

Using the fact above, we can factor expressions of the form, $x^2+bx+c$x2+bx+c.

1. Find two numbers, $m$m and $n$n, that have a sum of $b$b and a product of $c$c

  • In other words, we are trying to find $m$m and $n$n, where $\left(m+n\right)=b$(m+n)=b and $mn=c$mn=c 
  • It's usually a lot easier to look at $c$c and start listing out its factors first rather than first finding the numbers that add to make $b$b.

2. The factored form will be $\left(x+m\right)\left(x+n\right)$(x+m)(x+n)

 

Watch Out!
  • If $c$c is positive and $b$b is positive, then $m$m and $n$n are positive
  • If $c$c is positive and $b$b is negative, then $m$m and $n$n are negative
  • If $c$c is negative, then $m$m and $n$n have different signs, one positive and one negative

 

Worked examples

Question 4

Factor $x^2+15x+56$x2+15x+56

Think: We are looking for two number that have a sum of 15 and a product of 56. What does this tell us about the signs of the two numbers?

Do:

$m+n=15$m+n=15 and $m\times n=56$m×n=56

$m$m and $n$n must both then be positive if they have both a positive product and sum.

If we look at the factors of $56$56, we get these pairs:

$1$1, $56$56

$2$2, $28$28

$4$4, $14$14

$7$7, $8$8

The only pair with a sum of $15$15 is the last pair, so $m$m and $n$n must equal $7$7 and $8$8.

So $x^2+15x+56=\left(x+7\right)\left(x+8\right)$x2+15x+56=(x+7)(x+8)

Reflect: Coming up with the list of factors requires a good knowledge of our times tables and possibly a calculator for very large numbers.

 
Question 5

Factor $x^2+2x-3$x2+2x3 using the strategy or organizational tool of your choice.

Think: There are many ways to organize our thinking. Let's use the box method for this example. It is important to notice that there are two different factor pairs for $-3$3 as it is a negative number.

Do:

$-3$3 has the factor pairs $1$1 & $-3$3 and $-1$1 & $3$3. Let's try the first pair first:

  $x$x $1$1
$x$x $x^2$x2 $x$x
$-3$3 $-3x$3x $-3$3

Unfortunately, we get a sum of $-2x$2x, not just $2x$2x like we wanted. We will have to try the other pair, $-1$1 and $3$3.

  $x$x $-1$1
$x$x $x^2$x2 $-x$x
$3$3 $3x$3x $-3$3

This gives us the correct sum of $2x$2x, so the two numbers are $-1$1 and $3$3, making the factored form $\left(x-1\right)\left(x+3\right)$(x1)(x+3).

 

Practice questions

Question 6

Factor $x^2-2x-8$x22x8.

Question 7

Factor $44-15x+x^2$4415x+x2.

Question 8

Factor the expression completely by first taking out a common factor:

$3x^2-21x-54$3x221x54

 

Factoring trinomials with a leading coefficient not equal to 1

So far, the trinomials we've dealt with have had a coefficient of $1$1 on the $x^2$x2 term or if the coefficient is not $1$1, then we could factor out that coefficient from the whole quadratic to give a trinomial with a leading coefficient of $1$1.

eg. $2x^2-4x+6=2\left(x^2-2x+3\right)$2x24x+6=2(x22x+3).

 

But how do we factor quadratics that can't be simplified in this way? First let's have a look at how this type of quadratic distributes from a product of two binomials:

Now we are more familiar with these quadratics let's have a look at one of many methods you can use below.

Split method

The Split Method uses a similar idea we had with quadratics with leading coefficient of $1$1 where we think about sums and products, but slightly different.

Procedure

For a quadratic in the form $ax^2+bx+c$ax2+bx+c:

1. Find two numbers, $m$m and $n$n, that have a SUM of $b$b and a PRODUCT of $ac$ac (not just $c$c).

2. Rewrite the quadratic by splitting the linear term as $ax^2+mx+nx+c$ax2+mx+nx+c.

3. Use grouping in pairs (as seen earlier in the chapter) to factor the four-termed expression.

 

Worked example

question 9

Factor $5x^2+11x-12$5x2+11x12 using the Split method.

Think: What two numbers have a product of $5\times\left(-12\right)=60$5×(12)=60 and a sum of $11$11? What do we know about their signs?

Do:

We want the sum of of $m$m & $n$n to be $11$11, and the product to be $5\times\left(-12\right)=-60$5×(12)=60

By listing factors, we find the two numbers to be $-4$4 & $15$15, so we need split $11x$11x into $-4x+15x$4x+15x:

$5x^2+11x-12$5x2+11x12 $=$= $5x^2-4x+15x-12$5x24x+15x12
  $=$= $x\left(5x-4\right)+3\left(5x-4\right)$x(5x4)+3(5x4)
  $=$= $\left(5x-4\right)\left(x+3\right)$(5x4)(x+3)

Reflect: As always, we can distribute $\left(5x-4\right)\left(x+3\right)$(5x4)(x+3) to double check that we get back the question of $5x^2+11x-12$5x2+11x12. Once we get lots of practice, we may be able to factor expressions like this just by looking at them!

 

Practice questions

Question 10

Factor the trinomial:

$7x^2-75x+50$7x275x+50

Question 11

Factor the following trinomial:

$6x^2+13x+6$6x2+13x+6

 

Outcomes

CC.2.2.HS.D.2

Write expressions in equivalent forms to solve problems.

A1.1.1.5.2

Factor algebraic expressions, including difference of squares and trinomials. Note: Trinomials are limited to the form ax2 + bx + c where a is equal to 1 after factoring out all monomial factors.

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