When working with expressions that involve a variable, we can see how they were constructed by observing the order in which operations were applied to that variable.
We have seen this kind of thinking with simple equations already. For example, the expression $x+4$x+4 can be broken down into 'an unknown number plus four', where the unknown number is $x$x and the operation is '$+4$+4'.
In this lesson, we will look at how we can apply this concept to more complicated expressions and then use that to solve equations with those expressions.
Building expressions
Before we start breaking expressions down, we should first understand how they are built up.
Consider the operations 'multiply by $6$6' and 'add $9$9'.
If we apply these operations to some variable, we can build an expression:
Do we get the same expression if we apply the operations in a different order?
No.
Although these two expressions are built from the same operations, they are different because the operations were applied in a different order.
Notice that the 'multiply by $6$6' operation was only applied to $y$y in the first expression, while it was applied to $y+9$y+9 in the second.
When we apply operations to expressions, we need to apply that operation to the whole expression. We can represent this by placing a pair of brackets around the expression before applying an operation to it.
In other words, applying the operation 'multiply by $6$6' to the expression $y+9$y+9 gives us $6\left(y+9\right)$6(y+9). It will not give us $y+9\times6$y+9×6.
We could also re-write $6\left(y+9\right)$6(y+9) as $6y+6\times9=6y+54$6y+6×9=6y+54, by expanding the brackets.
Practice question
Question 1
The following operations are performed on $s$s.
| $-$−$7$7 | $\times$×$6$6 | |||
| $s$s |  |
$\editable{}$ | |
$\editable{}$ |
The value in the first blank will be:
$7-s$7−s
A$-7s$−7s
B$s-7$s−7
C$s+7$s+7
DThe value in the 2nd blank will be:
$\frac{s-7}{6}$s−76
A$6+s-7$6+s−7
B$6\left(s-7\right)$6(s−7)
C$6s-7$6s−7
D
Breaking down expressions
When breaking down expressions, our aim is to apply operations that will turn the expression into an isolated variable.
Returning to the expression $6\left(y+9\right)$6(y+9), we can see that applying the operations 'divide by $6$6' and 'subtract $9$9' will turn the expression back into an isolated variable:
Notice that when we built the expression $6\left(y+9\right)$6(y+9), we applied the operations:
- Add $9$9
- Multiply by $6$6
And when we broke the expression back down to $y$y, we applied the operations:
- Divide by $6$6
- Subtract $9$9
We can see that, when breaking down an expression, we can reverse the operations used to build the equation (and the order in which they are applied) to cancel out the operations applied to the variable.
In the images below, we can see that the operation 'divide by $6$6' cancels out the multiplication in the expression, then 'subtract $9$9' cancels out the addition.
The 'divide by $6$6' and 'multiply by $6$6' operations cancel each other out.
The 'subtract $9$9' and 'add $9$9' operations cancel each other out.
Notice again that the order in which we apply the operations is important. We can see in the image that the operations that wil cancel out must come one after the other. If this is not the case, we will get something like this:
When operations do not cancel or simplify, the expression becomes very complicated.
If we apply our reverse operations in the wrong order, our expression will get even more complicated!
Worked example
Example 1
Consider the expression $\frac{k}{9}-5$k9−5, built with the following operations:
What operations should we apply to break down the expression to isolate $k$k?
Think: What operations were applied to $k$k to build this expression and in what order? We want to apply the reverse of these operations to isolate $k$k.
Do: We can see from the image that the expression was built by applying the operations:
- Divide by $9$9
- Subtract $5$5
The reverse of these operations are 'multiply by $9$9' and 'add $5$5'. We want to apply these to the expression so that each pair of reverse operations will cancel out. This means that we will apply our reverse operations to the expression in the order:
- Add $5$5
- Multiply by $9$9
We can double check that these operations and their order are correct by applying them to the expression:
Since applying these operations isolated $k$k, these operations successfully broke down the expression.
Reflect: We can break down an expression by reversing the operations we applied when building that expression.
Solving equations
Now that we have a way to isolate variables in an expression, we can apply this method to solve equations that involve more than one step. We can do this since, as long as we apply an operation to both sides of the equation, expressions on either side of the equals sign will be equal in value.
Worked example
Example 2
Solve the equation $2\left(r-7\right)=4$2(r−7)=4.
Think: To solve the equation, we want to isolate $r$r. What operations can we apply to the expression $2\left(r-7\right)$2(r−7) so that we are left with just $r$r?
Do: We can see that the two operations applied to $r$r to build the expression were 'multiply by $2$2' and 'subtract $7$7'. But what order were they applied in?
Since there is a pair of brackets around $r-7$r−7 we know that the multiplication was applied after the subtraction.
To break the equation back down to just $r$r, we apply the reverse operations 'divide by $2$2' and 'add $7$7' in the order:
- Divide by $2$2
- Add $7$7
We can see that applying these operations to the left-hand side of the equation will isolate $r$r:
We can then solve the equation by applying these operations to the right-hand side of the equation as well:
Since we applied the same operations to both sides of the equation, the results after applying those operations will be equal. This means that the solution to the equation is:
$r=9$r=9
Reflect: We can break down an expression to just the variable by reversing the operations that were applied to build it. We can use this to solve equations by applying the reverse operations to both sides of the equation.
Practice questions
Question 2
Consider the equation $\frac{m+11}{2}=10$m+112=10
Which pair of operations will make $m$m the subject of the equation?
Step $1$1 Step $2$2 $\frac{m+11}{2}$m+112 $m+11$m+11 $m$m Divide by $2$2, then add $11$11
AMultiply by $11$11, then subtract $2$2
BMultiply by $2$2, then subtract $11$11
CSubtract $11$11, then multiply by $2$2
DApply these operations to the right-hand side of the equation as well.
Step $1$1 Step $2$2 $10$10 $\editable{}$ $\editable{}$ Using your answer from part (b), what value of $m$m will make the equation $\frac{m+11}{2}=10$m+112=10 true?
Question 3
Consider the equation $4\left(s-29\right)=4$4(s−29)=4.
Which of the following pairs of operations will make $s$s the subject of the equation?
Add $29$29, then divide by $4$4
ADivide by $4$4, then add $29$29
BAdd $4$4, the divide by $29$29
CSubtract $29$29, then multiply by $4$4
DApply these operations to the equation to find the solution.
While we can solve simple equations by reversing a single operation or just by observing a solution, more complicated equations require a more methodical method - algebra.
Working backwards
Before we start using algebra to solve equations we should first understand why it works. As we saw when solving simple equations, algebra can be used to isolate the variable in an equation by reversing the operation that had been applied to it.
We can use this same idea to solve harder equations by breaking them down into a series of one-step equations.
Exploration
Consider the equation $4x+7=31$4x+7=31.
To solve this equation, we want to isolate $x$x.
We can work backwards to isolate $x$x by considering the term that it is a part of, $4x$4x.
Since $31$31 is equal to $7$7 more than $4x$4x, we know that $4x$4x must be $7$7 less than $31$31.
Writing this out as a mathematical sentence, we get $4x=31-7$4x=31−7 which we can evaluate to get:
$4x=24$4x=24
This is now a one-step equation which we can solve by isolating $x$x.
What number can we multiply by $4$4 to get $24$24?
We can remember from our four times tables that $4\times6=24$4×6=24, so the solution must be:
$x=6$x=6
We can also double check our answer by substituting this solution back into our starting equation to see if makes the equation true.
Replacing $x$x with $6$6 in the equation gives us:
$4\times6+7=31$4×6+7=31
If we evaluate both sides of the equation, we can see that they both have a value of $31$31, so the equation is true and we have confirmed that $x=6$x=6 is the solution.
When working backwards, we think of each step as a 'fill in the blank' type question.
While this method isn't as applicable as using algebra, since it requires strong arithmetic to observe the value for each blank, it can be a faster method if our mental calculation skills are very good.
Using algebra to solve equations
When solving more difficult equations, we want to use algebra to isolate the variable by reversing the operations applied to it.
This is similar to working backwards, where we reversed the operations one at a time to isolate the variable except, instead of observing the value for simpler expressions, we are directly reversing the operations.
Consider the equation we solved above, $4x+7=31$4x+7=31.
To solve this equation with algebra, we notice that the expression on the left-hand side of the equation has been built by applying the operations 'multiply by $4$4' and 'add $7$7' to the variable.
To reverse these operations, we can apply the reverse operations 'subtract $7$7' and 'divide by $4$4' to both sides of the equation.
By applying these operations, we isolate $x$x and find the solution:
We knew that reversing the operations that were used to build the expression would isolate that variable, but how did we know what order to apply them in?
The order of reverse operations
One way to know what order to apply the reverse operations in is to consider the order in which the operations were applied to build the expression. This approach is explained in more detail when looking at breaking down expressions when using non-algebraic methods for solving two-step equations.
However, a faster way to find the solution is to apply the reverse operations according to the order of reverse operations.
What does this mean?
If we take another look at the equation $4x+7=31$4x+7=31, we can see that we should reverse the addition first since that will simplify the left-hand side to a single term, while reversing the multiplication first would result in expressions containing fractions which does not simplify the expression.
It is for this reason that we usually apply the reverse operations according to the steps:
- Start with addition and subtraction
- Then multiplication and division
- Repeat steps $1$1 and $2$2 for expressions inside brackets
We can see this in action with a more complicated equation, $7\left(y+6\right)-8=55$7(y+6)−8=55.
We can see that the operations used to build the expression on the left-hand side were 'multiply by $7$7', 'add $6$6' and 'subtract $8$8'.
This means that the reverse operations we want to apply to the equation will be 'divide by $7$7', 'subtract $6$6' and 'add $8$8'.
We can then apply these in the order of reverse operations:
- Add $8$8
- Divide by $7$7
- Subtract $6$6
Notice that we apply the reverse operation 'subtract $6$6' last since $y+6$y+6 is contained within a pair of brackets.
Applying these operations isolates $y$y on the left-hand side of the equation to give us the solution:
$y=3$y=3
When applying reverse operations to isolate a variable, we apply them according to the order of reverse operations:
- Addition and subtraction
- Multiplication and division
- Expressions inside brackets
Notice that this order is the reverse of the usual order of operations.
Reversing operations to quickly solve equations
Now that we know what operations to apply and in what order, we can solve equations quickly and accurately using algebra.
Worked examples
Example 3
Solve the equation $\frac{p}{9}+4=11$p9+4=11.
Think: We can see from the equation that the expression on the left-hand side was built by applying the operations 'divide by $9$9' and 'add $4$4' to the variable $p$p. We want to reverse these operations to isolate $p$p and find the solution.
Do: We know that the reverse operations we want to apply will be 'multiply by $9$9' and 'subtract $4$4'. Using the order of reverse operations, we know that we want to apply them in the order:
- Subtract $4$4
- Multiply by $9$9
Doing this gives us:
So the solution to the equation is:
$p=63$p=63
Example 4
Solve the equation $18=3\left(m-7\right)$18=3(m−7).
Think: We can see from the equation that the expression on the right-hand side was built by applying the operations 'multiply by $3$3' and 'subtract $7$7' to the variable $m$m. We want to reverse these operations to isolate $m$m and find the solution.
Do: We know that the reverse operations we want to apply will be 'divide by $3$3' and 'add $7$7'. Using the order of reverse operations, we know that we want to apply them in the order:
- Divide by $3$3
- Add $7$7
Noting that the subtraction we want to reverse is inside a pair of brackets.
Doing this gives us:
So the solution to the equation is:
$m=13$m=13
Reflect: When solving an equation using algebra, we first identify which operations were used to build the expression containing the variable, then we reverse those operations and apply them according to the order of reverse operations.
Notice that, in the second worked example, we wrote the solution as $m=13$m=13 even though the final step in our working out gave us $13=m$13=m. We can do this because the two equations are equivalent.
When writing an equation, swapping the left and right-hand sides of the equation does not change the solution.
Practice questions
Question 4
Consider the equation $5\left(n-7\right)=35$5(n−7)=35.
If we want to make $n$n the subject of the equation, what is the first step we should take?
Add $7$7 to both sides to find the value of $5n$5n.
AAdd $7$7 to only the left-hand side of the equation.
BDivide only the left-hand side of the equation by $5$5.
CDivide both sides by $5$5 to find the value of $n-7$n−7.
DWhat is the second step we should take to make $n$n the subject?
Multiply only the left-hand side of the equation by $5$5.
AMultiply both sides by $5$5 to find the value of $5\left(n-7\right)$5(n−7).
BAdd $7$7 to both sides to find the value of $n$n.
CAdd $7$7 to only the left-hand side of the equation.
DApply the steps found in parts (a) and (b) to find the solution to the equation.
Enter each line of working as an equation.
Question 5
Solve the equation $\frac{u+7}{2}=5$u+72=5.
Enter each line of working as an equation.
Question 6
Solve the equation $6=\frac{t}{5}-3$6=t5−3.
- Enter each line of working as an equation.