27.05 Trigonometric equations (Extended)
Graphical solutions to trigonometric equations
The graphical solution to trigonometric equations requires that both sides of the equation be considered as separate functions. These functions are then plotted and the intersection points between the two functions are the solutions to the equation. The simpler equations can be solved in either degrees or radians if one of the functions is a constant value or both sides of the equation involve a trigonometric function. However, remember, if there is a trigonometric function and another type of function, the trigonometric function will need to be considered in radians to ensure equality of axis scales.
Worked examples
Example 1
Find all the solutions to the equation $\sin\left(x-60^\circ\right)=1$sin(x−60°)=1 over the domain of $(-360,360).$(−360,360).
Think: Graphically speaking, this is the same as finding the $x$x-values that correspond to the points of intersection of the curves $y=\sin\left(x-60^\circ\right)$y=sin(x−60°) and $y=1$y=1. As we are working with a constant value for one of the functions we can work in degrees for this problem.
Do: Plotting both graphs:
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| $y=\sin\left(x-60^\circ\right)$y=sin(x−60°) (green) and $y=1$y=1 (blue). |
We can see in the region given by $\left(-360^\circ,360^\circ\right)$(−360°,360°) that there are two points where the two functions meet.
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| Points indicating where the two functions meet. |
Since we are fortunate enough to have gridlines, the $x$x-values for these points of intersection can be easily deduced. Each grid line is separated by $30^\circ$30°, which means that the solution to the equation $\sin\left(x-60^\circ\right)=1$sin(x−60°)=1 in the region $\left(-360^\circ,360^\circ\right)$(−360°,360°) is given by:
$x=-210^\circ,150^\circ$x=−210°,150°
We can only solve equations graphically if the curves are drawn accurately and to scale. You won't be expected to solve equations graphically if it requires drawing the curves by hand.
Practice question
Question 1
Consider the function $y=2\sin2x$y=2sin2x.
Draw the function $y=2\sin2x$y=2sin2x.
Loading Graph...State the other function you would draw in order to solve the equation $2\sin2x=1$2sin2x=1 graphically.
Draw the line $y=1$y=1 below.
Loading Graph...Hence, state all solutions to the equation $2\sin2x=1$2sin2x=1 over the domain $\left[-180^\circ,180^\circ\right]$[−180°,180°]. Give your answers in degrees separated by commas.
Solving trigonometric equations algebraically
The method for solving trigonometric equations is roughly the same. After any algebraic manipulation, you might need to undertake, use the positive value on the right-hand side of the equation to find the size of the related acute angle. Then, draw a quadrant (ASTC) diagram to locate the angles you require to make the equation true. Write down your solutions, ensuring that they are in the domain specified in the question.
Worked examples
Example 2
Solve $\tan\theta=\sqrt{3}$tanθ=√3 in the domain $0^\circ\le\theta\le360^\circ$0°≤θ≤360°.
Think: Let's first find the relative acute angle that satisfies this equation, and then use this angle to find the remaining solutions in the given domain.
Do: Using our knowledge of exact value triangles, we have that:
| $\tan\theta$tanθ | $=$= | $\sqrt{3}$√3 | (Given) |
| $\theta$θ | $=$= | $60^\circ$60° | (Using our knowledge of exact value triangles) |
So $\theta=60^\circ$θ=60° is our relative acute angle. We need $\tan\theta$tanθ to be positive, so our quadrant diagram below shows us that we need to find angles in the first and third quadrant:
Hence, the two solutions will be the acute relative angle we found, $60^\circ$60°, and the equivalent relative angle in the third quadrant, which is $180^\circ+60^\circ$180°+60°. So our solutions are:
| $\theta$θ | $=$= | $60^\circ,240^\circ$60°,240° |
Types of trigonometric equations
There are many variations on trigonometric equations you need to be comfortable with. In this set, we will consider five types of equations.
Type 1: equations involving exact values
If a question doesn't specify a need for your final answer to be rounded, this indicates that it involves an exact value solution!
Practice question
Question 2
Find the measure in degrees of the angles satisfying $8\cos\theta-4=0$8cosθ−4=0 for $0^\circ\le\theta\le360^\circ$0°≤θ≤360°.
Question 3
Find the measure of the angle satisfying $\cos\theta=\frac{1}{\sqrt{2}}$cosθ=1√2 for $0^\circ<\theta<90^\circ$0°<θ<90°.
Type 2: equations involving non-exact values
Make sure your answer is rounded in the way specified in the question. This could be to various levels of accuracy, such as nearest degree, nearest minute or a certain number of decimal places.
Practice question
Question 4
Solve $\sin\theta=0.9336$sinθ=0.9336
to the nearest degree for $0$0° ≤
Find the acute angle $\theta$θ that solves the equation.
Now find ALL solutions to $\theta$θ in the range 0 to 360°. (Write the solutions on the same line, separated by a comma.)
Type 3: equations involving boundary angles
Questions, where the value specified, is $0$0 or $\pm1$±1 land on what we can refer to as boundary angles. It might be easier for you to solve these questions by considering the sketch of the trigonometric function in question, rather than trying to use your calculator or a quadrant diagram. The exception to this is when $\tan x$tanx equals to $\pm1$±1, where it's more valuable to consider the exact value triangles to find a solution.
Practice question
Question 5
Consider the equation $\sin\theta=1$sinθ=1 in the domain $0^\circ\le\theta\le360^\circ$0°≤θ≤360°.
What is the solution of $\theta$θ in degrees?