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Find the Exact Value of Trigonometric Ratios
This lesson shows how to find exact values of trigonometric ratios for special angles like 30, 45, 60, and 90 degrees, using right triangle ratios, the unit circle, and reference angles, with worked examples in degrees and radians.
The Two Special Right Triangles
Every exact value for \(30^\circ\), \(45^\circ\), and \(60^\circ\) comes from just two triangles whose side lengths follow a fixed ratio no matter how big or small the triangle is drawn.
From the \(30^\circ\)-\(60^\circ\)-\(90^\circ\) triangle (sides \(1\), \(\sqrt{3}\), \(2\)) and the \(45^\circ\)-\(45^\circ\)-\(90^\circ\) triangle (sides \(1\), \(1\), \(\sqrt{2}\)), you can read off every ratio directly using \(\)sine\( = \frac{\)opposite\(}{\)hypotenuse\(}\), \(\)cosine\( = \frac{\)adjacent\(}{\)hypotenuse\(}\), and \(\)tangent\( = \frac{\)opposite\(}{\)adjacent\(}\).
Exact Trig Values for Common Angles
These six values are worth memorizing, since almost every exact-value problem builds on them.
| Angle | \(\sin\) | \(\cos\) | \(\tan\) |
|---|---|---|---|
| \(0^\circ\) | \(0\) | \(1\) | \(0\) |
| \(30^\circ\) | \(\frac{1}{2}\) | \(\frac{\sqrt{3}}{2}\) | \(\frac{\sqrt{3}}{3}\) |
| \(45^\circ\) | \(\frac{\sqrt{2}}{2}\) | \(\frac{\sqrt{2}}{2}\) | \(1\) |
| \(60^\circ\) | \(\frac{\sqrt{3}}{2}\) | \(\frac{1}{2}\) | \(\sqrt{3}\) |
| \(90^\circ\) | \(1\) | \(0\) | undefined |
Using the Unit Circle and the ASTC Rule
The special-triangle values only cover the first quadrant. To find exact values for angles beyond \(90^\circ\), think of each angle placed on the unit circle, where the coordinates of the point on the circle are \((\cos\theta, \sin\theta)\). Every angle in quadrants two, three, and four is just one of the special angles reflected across an axis, so the number never changes, only the sign might.
To keep track of which ratios are positive in each quadrant, use the ASTC rule: All ratios are positive in quadrant one, only Sine in quadrant two, only Tangent in quadrant three, and only Cosine in quadrant four. Pair this with the reference angle, the acute angle between the terminal side and the x-axis, and you can find the exact value of any angle in degrees.
Worked Example: Find the Exact Value of \(\sin(150^\circ)\)
Step 1: Find the reference angle. Since \(150^\circ\) is in quadrant two, the reference angle is \(180^\circ - 150^\circ = 30^\circ\).
Step 2: Look up the exact value for the reference angle: \(\sin(30^\circ) = \frac{1}{2}\).
Step 3: Apply the sign from the ASTC rule. Quadrant two keeps sine positive, so \(\sin(150^\circ) = \frac{1}{2}\).
Worked Example: Find the Exact Value of \(\cos(225^\circ)\)
Step 1: \(225^\circ\) lies in quadrant three, so the reference angle is \(225^\circ - 180^\circ = 45^\circ\).
Step 2: \(\cos(45^\circ) = \frac{\sqrt{2}}{2}\).
Step 3: In quadrant three, cosine is negative, so \(\cos(225^\circ) = -\frac{\sqrt{2}}{2}\).
Visualizing Exact Values on the Sine Curve
The exact values you calculate at each special angle are exactly the points where the graph of \(y = \sin(x)\) crosses simple, recognizable heights. The marked points below show \(30^\circ\), \(45^\circ\), \(60^\circ\), and \(90^\circ\) (in radians) landing precisely on \(\frac{1}{2}\), \(\frac{\sqrt{2}}{2}\), \(\frac{\sqrt{3}}{2}\), and \(1\).
Exact Values in Radians
Exact-value problems are just as common in radian measure, where \(30^\circ = \frac{\pi}{6}\), \(45^\circ = \frac{\pi}{4}\), and \(60^\circ = \frac{\pi}{3}\). The same table and the same ASTC logic apply once you know how to work with trigonometric ratios of angles in radians, so it helps to be comfortable converting between the two units before tackling radian-based problems.
Quick Tips for Success
- Memorize the special-triangle ratios first; every other exact value is built from them.
- Always find the reference angle before worrying about the sign.
- Rationalize denominators where needed, for example write \(\frac{\sqrt{3}}{3}\) instead of \(\frac{1}{\sqrt{3}}\).
- Remember that tangent is undefined wherever cosine equals zero, such as at \(90^\circ\) and \(270^\circ\).