IB Maths AI HLFurther Functions & GraphsPaper 2Amplitude, period, phase shift~8 min read
Sinusoidal Functions & Graphs
Both y = a sin(b(x − c)) + d and y = a cos(b(x − c)) + d draw waves with the same four parameters: amplitude, period, principal axis and phase shift. Identify those four and the sketch follows.
📘 What you need to know
Standard form: y = a sin(b(x − c)) + d or y = a cos(b(x − c)) + d.
Amplitude = |a|: the vertical distance from the principal axis to a maximum.
Period = 360°/b (degrees) or 2π/b (radians): the horizontal length of one full cycle.
Principal axis: y = d, the horizontal line midway between max and min.
Max = a + d (when a > 0), min = −a + d; for negative a the two swap.
Phase shift = c: horizontal translation of the standard sine or cosine wave. y-intercept: substitute x = 0 directly.
Set the GDC to degrees or radians to match the question before plotting.
The standard sinusoidal form
Every sine or cosine question on AI HL can be read off the standard form. The four parameters do four distinct jobs: a stretches the wave vertically (amplitude), b compresses it horizontally (period), c slides it horizontally (phase shift), and d lifts the whole curve up to its principal axis. Sine starts on the principal axis and rises; cosine starts at the maximum — otherwise their geometry is identical.
Amplitude, period and principal axis
Read a, b, d straight from the equation. The amplitude is |a|. The period is 360°/b (or 2π/b in radians) — smaller b gives a longer wave, larger b a shorter one. The principal axis is the horizontal line y = d midway between the maximum y = a + d and the minimum y = −a + d (using positive a by convention).
Sine starts on the principal axis and rises; cosine starts at the maximum. Both share amplitude, period and principal axis.
Sinusoidal function at a glancey = a sin(b(x − c)) + d or y = a cos(b(x − c)) + damplitude |a| · period 360°b or 2πb · principal axis y = d · phase shift c
Phase shift, y-intercept and sketching
The phase shift c tells you how far the standard wave has been pushed sideways: positive c shifts right, negative c shifts left. The y-intercept is whatever pops out when you substitute x = 0 — for a sine that’s −a sin(bc) + d; for a cosine, a cos(bc) + d. In practice the easiest approach on a calculator paper is to type the function into the GDC and let the analyse-graph menu hand back the maxima, minima, intercepts and zeros.
Check the angle mode before pressing any keys: if the equation uses degrees (e.g. 30(t − 3)°) but the GDC is in radians, everything reads wrong.
🧠Recipe — sketching a sinusoidal function
Read off the four parameters: a, b, c, d.
Amplitude |a|, period 360°/b (or 2π/b), principal axisy = d.
Max = a + d, min = −a + d (swap if a is negative).
y-intercept: substitute x = 0 into the equation.
Plot the principal axis, mark max and min lines lightly, then draw the wave starting from the appropriate point (axis for sine, max for cosine) shifted by c.
Worked examples
WE 1
Amplitude, period, principal axis
For y = 4 sin(3x°) + 2, state the amplitude, period and equation of the principal axis.
read a, b, da = 4, b = 3, d = 2amplitude |a|amplitude = 4period 360°/bperiod = 360°/3 = 120°principal axis y = damplitude 4 · period 120° · axis y = 2
WE 2
Maximum and minimum values
Find the maximum and minimum values of y = 5 cos(x/2) − 1.
read a, da = 5, d = −1max = a + d (cos = 1)max = 5 + (−1) = 4min = −a + d (cos = −1)min = −5 + (−1) = −6max 4 · min −6
WE 3
y-intercept of a phase-shifted sine
Find the y-intercept of y = 3 sin(2(x° − 30°)) + 1, to 2 d.p.
substitute x = 0y = 3 sin(2(−30°)) + 1= 3 sin(−60°) + 1= 3(−√3/2) + 1= 1 − 3√3/2≈ −1.60(0, −1.60)use the GDC in degree mode to evaluate directly.
WE 4
Negative amplitude coefficient
For y = −2 cos(4x°) + 3, state the amplitude, period, principal axis, maximum and minimum.
read a, b, da = −2, b = 4, d = 3amplitude = |a| = 2period = 360°/4 = 90°principal axis y = 3max when −2 cos = +2 i.e. cos = −1max = 2 + 3 = 5min when cos = 1: −2 + 3 = 1amplitude 2 · period 90° · axis y = 3 · max 5 · min 1negative a flips which value of cos gives the max.
WE 5
Sketch over a domain
For y = 2 sin(x°) + 3 over 0° ≤ x ≤ 360°, state the key features and the coordinates of the maxima, minima and axis crossings.
parametersa = 2, b = 1, d = 3; amp 2, period 360°, axis y = 3y-intercepty(0) = 2(0) + 3 = 3 ⇒ (0°, 3)max at x = 90°: y = 2 + 3 = 5axis crossing at x = 180°: y = 3min at x = 270°: y = −2 + 3 = 1end of cycle at x = 360°: y = 3(0, 3), (90, 5), (180, 3), (270, 1), (360, 3)
WE 6
Applied: tide depth
The depth of water in a harbour after t hours is D(t) = 4 sin(30(t − 3)°) + 8 for 0 ≤ t ≤ 24. (a) State the maximum and minimum depths. (b) State the period. (c) Find the first time at which D = 10.
(a) max = a + d, min = −a + dmax = 4 + 8 = 12 mmin = −4 + 8 = 4 m(b) period = 360°/b= 360°/30 = 12 hours(c) set D = 104 sin(30(t − 3)°) = 2 ⇒ sin(30(t − 3)°) = 0.530(t − 3) = 30° ⇒ t − 3 = 1 ⇒ t = 4max 12 m · min 4 m · period 12 h · D = 10 first at t = 4 h
💡 Top tips
Amplitude is positive: take |a|, never just a.
Period and frequency are reciprocals: b ↑ means period ↓.
Principal axis is the constant d; the curve oscillates symmetrically about it.
For applied questions (tides, day-length, temperature), max = peak, min = trough, principal axis = average.
Confirm angle mode (degrees vs radians) before any GDC work.
âš Common mistakes
Using a instead of |a| as amplitude when a is negative.
Swapping period and frequency — period is 360°/b, not b/360°.
Reading c with the wrong sign: b(x − c) has the shift as written; b(x + c) shifts the other way.
Calculator in the wrong angle mode: a question in degrees evaluated in radians gives nonsense.
Forgetting to swap max and min when a is negative.
Chapter complete — you now have the full toolkit of polynomial, exponential and trigonometric graphs for AI HL Paper 1 & 2 sketches.
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