IB Math AI HL & SL β€” May 2026 Topic Predictions | Sev7n
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πŸ“Š Mathematics: Applications & Interpretation (AI)

IB Math AI HL & SL
Topic Prediction Guide

Paper 1, Paper 2 & Paper 3 (HL) subtopic frequency analysis for IBDP May 2026. Statistics, modelling and technology β€” every subtopic mapped.

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4Years Analysed
5Topics Mapped
HL & SLBoth Levels
P1Β·P2Β·P3All Papers
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You are viewing: IB Math AI Higher Level (HL) All 3 papers shown. Paper 1 (calc, 2 hrs, short Q) + Paper 2 (calc, 2 hrs, extended Q) + Paper 3 (calc, 60 min, modelling). Weightings: P1=30% Β· P2=30% Β· P3=20% Β· IA=20%.
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Paper 1 β€” Short Response (Free Preview)
Duration: 2 hrs (HL) / 90 min (SL) | Marks: 110 (HL) / 80 (SL) | Weighting: 30% (HL) / 40% (SL) | Short questions only β€” no extended response | Calculator required throughout β€” GDC essential
πŸ“Š AI Paper 1 is exclusively short-response questions. Unlike AA, there is no Section A/B split β€” all questions are short. The GDC is used throughout. Statistics and probability carry the heaviest weighting across AI. Paper 1 tends to cover more topics more briefly; Paper 2 goes deeper on fewer topics.
IB MATH AI β€” PAPER 1 (SHORT RESPONSE, CALCULATOR) SUBTOPIC FREQUENCY | May 2021–2024 | SL & HL
Free preview: Topic 1 (Number & Algebra) + Topic 2 (Functions start) Β· Topics 3–5 + HL extras locked below
#TopicSubtopic M21M22M23M24 FreqAvg MarksHL only?May 2026
TOPIC 1: NUMBER & ALGEBRA β€” financial maths, sequences, applications
1.1Num & AlgFinancial mathematics β€” compound interest, depreciation, amortisation, annuities using GDC TVMβœ”βœ”βœ”βœ”48–12SL&HL⭐⭐⭐⭐⭐ CERTAIN
1.2Num & AlgSequences & series β€” arithmetic, geometric, sigma notation, applications and modellingβœ”βœ”βœ”βœ”46–10SL&HL⭐⭐⭐⭐
1.3Num & Alg (HL)Complex numbers β€” Cartesian form, Argand diagram (HL); used in modelling contexts HLβ€”βœ”βœ”β€”25–8HL⭐⭐⭐ HL
TOPIC 2: FUNCTIONS β€” modelling with functions, all calculator-based in AI
2.1FunctionsModelling β€” linear, quadratic, exponential, logistic, sinusoidal β€” fitting and interpretingβœ”βœ”βœ”βœ”410–16SL&HL⭐⭐⭐⭐⭐ CERTAIN
2.2FunctionsSinusoidal functions β€” A, B, C, D in y=A sin(Bx+C)+D; period, amplitude, applicationsβœ”βœ”βœ”β€”36–10SL&HL⭐⭐⭐⭐

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Paper 1 β€” Topics 3, 4, 5 + HL extras (Full Analysis)
Topics 1 (Number & Algebra) and 2.1–2.2 are shown above as free preview. Now showing the remaining sections.
#TopicSubtopic M21M22M23M24 FreqAvg MarksHL only?May 2026
TOPIC 2: FUNCTIONS (continued)
2.3Functions (HL)Piecewise models, logistic functions, log-log and semi-log linearisation, scaling data HLβœ”βœ”β€”βœ”36–10HL⭐⭐⭐⭐ HL
TOPIC 3: GEOMETRY & TRIGONOMETRY β€” applied and 3D contexts
3.1Geo & Trig3D geometry β€” volumes and surface areas of solids, right triangles in 3D, bearingsβœ”βœ”βœ”βœ”46–10SL&HL⭐⭐⭐⭐
3.2TrigonometrySine rule, cosine rule, area of triangle β€” applied problems, non-right trianglesβœ”βœ”βœ”β€”35–8SL&HL⭐⭐⭐⭐
3.3Voronoi (HL)Voronoi diagrams β€” nearest neighbour, constructing from perpendicular bisectors, applications HLβœ”βœ”βœ”βœ”48–14HL⭐⭐⭐⭐⭐ HL
TOPIC 4: STATISTICS & PROBABILITY β€” dominant topic in AI (heaviest weighting)
4.1StatisticsDescriptive statistics β€” mean, median, mode, standard deviation, IQR, box plots, cumulative frequencyβœ”βœ”βœ”βœ”48–14SL&HL⭐⭐⭐⭐⭐ CERTAIN
4.2StatisticsCorrelation & regression β€” Pearson r, Spearman rank, scatter plots, linear regression y=ax+b, interpolation/extrapolationβœ”βœ”βœ”βœ”48–12SL&HL⭐⭐⭐⭐⭐ CERTAIN
4.3ProbabilityProbability β€” basic rules, tree diagrams, Venn diagrams, conditional probability, independent eventsβœ”βœ”βœ”βœ”46–10SL&HL⭐⭐⭐⭐⭐
4.4DistributionsNormal distribution β€” P(a<X<b) with GDC, inverse normal, standardisation (z-scores)βœ”βœ”βœ”βœ”48–12SL&HL⭐⭐⭐⭐⭐ CERTAIN
4.5DistributionsBinomial distribution β€” P(X=k), P(X≀k) using GDC, mean = np, variance, applicationsβœ”βœ”βœ”βœ”46–10SL&HL⭐⭐⭐⭐⭐
4.6HypothesisHypothesis testing β€” chi-squared test (independence/goodness of fit), t-test, setting up Hβ‚€ and H₁, p-value interpretationβœ”βœ”βœ”βœ”48–14SL&HL⭐⭐⭐⭐⭐ CERTAIN
4.7Stats (HL)Spearman’s rank correlation β€” calculate, interpret, hypothesis test for correlation HLβœ”βœ”βœ”βœ”46–10HL⭐⭐⭐⭐⭐ HL
4.8Stats (HL)Markov chains β€” transition matrices, steady-state probabilities, long-term behaviour HLβœ”β€”βœ”βœ”38–12HL⭐⭐⭐⭐ HL
TOPIC 5: CALCULUS β€” basic calculus in applied/modelling contexts (AI is lighter on calculus than AA)
5.1CalculusDifferentiation β€” polynomials, tangents/normals, max/min, increasing/decreasing in contextβœ”βœ”βœ”βœ”46–10SL&HL⭐⭐⭐⭐
5.2CalculusIntegration β€” area under curve in context, definite integral with GDC, kinematics (distance from v(t))βœ”βœ”βœ”β€”35–8SL&HL⭐⭐⭐⭐
5.3Calculus (HL)Differential equations β€” modelling with DEs, slope fields, Euler’s method, separation of variables HLβœ”βœ”βœ”βœ”410–16HL⭐⭐⭐⭐⭐ HL
5.4Calculus (HL)Further calculus β€” L’HΓ΄pital’s rule, improper integrals, limits in modelling contexts HLβœ”β€”βœ”β€”26–10HL⭐⭐⭐ HL

Based on IB Math AI past papers May 2021–2024 | Calculator allowed throughout | Statistics & Probability = dominant topic | HL rows greyed in SL view

πŸ“Š AI Paper 1 mark allocation insight: Statistics and Probability consistently accounts for 40–50% of AI Paper 1 marks (across all sittings). Functions (modelling) 20–25%. Financial Maths 10–15%. Calculus 10–15%. Geometry/Trig 10–15%. HL students: Voronoi, DEs, Markov chains, and Spearman’s rank add 30–40 marks to the HL paper.

πŸ”΄ Top 5 subtopics β€” learn these first

  • Hypothesis testing β€” chi-squared + t-test. Appears in every paper. Know how to set up Hβ‚€, run GDC test, interpret p-value.
  • Normal distribution β€” P(a<X<b) and inverse normal. GDC essential. Every paper.
  • Regression & correlation β€” draw scatter plot, find line of best fit, calculate r, interpret. Every paper.
  • Financial mathematics β€” compound interest, TVM on GDC. Every paper.
  • Modelling with functions β€” exponential, logistic, sinusoidal. Every paper, often the extended question.

πŸ“Š AI Paper 1 exam technique

  • Every question allows GDC β€” master your calculator menus (Statistics, TVM, Solve)
  • Interpretation matters as much as calculation β€” “what does r = 0.92 mean?”
  • For hypothesis tests: always state Hβ‚€ and H₁ clearly, and conclude in context
  • For modelling: define variables, state the model, interpret the gradient/parameters
  • Short questions = quick marks β€” don’t overthink. If it’s long, you’re doing too much.
  • HL: Voronoi diagrams need accurate construction β€” practise with compass/ruler
πŸ“ˆ
Paper 2 β€” Extended Response Questions (Calculator)
Duration: 2 hrs (HL) / 90 min (SL) | Marks: 110 (HL) / 80 (SL) | Weighting: 30% (HL) / 40% (SL) | Extended response only β€” longer questions, multi-part, real-world contexts | Calculator required throughout
πŸ“ˆ AI Paper 2 goes deep on fewer topics. Extended questions require you to apply multiple concepts in a sustained real-world context (e.g. a full modelling investigation, or a complete statistical study). The final part of each question is typically challenging and tests synthesis. Interpretation of results in context is always assessed.

What dominates AI Paper 2

  • Modelling with functions β€” large extended questions fitting models to data, interpreting, extrapolating
  • Statistical investigation β€” complete hypothesis test from data to conclusion, regression analysis
  • Financial mathematics β€” multi-step loan, investment, depreciation calculations
  • Differential equations (HL) β€” modelling real scenarios; populations, cooling, spread of disease
  • Graph theory (HL) β€” minimum spanning trees, Chinese Postman, Travelling Salesman
  • Kinematics β€” velocity, acceleration, displacement in real context via calculus

Paper 2 exam technique

  • Read the context carefully β€” real-world setting defines what answers mean
  • Always state your model clearly before using it (define variables)
  • Show GDC working: write down the equation/test you ran before stating the answer
  • For stats: write Hβ‚€, run test, state p-value, compare to significance level, conclude in words
  • For modelling: interpret gradient, y-intercept, and parameters in the real-world context
  • If stuck on a part: use the answer given in the question and move forward β€” method marks available
IB MATH AI β€” PAPER 2 (EXTENDED RESPONSE, CALCULATOR) KEY TOPICS | May 2021–2024 | SL & HL
Extended multi-part questions | Real-world context always present | Interpretation = marks | SL: HL-only topics greyed
#TopicSubtopic / Context M21M22M23M24 FreqMarksMay 2026
STATISTICS β€” dominant in Paper 2 extended questions
4AStats ExtendedComplete statistical study β€” sample data, regression, correlation, hypothesis test + interpretation in contextβœ”βœ”βœ”βœ”420–30⭐⭐⭐⭐⭐ CERTAIN
4BProbabilityProbability extended β€” conditional probability, expected value, combined distributions in real contextβœ”βœ”βœ”β€”312–18⭐⭐⭐⭐
FUNCTIONS β€” modelling extended questions
2AModellingExtended modelling investigation β€” fit model to data, find parameters, predict, evaluate model appropriatenessβœ”βœ”βœ”βœ”420–28⭐⭐⭐⭐⭐ CERTAIN
NUMBER & ALGEBRA
1AFinancial MathsLoans, mortgages, investments β€” multi-step with TVM solver; find monthly payment, total interest, balanceβœ”βœ”βœ”βœ”412–18⭐⭐⭐⭐⭐
HL ONLY β€” ADDITIONAL TOPICS IN PAPER 2
HL.1Graph Theory (HL)Minimum spanning tree (Prim/Kruskal), Chinese Postman, Travelling Salesman β€” weighted graphs HLβœ”βœ”βœ”βœ”414–20⭐⭐⭐⭐⭐ HL
HL.2DEs & Modelling (HL)Differential equations in extended real-world context β€” population growth, cooling, spread of disease HLβœ”βœ”βœ”βœ”416–24⭐⭐⭐⭐⭐ HL
HL.3Advanced Stats (HL)Bivariate analysis β€” non-linear regression, log linearisation, residuals; Spearman test extended HLβœ”βœ”β€”βœ”312–18⭐⭐⭐⭐ HL
πŸ”’

Paper 3 is HL only

AI SL students sit Paper 1 and Paper 2 only. Paper 3 is exclusive to HL. Switch to HL to see Paper 3 guidance.

πŸ”¬
Paper 3 β€” Extended Modelling Problem (HL Only)
Duration: 60 minutes | Marks: 55 | Weighting: 20% (HL) | 1 extended modelling or problem-solving investigation | Calculator allowed | Real-world data provided β€” apply AI tools to analyse and model
πŸ”¬ AI Paper 3 is one big investigation β€” different from AA Paper 3. AI HL Paper 3 presents a single extended real-world investigation with data. You apply statistical or mathematical tools progressively through 10–15 sub-parts. It tests how well you can select appropriate methods, apply GDC tools, and interpret results meaningfully. It rewards students who can think like data analysts.

What AI Paper 3 tests

  • Apply statistical tools to a new real-world dataset
  • Select appropriate hypothesis tests and justify the choice
  • Fit regression models and evaluate goodness of fit
  • Interpret results in the context of the investigation
  • Build up a complete mathematical model across multiple sub-parts
  • Draw conclusions and identify limitations of the approach

AI Paper 3 strategy

  • 60 minutes for ~55 marks β€” about 65 seconds per mark
  • Read the investigation context carefully before answering anything
  • Each sub-part often uses the result of the previous part
  • If a calculation fails: state your method, use an approximation, move on
  • Interpretation marks = easy marks β€” always explain what your result means
  • GDC fluency is critical β€” you cannot afford to be slow with statistics menus
IB MATH AI HL β€” PAPER 3 THEME HISTORY | May 2021–2024 | HL ONLY
1 extended investigation per paper | Real data provided | Multiple methods applied progressively | Calculator required | Modelling + stats focus
YearInvestigation ThemePrimary Topics Key Methods UsedHL-Only ContentMay 2026 Signal
M21Environmental data analysis β€” temperature and species population modelling over timeStats, Modelling, CalculusRegression, hypothesis test, DE modelling, slope fieldsDEs + Advanced StatsEnvironmental/ecological data likely again
M22Sports/physical data investigation β€” fitting models to performance data, predicting outcomesStats, Functions, ModellingMultiple regression models, chi-squared, normal distribution, prediction intervalsAdvanced StatsReal-world data modelling very likely
M23Financial/economic modelling β€” loan repayment, investment growth, inflation modellingFinance, Functions, StatsTVM, DE for continuous growth, regression on economic data, Spearman correlationDEs + SpearmanFinancial modelling could recur
M24Medical/epidemiological data β€” disease spread, vaccination modelling, statistical analysis of health dataStats, DEs, ModellingSIR model using DEs + Euler, hypothesis tests on medical data, normal/binomialDEs + MarkovReal-world health/population data likely
πŸ”¬ May 2026 AI Paper 3 prediction: The theme rotates between environmental, social science, health and economic data. Any domain is possible. What is consistent: (1) a complete statistical analysis including hypothesis testing, (2) fitting at least one regression or growth model, (3) a calculus or DE component, (4) interpretation at every stage. Prepare: all hypothesis tests (chi-squared, t-test, Spearman), all regression types including non-linear, DEs (SIR model, Euler’s method), and graph theory (in case it appears in the investigation context).

About IB Math AI

IB Mathematics: Applications and Interpretation (AI) is the applied mathematics pathway. It emphasises statistics, modelling and the use of technology. AI HL is rigorous and demanding in its own way β€” the gap between AI SL and HL is significant, with HL adding graph theory, differential equations, Markov chains, Voronoi diagrams and advanced statistics.

Also studying Analysis & Approaches? See the AA prediction page β†’

AI HL vs SL β€” key differences

  • Paper 1: SL = 90 min / 80 marks / 40% | HL = 2 hrs / 110 marks / 30%
  • Paper 2: Same extended format, more marks at HL, HL-only questions
  • Paper 3: HL only β€” 60 min / 55 marks / 20%
  • HL-only content: Graph theory, Voronoi diagrams, Markov chains, DEs, Spearman test, complex numbers, log-log linearisation
  • Teaching hours: 150 hrs SL vs 240 hrs HL

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