import Mathlib.MeasureTheory.Order.Lattice import Mathlib.Probability.Kernel.IonescuTulcea.Traj import Mathlib.Probability.Process.FiniteDimensionalLaws import Mathlib.Probability.HasCondDistrib import Mathlib.MeasureTheory.Measure.ProbabilityMeasure import Mathlib.Probability.Independence.Basic import Mathlib.Probability.Independence.Conditional import Mathlib.MeasureTheory.Measure.SubFinite import Mathlib.Probability.Kernel.RadonNikodym import Mathlib.Analysis.Normed.Ring.Basic import Mathlib.MeasureTheory.Constructions.BorelSpace.Basic import Mathlib.Order.CompletePartialOrder import Mathlib.Probability.Martingale.BorelCantelli import Mathlib.Probability.Independence.Integration import Mathlib.Probability.Kernel.Representation import Mathlib.Probability.Kernel.Composition.MapComap import Mathlib.Probability.IdentDistrib import Mathlib.Probability.Independence.InfinitePi import Mathlib.MeasureTheory.Function.FactorsThrough /-! # Standalone extraction for `Bandits.ArrayModel.hist_add_one` Definitions are copied verbatim; theorem proofs are replaced by `sorry`. Auto-generated by Referee. -/ set_option quotPrecheck false -- Namespace stubs (so later `open`s resolve). namespace Finset end Finset namespace MeasureTheory end MeasureTheory namespace ProbabilityTheory end ProbabilityTheory namespace ENNReal end ENNReal namespace Learning end Learning namespace Bandits end Bandits namespace Bandits.ArrayModel end Bandits.ArrayModel -- ═══ ForMathlib.MeasureTheory.Order.Lattice ═══ section open Finset variable {α δ : Type*} [MeasurableSpace δ] [SemilatticeInf α] {m : MeasurableSpace α} [MeasurableInf₂ α] attribute [to_dual existing] MeasurableInf₂ end -- ═══ SequentialLearning.Algorithm ═══ section open MeasureTheory ProbabilityTheory Filter Real Finset open scoped ENNReal NNReal namespace Learning variable {𝓐 𝓨 Ω : Type*} {m𝓐 : MeasurableSpace 𝓐} {m𝓨 : MeasurableSpace 𝓨} {mΩ : MeasurableSpace Ω} /-- A stochastic, sequential algorithm. -/ structure Algorithm (𝓐 𝓨 : Type*) [MeasurableSpace 𝓐] [MeasurableSpace 𝓨] where /-- Policy or sampling rule: distribution of the next action. -/ policy : (n : ℕ) → Kernel (Iic n → 𝓐 × 𝓨) 𝓐 /-- The policy is a Markov kernel. -/ [h_policy : ∀ n, IsMarkovKernel (policy n)] /-- Distribution of the first action. -/ p0 : Measure 𝓐 /-- The first action distribution is a probability measure. -/ [hp0 : IsProbabilityMeasure p0] instance (alg : Algorithm 𝓐 𝓨) (n : ℕ) : IsMarkovKernel (alg.policy n) := alg.h_policy n instance (alg : Algorithm 𝓐 𝓨) : IsProbabilityMeasure alg.p0 := alg.hp0 end Learning end -- ═══ SequentialLearning.FiniteActions ═══ section open MeasureTheory Finset Learning namespace Learning variable {𝓐 R Ω : Type*} {m𝓐 : MeasurableSpace 𝓐} {mR : MeasurableSpace R} {mΩ : MeasurableSpace Ω} [DecidableEq 𝓐] {alg : Algorithm 𝓐 R} {P : Measure Ω} [IsProbabilityMeasure P] {A : ℕ → Ω → 𝓐} {R' : ℕ → Ω → R} {a : 𝓐} {m n t : ℕ} {ω : Ω} section PullCount /-- Number of pulls of arm `a` up to (and including) time `n`. This is the number of entries in `h` in which the arm is `a`. -/ noncomputable def pullCount' (n : ℕ) (h : Iic n → 𝓐 × R) (a : 𝓐) := #{s | (h s).1 = a} end PullCount end Learning end -- ═══ Online.Bandit.ArrayProbSpace ═══ section open MeasureTheory ProbabilityTheory Filter Real Finset Learning open scoped ENNReal NNReal namespace Bandits variable {𝓐 R : Type*} {m𝓐 : MeasurableSpace 𝓐} {mR : MeasurableSpace R} section MeasureSpace namespace ArrayModel open unitInterval section ProbabilitySpace variable (𝓐 R) in /-- Probability space for the array model of stochastic bandits. -/ def probSpace : Type _ := (ℕ → I) × (ℕ → 𝓐 → R) variable [Nonempty 𝓐] [StandardBorelSpace 𝓐] /-- The initial action is the image of a uniform random variable by this function. -/ noncomputable def initAlgFunction (alg : Algorithm 𝓐 R) : I → 𝓐 := (Measure.exists_measurable_map_eq alg.p0).choose /-- The next action is the image of the history and a uniform random variable by this function. -/ noncomputable def algFunction (alg : Algorithm 𝓐 R) (n : ℕ) : (Iic n → 𝓐 × R) → I → 𝓐 := (Kernel.exists_measurable_map_eq_unitInterval (alg.policy n)).choose end ProbabilitySpace variable [Nonempty 𝓐] [StandardBorelSpace 𝓐] section HistoryActionReward /-- History of actions and rewards up to time `n` in the array model. -/ noncomputable def hist [DecidableEq 𝓐] (alg : Algorithm 𝓐 R) (ω : probSpace 𝓐 R) : (n : ℕ) → Iic n → 𝓐 × R | 0 => fun _ ↦ (initAlgFunction alg (ω.1 0), ω.2 0 (initAlgFunction alg (ω.1 0))) | n + 1 => let hn : Iic n → 𝓐 × R := hist alg ω n let a : 𝓐 := algFunction alg n hn (ω.1 (n + 1)) fun i ↦ if hin : i ≤ n then hn ⟨i, sorry⟩ else (a, ω.2 (pullCount' n hn a) a) lemma hist_add_one [DecidableEq 𝓐] (alg : Algorithm 𝓐 R) (ω : probSpace 𝓐 R) (n : ℕ) : let a : 𝓐 := algFunction alg n (hist alg ω n) (ω.1 (n + 1)) hist alg ω (n + 1) = fun (i : Iic (n + 1)) ↦ if hin : i ≤ n then hist alg ω n ⟨i, by simp [hin]⟩ else (a, ω.2 (pullCount' n (hist alg ω n) a) a) := sorry end HistoryActionReward variable [DecidableEq 𝓐] end ArrayModel end MeasureSpace end Bandits end