138 lines
3.6 KiB
Plaintext
138 lines
3.6 KiB
Plaintext
/- Exercises 8
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-
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- Avigad, Jeremy. ‘Theorem Proving in Lean’, n.d.
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-/
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-- Exercise 1
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--
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-- Open a namespace `Hidden` to avoid naming conflicts, and use the equation
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-- compiler to define addition, multiplication, and exponentiation on the
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-- natural numbers. Then use the equation compiler to derive some of their basic
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-- properties.
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namespace ex1
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def add : Nat → Nat → Nat
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| m, Nat.zero => m
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| m, Nat.succ n => Nat.succ (add m n)
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def mul : Nat → Nat → Nat
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| _, Nat.zero => 0
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| m, Nat.succ n => add m (mul m n)
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def exp : Nat → Nat → Nat
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| _, Nat.zero => 1
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| m, Nat.succ n => mul m (exp m n)
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end ex1
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-- Exercise 2
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--
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-- Similarly, use the equation compiler to define some basic operations on lists
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-- (like the reverse function) and prove theorems about lists by induction (such
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-- as the fact that `reverse (reverse xs) = xs` for any list `xs`).
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namespace ex2
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variable {α : Type _}
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def reverse : List α → List α
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| [] => []
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| (head :: tail) => reverse tail ++ [head]
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-- Proof of `reverse (reverse xs) = xs` shown in previous exercise.
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end ex2
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-- Exercise 3
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--
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-- Define your own function to carry out course-of-value recursion on the
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-- natural numbers. Similarly, see if you can figure out how to define
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-- `WellFounded.fix` on your own.
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namespace ex3
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def below {motive : Nat → Type} : Nat → Type
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| Nat.zero => PUnit
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| Nat.succ n => PProd (PProd (motive n) (@below motive n)) (PUnit : Type)
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-- TODO: Sort out how to write `brecOn` and `WellFounded.fix`.
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end ex3
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-- Exercise 4
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--
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-- Following the examples in Section Dependent Pattern Matching, define a
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-- function that will append two vectors. This is tricky; you will have to
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-- define an auxiliary function.
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namespace ex4
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inductive Vector (α : Type u) : Nat → Type u
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| nil : Vector α 0
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| cons : α → {n : Nat} → Vector α n → Vector α (n + 1)
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namespace Vector
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-- TODO: Sort out how to write `append`.
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end Vector
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end ex4
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-- Exercise 5
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--
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-- Consider the following type of arithmetic expressions. The idea is that
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-- `var n` is a variable, `vₙ`, and `const n` is the constant whose value is
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-- `n`.
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namespace ex5
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inductive Expr where
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| const : Nat → Expr
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| var : Nat → Expr
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| plus : Expr → Expr → Expr
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| times : Expr → Expr → Expr
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deriving Repr
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open Expr
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def sampleExpr : Expr :=
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plus (times (var 0) (const 7)) (times (const 2) (var 1))
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-- Here `sampleExpr` represents `(v₀ * 7) + (2 * v₁)`. Write a function that
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-- evaluates such an expression, evaluating each `var n` to `v n`.
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def eval (v : Nat → Nat) : Expr → Nat
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| const n => sorry
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| var n => v n
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| plus e₁ e₂ => sorry
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| times e₁ e₂ => sorry
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def sampleVal : Nat → Nat
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| 0 => 5
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| 1 => 6
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| _ => 0
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-- Try it out. You should get 47 here.
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-- #eval eval sampleVal sampleExpr
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-- Implement "constant fusion," a procedure that simplifies subterms like
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-- `5 + 7` to `12`. Using the auxiliary function `simpConst`, define a function
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-- "fuse": to simplify a plus or a times, first simplify the arguments
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-- recursively, and then apply `simpConst` to try to simplify the result.
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def simpConst : Expr → Expr
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| plus (const n₁) (const n₂) => const (n₁ + n₂)
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| times (const n₁) (const n₂) => const (n₁ * n₂)
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| e => e
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def fuse : Expr → Expr := sorry
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theorem simpConst_eq (v : Nat → Nat)
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: ∀ e : Expr, eval v (simpConst e) = eval v e :=
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sorry
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theorem fuse_eq (v : Nat → Nat)
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: ∀ e : Expr, eval v (fuse e) = eval v e :=
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sorry
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-- The last two theorems show that the definitions preserve the value.
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end ex5
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