I'd like to define a function with two, higher inductive typed, arguments in Cubical mode. I am using the cubical
package as my "prelude" library.
I first define a quotient type for integers as a HIT:
{-# OPTIONS --cubical #-}
module _ where
open import Data.Nat renaming (_+_ to _+̂_)
open import Cubical.Core.Prelude
data ℤ : Set where
_-_ : (x : ℕ) → (y : ℕ) → ℤ
quot : ∀ {x y x′ y′} → (x ℕ+ y′) ≡ (x′ ℕ+ y) → (x - y) ≡ (x′ - y′)
I can then define a unary function using pattern matching:
_+1 : ℤ → ℤ
(x - y) +1 = suc x - y
quot {x} {y} prf i +1 = quot {suc x} {y} (cong suc prf) i
So far, so good. But what if I want to define a binary function, such as addition?
First, let's get the boring arithmetic proofs out of the way:
import Data.Nat.Properties
open Data.Nat.Properties.SemiringSolver
using (prove; solve; _:=_; con; var; _:+_; _:*_; :-_; _:-_)
open import Relation.Binary.PropositionalEquality renaming (refl to prefl; _≡_ to _=̂_) using ()
fromPropEq : ∀ {ℓ A} {x y : A} → _=̂_ {ℓ} {A} x y → x ≡ y
fromPropEq prefl = refl
open import Function using (_$_)
reorder : ∀ x y a b → (x +̂ a) +̂ (y +̂ b) ≡ (x +̂ y) +̂ (a +̂ b)
reorder x y a b = fromPropEq $ solve 4 (λ x y a b → (x :+ a) :+ (y :+ b) := (x :+ y) :+ (a :+ b)) prefl x y a b
inner-lemma : ∀ x y a b a′ b′ → a +̂ b′ ≡ a′ +̂ b → (x +̂ a) +̂ (y +̂ b′) ≡ (x +̂ a′) +̂ (y +̂ b)
inner-lemma x y a b a′ b′ prf = begin
(x +̂ a) +̂ (y +̂ b′) ≡⟨ reorder x y a b′ ⟩
(x +̂ y) +̂ (a +̂ b′) ≡⟨ cong (x +̂ y +̂_) prf ⟩
(x +̂ y) +̂ (a′ +̂ b) ≡⟨ sym (reorder x y a′ b) ⟩
(x +̂ a′) +̂ (y +̂ b) ∎
outer-lemma : ∀ x y x′ y′ a b → x +̂ y′ ≡ x′ +̂ y → (x +̂ a) +̂ (y′ +̂ b) ≡ (x′ +̂ a) +̂ (y +̂ b)
outer-lemma x y x′ y′ a b prf = begin
(x +̂ a) +̂ (y′ +̂ b) ≡⟨ reorder x y′ a b ⟩
(x +̂ y′) +̂ (a +̂ b) ≡⟨ cong (_+̂ (a +̂ b)) prf ⟩
(x′ +̂ y) +̂ (a +̂ b) ≡⟨ sym (reorder x′ y a b) ⟩
(x′ +̂ a) +̂ (y +̂ b) ∎
I now try to define _+_
using pattern matching, but I have no idea how to handle the "points in the center of the face", so to speak:
_+_ : ℤ → ℤ → ℤ
(x - y) + (a - b) = (x +̂ a) - (y +̂ b)
(x - y) + quot {a} {b} {a′} {b′} eq₂ j = quot {x +̂ a} {y +̂ b} {x +̂ a′} {y +̂ b′} (inner-lemma x y a b a′ b′ eq₂) j
quot {x} {y} {x′} {y′} eq₁ i + (a - b) = quot {x +̂ a} {y +̂ b} {x′ +̂ a} {y′ +̂ b} (outer-lemma x y x′ y′ a b eq₁) i
quot {x} {y} {x′} {y′} eq₁ i + quot {a} {b} {a′} {b′} eq₂ j = ?
So basically what I have is the following situation:
p Xᵢ
X ---------+---> X′
p₀ i
A X+A --------\---> X′+A
| | |
q| q₀ | | qᵢ
| | |
Aⱼ + j+ [+] <--- This is where we want to get to!
| | |
V V p₁ |
A′ X+A′ -------/---> X′+A′
i
with
X = (x - y)
X′ = (x′ - y′)
A = (a - b)
A′ = (a′ - b′)
p : X ≡ X′
p = quot eq₁
q : A ≡ A′
q = quot eq₂
p₀ : X + A ≡ X′ + A
p₀ = quot (outer-lemma x y x′ y′ a b eq₁)
p₁ : X + A′ ≡ X′ + A′
p₁ = quot (outer-lemma x y x′ y′ a′ b′ eq₁)
q₀ : X + A ≡ X + A′
q₀ = quot (inner-lemma x y a b a′ b′ eq₂)
q₁ : X′ + A ≡ X′ + A′
q₁ = quot (inner-lemma x′ y′ a b a′ b′ eq₂)
I am using this construction to push out q₀
horizontally by i
:
slidingLid : ∀ {ℓ} {A : Set ℓ} {a b c d} (p₀ : a ≡ b) (p₁ : c ≡ d) (q : a ≡ c) → ∀ i → p₀ i ≡ p₁ i
slidingLid p₀ p₁ q i j = comp (λ _ → A)
(λ{ k (i = i0) → q j
; k (j = i0) → p₀ (i ∧ k)
; k (j = i1) → p₁ (i ∧ k)
})
(inc (q j))
and using this, my attempt at +
is as follows:
quot {x} {y} {x′} {y′} eq₁ i + quot {a} {b} {a′} {b′} eq₂ j = Xᵢ+Aⱼ
where
X = (x - y)
X′ = (x′ - y′)
A = (a - b)
A′ = (a′ - b′)
p : X ≡ X′
p = quot eq₁
q : A ≡ A′
q = quot eq₂
p₀ : X + A ≡ X′ + A
p₀ = quot (outer-lemma x y x′ y′ a b eq₁)
p₁ : X + A′ ≡ X′ + A′
p₁ = quot (outer-lemma x y x′ y′ a′ b′ eq₁)
q₀ : X + A ≡ X + A′
q₀ = quot (inner-lemma x y a b a′ b′ eq₂)
qᵢ : ∀ i → p₀ i ≡ p₁ i
qᵢ = slidingLid p₀ p₁ q₀
q₁ : X′ + A ≡ X′ + A′
q₁ = quot (inner-lemma x′ y′ a b a′ b′ eq₂)
Xᵢ+Aⱼ = qᵢ i j
But this fails with the following type error:
quot (inner-lemma x′ y′ a b a′ b′ eq₂) j != hcomp (λ { i ((~ i1 ∨ ~ j ∨ j) = i1) → transp (λ j₁ → ℤ) i ((λ { i₁ (i1 = i0) → q₀ eq₁ i1 eq₂ j j ; i₁ (j = i0) → p₀ eq₁ i1 eq₂ j (i1 ∧ i₁) ; i₁ (j = i1) → p₁ eq₁ i1 eq₂ j (i1 ∧ i₁) }) (i ∨ i0) _) }) (transp (λ _ → ℤ) i0 (ouc (inc (q₀ eq₁ i1 eq₂ j j)))) of type ℤ
One hint to what might be going wrong is that while these three sides degenerate nicely:
top : ∀ i → qᵢ i i0 ≡ p i + q i0
top i = refl
bottom : ∀ i → qᵢ i i1 ≡ p i + q i1
bottom i = refl
left : qᵢ i0 ≡ q₀
left = refl
the rightmost side doesn't:
right : qᵢ i1 ≡ q₁
right = ? -- refl fails here
I guess because qᵢ
is pulled from the left side, so there could still be a hole between the right side and the pushed-all-the-way qᵢ
, i.e. this would still be possible, with a hole at O
between qᵢ i1
and q₁
:
p₀
X+A ------------> X′+A
| /|
q₀ | / | q₁
| | |
| | O|
| \ |
V p₁ \|
X+A′ -----------> X′+A′
and intiutively it makes sense, because q₁
is some algebraic statement about natural numbers, and qᵢ i1
is a continuously deformed version of a different algebraic statement about different natural numbers, so there still has to be some kind of connection made between the two; but I don't know where to start on making that connection (i.e. constructing explicitly the 2-path between qᵢ i1
and q₁
)
qᵢ
andq₁
look very much alike, I mistook it for some kind of typo at first when I saw them in the expressionqᵢ i1 ≡ q₁
– Merle