Proof of Nuprl Lemma : polymorphic-choice-sq

Step * 1 1 1 1 of Lemma polymorphic-choice-sq

1. a : Base
2. b : Base
3. c : a = b ∈ (⋂A:Type. (A ⟶ A ⟶ A))
4. a ~ λx.if a x is lambda then λy.x otherwise ⊥

⊢ if a 0 1=0 then tt else ff ∈ (a ~ λx.if a x is lambda then λy.x otherwise ⊥) ∨ (a ~ λx,y. y)

BY
{ RWO "-1<" 0 }

1
1. a : Base
2. b : Base
3. c : a = b ∈ (⋂A:Type. (A ⟶ A ⟶ A))
4. a ~ λx.if a x is lambda then λy.x otherwise ⊥
⊢ if a 0 1=0 then tt else ff ∈ (a ~ a) ∨ (a ~ λx,y. y)

Latex:

Latex:
1. a : Base 2. b : Base 3. c : a = b 4. a \msim{} \mlambda{}x.if a x is lambda then \mlambda{}y.x otherwise \mbot{} \mvdash{} if a 0 1=0 then tt else ff \mmember{} (a \msim{} \mlambda{}x.if a x is lambda then \mlambda{}y.x otherwise \mbot{}) \mvee{} (a \msim{} \mlambda{}x,y. y) By Latex: RWO "-1<" 0 Home Index