Metamath Proof Explorer

Theorem natrcl

Description: Reverse closure for a natural transformation. (Contributed by Mario Carneiro, 6-Jan-2017)

Ref Expression
Hypothesis natrcl.1 𝑁 = ( 𝐶 Nat 𝐷 )
Assertion natrcl ( 𝐴 ∈ ( 𝐹 𝑁 𝐺 ) → ( 𝐹 ∈ ( 𝐶 Func 𝐷 ) ∧ 𝐺 ∈ ( 𝐶 Func 𝐷 ) ) )

Proof

Step Hyp Ref Expression
1 natrcl.1 𝑁 = ( 𝐶 Nat 𝐷 )
2 eqid ( Base ‘ 𝐶 ) = ( Base ‘ 𝐶 )
3 eqid ( Hom ‘ 𝐶 ) = ( Hom ‘ 𝐶 )
4 eqid ( Hom ‘ 𝐷 ) = ( Hom ‘ 𝐷 )
5 eqid ( comp ‘ 𝐷 ) = ( comp ‘ 𝐷 )
6 1 2 3 4 5 natfval 𝑁 = ( 𝑓 ∈ ( 𝐶 Func 𝐷 ) , 𝑔 ∈ ( 𝐶 Func 𝐷 ) ↦ ( 1st𝑓 ) / 𝑟 ( 1st𝑔 ) / 𝑠 { 𝑎X 𝑥 ∈ ( Base ‘ 𝐶 ) ( ( 𝑟𝑥 ) ( Hom ‘ 𝐷 ) ( 𝑠𝑥 ) ) ∣ ∀ 𝑥 ∈ ( Base ‘ 𝐶 ) ∀ 𝑦 ∈ ( Base ‘ 𝐶 ) ∀ ∈ ( 𝑥 ( Hom ‘ 𝐶 ) 𝑦 ) ( ( 𝑎𝑦 ) ( ⟨ ( 𝑟𝑥 ) , ( 𝑟𝑦 ) ⟩ ( comp ‘ 𝐷 ) ( 𝑠𝑦 ) ) ( ( 𝑥 ( 2nd𝑓 ) 𝑦 ) ‘ ) ) = ( ( ( 𝑥 ( 2nd𝑔 ) 𝑦 ) ‘ ) ( ⟨ ( 𝑟𝑥 ) , ( 𝑠𝑥 ) ⟩ ( comp ‘ 𝐷 ) ( 𝑠𝑦 ) ) ( 𝑎𝑥 ) ) } )
7 6 elmpocl ( 𝐴 ∈ ( 𝐹 𝑁 𝐺 ) → ( 𝐹 ∈ ( 𝐶 Func 𝐷 ) ∧ 𝐺 ∈ ( 𝐶 Func 𝐷 ) ) )