Nuprl Lemma : lifting2-loc

Nuprl Lemma : lifting2-loc_wf

∀[A,B,C:Type]. ∀[f:Id ⟶ A ⟶ B ⟶ C]. ∀[loc:Id]. ∀[abag:bag(A)]. ∀[bbag:bag(B)].
(lifting2-loc(f;loc;abag;bbag) ∈ bag(C))

Proof

Definitions occuring in Statement : lifting2-loc: lifting2-loc(f;loc;abag;bbag), Id: Id, uall: ∀[x:A]. B[x], member: t ∈ T, function: x:A ⟶ B[x], universe: Type, bag: bag(T)
Definitions unfolded in proof : uall: ∀[x:A]. B[x], member: t ∈ T, lifting2-loc: lifting2-loc(f;loc;abag;bbag), nat: ℕ, le: A ≤ B, and: P ∧ Q, less_than': less_than'(a;b), false: False, not: ¬A, implies: P ⇒ Q, prop: ℙ, int_seg: {i..j^-}, uimplies: b supposing a, guard: {T}, lelt: i ≤ j < k, all: ∀x:A. B[x], decidable: Dec(P), or: P ∨ Q, satisfiable_int_formula: satisfiable_int_formula(fmla), exists: ∃x:A. B[x], top: Top, sq_type: SQType(T), select: L[n], cons: [a / b], subtract: n - m, funtype: funtype(n;A;T), eq_int: (i =_z j), ifthenelse: if b then t else f fi , bfalse: ff

Latex:
\mforall{}[A,B,C:Type]. \mforall{}[f:Id {}\mrightarrow{} A {}\mrightarrow{} B {}\mrightarrow{} C]. \mforall{}[loc:Id]. \mforall{}[abag:bag(A)]. \mforall{}[bbag:bag(B)]. (lifting2-loc(f;loc;abag;bbag) \mmember{} bag(C)) Date html generated: 2016_05_17-AM-09_14_59 Last ObjectModification: 2016_01_17-PM-11_15_02 Theory : classrel!lemmas Home Index