Nuprl Lemma : is-dag-map

∀[T,S:Type]. ∀[f:T ⟶ S]. ∀[g:LabeledGraph(T)]. is-dag(lg-map(f;g)) supposing is-dag(g)

Proof

Definitions occuring in Statement : lg-map: lg-map(f;g), is-dag: is-dag(g), labeled-graph: LabeledGraph(T), uimplies: b supposing a, uall: ∀[x:A]. B[x], function: x:A ⟶ B[x], universe: Type
Definitions unfolded in proof : uall: ∀[x:A]. B[x], member: t ∈ T, uimplies: b supposing a, is-dag: is-dag(g), all: ∀x:A. B[x], int_seg: {i..j^-}, lelt: i ≤ j < k, and: P ∧ Q, decidable: Dec(P), or: P ∨ Q, satisfiable_int_formula: satisfiable_int_formula(fmla), exists: ∃x:A. B[x], false: False, implies: P ⇒ Q, not: ¬A, top: Top, prop: ℙ, le: A ≤ B, less_than: a < b, guard: {T}, iff: P ⇐⇒ Q, subtype_rel: A ⊆r B, nat: ℕ

Latex:
\mforall{}[T,S:Type]. \mforall{}[f:T {}\mrightarrow{} S]. \mforall{}[g:LabeledGraph(T)]. is-dag(lg-map(f;g)) supposing is-dag(g) Date html generated: 2016_05_17-AM-10_12_35 Last ObjectModification: 2016_01_18-AM-00_21_47 Theory : process-model Home Index