Nuprl Lemma : rmaximum-lub

∀n,m:ℤ. ∀x:{n..m + 1^-} ⟶ ℝ. ∀r:ℝ. (∀k:{n..m + 1^-}. (x[k] ≤ r)) ⇒ (rmaximum(n;m;i.x[i]) ≤ r) supposing n ≤ m

Proof

Definitions occuring in Statement : rmaximum: rmaximum(n;m;k.x[k]), rleq: x ≤ y, real: ℝ, int_seg: {i..j^-}, uimplies: b supposing a, so_apply: x[s], le: A ≤ B, all: ∀x:A. B[x], implies: P ⇒ Q, function: x:A ⟶ B[x], add: n + m, natural_number: $n, int: ℤ
Definitions unfolded in proof : rmaximum: rmaximum(n;m;k.x[k]), all: ∀x:A. B[x], uimplies: b supposing a, member: t ∈ T, implies: P ⇒ Q, uall: ∀[x:A]. B[x], nat: ℕ, false: False, ge: i ≥ j , not: ¬A, satisfiable_int_formula: satisfiable_int_formula(fmla), exists: ∃x:A. B[x], and: P ∧ Q, prop: ℙ, rleq: x ≤ y, rnonneg: rnonneg(x), le: A ≤ B, bool: 𝔹, unit: Unit, it: ⋅, btrue: tt, uiff: uiff(P;Q), ifthenelse: if b then t else f fi , rev_uimplies: rev_uimplies(P;Q), so_apply: x[s], int_seg: {i..j^-}, lelt: i ≤ j < k, decidable: Dec(P), or: P ∨ Q, rge: x ≥ y, guard: {T}, bfalse: ff, sq_type: SQType(T), bnot: ¬_bb, assert: ↑b, rev_implies: P ⇐ Q, iff: P ⇐⇒ Q, less_than: a < b, squash: ↓T, cand: A c∧ B, req_int_terms: t1 ≡ t2, subtype_rel: A ⊆r B, subtract: n - m, less_than': less_than'(a;b), true: True

Latex:
\mforall{}n,m:\mBbbZ{}. \mforall{}x:\{n..m + 1\msupminus{}\} {}\mrightarrow{} \mBbbR{}. \mforall{}r:\mBbbR{}. (\mforall{}k:\{n..m + 1\msupminus{}\}. (x[k] \mleq{} r)) {}\mRightarrow{} (rmaximum(n;m;i.x[i]) \mleq{} r) supposing n \mleq{} m Date html generated: 2020_05_20-AM-11_14_25 Last ObjectModification: 2020_03_19-PM-05_56_48 Theory : reals Home Index