Proof of Nuprl Lemma : pseudo-positive-is-positive

Step * 1 2 of Lemma pseudo-positive-is-positive

1. x : ℝ
2. pseudo-positive(x)

3. ∃n:ℕ. (¬(((λi.0) n) = ((λi.if (i =_z 0) then 0 if 4 <z |x| i then |x| i else 0 fi ) n) ∈ ℤ))

⊢ r0 < x
BY
{ (Reduce -1 THEN D -1 THEN (SplitOnHypITE -1 THEN Auto) THEN SplitOnHypITE -2 THEN Auto) }

1
.....truecase.....
1. x : ℝ
2. pseudo-positive(x)
3. n : ℕ
4. ¬(0 = (|x| n) ∈ ℤ)
5. ¬(n = 0 ∈ ℤ)
6. 4 < |x| n
⊢ r0 < x

Latex:

Latex:
1. x : \mBbbR{} 2. pseudo-positive(x) 3. \mexists{}n:\mBbbN{}. (\mneg{}(((\mlambda{}i.0) n) = ((\mlambda{}i.if (i =\msubz{} 0) then 0 if 4 <z |x| i then |x| i else 0 fi ) n))) \mvdash{} r0 < x By Latex: (Reduce -1 THEN D -1 THEN (SplitOnHypITE -1 THEN Auto) THEN SplitOnHypITE -2 THEN Auto) Home Index