Metamath Proof Explorer

Theorem nf5d

Description: Deduce that x is not free in ps in a context. (Contributed by Mario Carneiro, 24-Sep-2016)

Ref Expression
Hypotheses nf5d.1 
|- F/ x ph
nf5d.2 
|- ( ph -> ( ps -> A. x ps ) )
Assertion nf5d 
|- ( ph -> F/ x ps )

Proof

Step Hyp Ref Expression
1 nf5d.1 
 |-  F/ x ph
2 nf5d.2 
 |-  ( ph -> ( ps -> A. x ps ) )
3 1 2 alrimi 
 |-  ( ph -> A. x ( ps -> A. x ps ) )
4 nf5-1 
 |-  ( A. x ( ps -> A. x ps ) -> F/ x ps )
5 3 4 syl 
 |-  ( ph -> F/ x ps )