Metamath Proof Explorer

Theorem imdistand

Description: Distribution of implication with conjunction (deduction form). (Contributed by NM, 27-Aug-2004)

Ref Expression
Hypothesis imdistand.1 
|- ( ph -> ( ps -> ( ch -> th ) ) )
Assertion imdistand 
|- ( ph -> ( ( ps /\ ch ) -> ( ps /\ th ) ) )

Proof

Step Hyp Ref Expression
1 imdistand.1 
 |-  ( ph -> ( ps -> ( ch -> th ) ) )
2 imdistan 
 |-  ( ( ps -> ( ch -> th ) ) <-> ( ( ps /\ ch ) -> ( ps /\ th ) ) )
3 1 2 sylib 
 |-  ( ph -> ( ( ps /\ ch ) -> ( ps /\ th ) ) )