Metamath Proof Explorer

Theorem divdiv1d

Description: Division into a fraction. (Contributed by Mario Carneiro, 27-May-2016)

Ref Expression
Hypotheses div1d.1 
|- ( ph -> A e. CC )
divcld.2 
|- ( ph -> B e. CC )
divmuld.3 
|- ( ph -> C e. CC )
divmuld.4 
|- ( ph -> B =/= 0 )
divdiv23d.5 
|- ( ph -> C =/= 0 )
Assertion divdiv1d 
|- ( ph -> ( ( A / B ) / C ) = ( A / ( B x. C ) ) )

Proof

Step Hyp Ref Expression
1 div1d.1 
 |-  ( ph -> A e. CC )
2 divcld.2 
 |-  ( ph -> B e. CC )
3 divmuld.3 
 |-  ( ph -> C e. CC )
4 divmuld.4 
 |-  ( ph -> B =/= 0 )
5 divdiv23d.5 
 |-  ( ph -> C =/= 0 )
6 divdiv1 
 |-  ( ( A e. CC /\ ( B e. CC /\ B =/= 0 ) /\ ( C e. CC /\ C =/= 0 ) ) -> ( ( A / B ) / C ) = ( A / ( B x. C ) ) )
7 1 2 4 3 5 6 syl122anc 
 |-  ( ph -> ( ( A / B ) / C ) = ( A / ( B x. C ) ) )