Metamath Proof Explorer

Theorem tgcgrcomlr

Description: Congruence commutes on both sides. (Contributed by Thierry Arnoux, 23-Mar-2019)

Ref Expression
Hypotheses tkgeom.p 
|- P = ( Base ` G )
tkgeom.d 
|- .- = ( dist ` G )
tkgeom.i 
|- I = ( Itv ` G )
tkgeom.g 
|- ( ph -> G e. TarskiG )
tgcgrcomlr.a 
|- ( ph -> A e. P )
tgcgrcomlr.b 
|- ( ph -> B e. P )
tgcgrcomlr.c 
|- ( ph -> C e. P )
tgcgrcomlr.d 
|- ( ph -> D e. P )
tgcgrcomlr.6 
|- ( ph -> ( A .- B ) = ( C .- D ) )
Assertion tgcgrcomlr 
|- ( ph -> ( B .- A ) = ( D .- C ) )

Proof

Step Hyp Ref Expression
1 tkgeom.p 
 |-  P = ( Base ` G )
2 tkgeom.d 
 |-  .- = ( dist ` G )
3 tkgeom.i 
 |-  I = ( Itv ` G )
4 tkgeom.g 
 |-  ( ph -> G e. TarskiG )
5 tgcgrcomlr.a 
 |-  ( ph -> A e. P )
6 tgcgrcomlr.b 
 |-  ( ph -> B e. P )
7 tgcgrcomlr.c 
 |-  ( ph -> C e. P )
8 tgcgrcomlr.d 
 |-  ( ph -> D e. P )
9 tgcgrcomlr.6 
 |-  ( ph -> ( A .- B ) = ( C .- D ) )
10 1 2 3 4 5 6 axtgcgrrflx 
 |-  ( ph -> ( A .- B ) = ( B .- A ) )
11 1 2 3 4 7 8 axtgcgrrflx 
 |-  ( ph -> ( C .- D ) = ( D .- C ) )
12 9 10 11 3eqtr3d 
 |-  ( ph -> ( B .- A ) = ( D .- C ) )