HomeHome Metamath Proof Explorer < Previous   Next >
Related theorems
Unicode version

Theorem ringdir 8099
Description: Distributive law for the multiplication operation of a ring. (Contributed by Steve Rodriguez, 9-Sep-2007.)
Hypotheses
Ref Expression
ringdi.1 |- G = (1st` R)
ringdi.2 |- H = (2nd` R)
ringdi.3 |- X = ran G
Assertion
Ref Expression
ringdir |- ((R e. Ring /\ (A e. X /\ B e. X /\ C e. X)) -> ((AGB)HC) = ((AHC)G(BHC)))

Proof of Theorem ringdir
StepHypRef Expression
1 opreq1 3959 . . . . . . 7 |- (x = A -> (xGy) = (AGy))
21opreq1d 3966 . . . . . 6 |- (x = A -> ((xGy)Hz) = ((AGy)Hz))
3 opreq1 3959 . . . . . . 7 |- (x = A -> (xHz) = (AHz))
43opreq1d 3966 . . . . . 6 |- (x = A -> ((xHz)G(yHz)) = ((AHz)G(yHz)))
52, 4eqeq12d 1486 . . . . 5 |- (x = A -> (((xGy)Hz) = ((xHz)G(yHz)) <-> ((AGy)Hz) = ((AHz)G(yHz))))
6 opreq2 3960 . . . . . . 7 |- (y = B -> (AGy) = (AGB))
76opreq1d 3966 . . . . . 6 |- (y = B -> ((AGy)Hz) = ((AGB)Hz))
8 opreq1 3959 . . . . . . 7 |- (y = B -> (yHz) = (BHz))
98opreq2d 3967 . . . . . 6 |- (y = B -> ((AHz)G(yHz)) = ((AHz)G(BHz)))
107, 9eqeq12d 1486 . . . . 5 |- (y = B -> (((AGy)Hz) = ((AHz)G(yHz)) <-> ((AGB)Hz) = ((AHz)G(BHz))))
11 opreq2 3960 . . . . . 6 |- (z = C -> ((AGB)Hz) = ((AGB)HC))
12 opreq2 3960 . . . . . . 7 |- (z = C -> (AHz) = (AHC))
13 opreq2 3960 . . . . . . 7 |- (z = C -> (BHz) = (BHC))
1412, 13opreq12d 3969 . . . . . 6 |- (z = C -> ((AHz)G(BHz)) = ((AHC)G(BHC)))
1511, 14eqeq12d 1486 . . . . 5 |- (z = C -> (((AGB)Hz) = ((AHz)G(BHz)) <-> ((AGB)HC) = ((AHC)G(BHC))))
165, 10, 15rcla43v 1878 . . . 4 |- ((A e. X /\ B e. X /\ C e. X) -> (A.x e. X A.y e. X A.z e. X ((xGy)Hz) = ((xHz)G(yHz)) -> ((AGB)HC) = ((AHC)G(BHC))))
17 3simp3 789 . . . . . . 7 |- ((((xHy)Hz) = (xH(yHz)) /\ (xH(yGz)) = ((xHy)G(xHz)) /\ ((xGy)Hz) = ((xHz)G(yHz))) -> ((xGy)Hz) = ((xHz)G(yHz)))
1817r19.20si 1703 . . . . . 6 |- (A.z e. X (((xHy)Hz) = (xH(yHz)) /\ (xH(yGz)) = ((xHy)G(xHz)) /\ ((xGy)Hz) = ((xHz)G(yHz))) -> A.z e. X ((xGy)Hz) = ((xHz)G(yHz)))
1918r19.20si 1703 . . . . 5 |- (A.y e. X A.z e. X (((xHy)Hz) = (xH(yHz)) /\ (xH(yGz)) = ((xHy)G(xHz)) /\ ((xGy)Hz) = ((xHz)G(yHz))) -> A.y e. X A.z e. X ((xGy)Hz) = ((xHz)G(yHz)))
2019r19.20si 1703 . . . 4 |- (A.x e. X A.y e. X A.z e. X (((xHy)Hz) = (xH(yHz)) /\ (xH(yGz)) = ((xHy)G(xHz)) /\ ((xGy)Hz) = ((xHz)G(yHz))) -> A.x e. X A.y e. X A.z e. X ((xGy)Hz) = ((xHz)G(yHz)))
2116, 20syl5 21 . . 3 |- ((A e. X /\ B e. X /\ C e. X) -> (A.x e. X A.y e. X A.z e. X (((xHy)Hz) = (xH(yHz)) /\ (xH(yGz)) = ((xHy)G(xHz)) /\ ((xGy)Hz) = ((xHz)G(yHz))) -> ((AGB)HC) = ((AHC)G(BHC))))
22 ringdi.1 . . . . . 6 |- G = (1st` R)
23 ringdi.2 . . . . . 6 |- H = (2nd` R)
24 ringdi.3 . . . . . 6 |- X = ran G
2522, 23, 24ringi 8094 . . . . 5 |- (R e. Ring -> ((G e. Abel /\ H:(X X. X)-->X) /\ (A.x e. X A.y e. X A.z e. X (((xHy)Hz) = (xH(yHz)) /\ (xH(yGz)) = ((xHy)G(xHz)) /\ ((xGy)Hz) = ((xHz)G(yHz))) /\ E.x e. X A.y e. X ((yHx) = y /\ (xHy) = y))))
2625pm3.27d 325 . . . 4 |- (R e. Ring -> (A.x e. X A.y e. X A.z e. X (((xHy)Hz) = (xH(yHz)) /\ (xH(yGz)) = ((xHy)G(xHz)) /\ ((xGy)Hz) = ((xHz)G(yHz))) /\ E.x e. X A.y e. X ((yHx) = y /\ (xHy) = y)))
2726pm3.26d 321 . . 3 |- (R e. Ring -> A.x e. X A.y e. X A.z e. X (((xHy)Hz) = (xH(yHz)) /\ (xH(yGz)) = ((xHy)G(xHz)) /\ ((xGy)Hz) = ((xHz)G(yHz))))
2821, 27syl5 21 . 2 |- ((A e. X /\ B e. X /\ C e. X) -> (R e. Ring -> ((AGB)HC) = ((AHC)G(BHC))))
2928impcom 351 1 |- ((R e. Ring /\ (A e. X /\ B e. X /\ C e. X)) -> ((AGB)HC) = ((AHC)G(BHC)))
Colors of variables: wff set class
Syntax hints:   -> wi 3   /\ wa 223   /\ w3a 774   = wceq 954   e. wcel 956  A.wral 1642  E.wrex 1643   X. cxp 3163  ran crn 3166  -->wf 3173  ` cfv 3177  (class class class)co 3954  1stc1st 4067  2ndc2nd 4068  Abelcabl 8050  Ringcring 8091
This theorem is referenced by:  ring2 8101
This theorem was proved from axioms:  ax-1 4  ax-2 5  ax-3 6  ax-mp 7  ax-7 960  ax-gen 961  ax-8 962  ax-9 963  ax-10 964  ax-11 965  ax-12 966  ax-13 967  ax-14 968  ax-17 969  ax-4 971  ax-5o 973  ax-6o 976  ax-9o 1121  ax-10o 1138  ax-16 1208  ax-11o 1216  ax-ext 1457  ax-sep 2698  ax-nul 2705  ax-pow 2737  ax-pr 2774  ax-un 2861
This theorem depends on definitions:  df-bi 147  df-or 224  df-an 225  df-3an 776  df-ex 979  df-sb 1170  df-eu 1380  df-mo 1381  df-clab 1462  df-cleq 1467  df-clel 1470  df-ne 1584  df-ral 1646  df-rex 1647  df-v 1808  df-dif 2045  df-un 2046  df-in 2047  df-ss 2049  df-nul 2277  df-pw 2398  df-sn 2408  df-pr 2409  df-op 2412  df-uni 2499  df-br 2615  df-opab 2662  df-id 2830  df-xp 3179  df-rel 3180  df-cnv 3181  df-co 3182  df-dm 3183  df-rn 3184  df-res 3185  df-ima 3186  df-fun 3187  df-fn 3188  df-f 3189  df-fv 3193  df-opr 3956  df-1st 4069  df-2nd 4070  df-ring 8092
Copyright terms: Public domain