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Theorem ertr 4264
Description: An equivalence relation is transitive.
Hypotheses
Ref Expression
ertr.1 |- A e. V
ertr.2 |- B e. V
ertr.3 |- C e. V
ertr.4 |- Er R
Assertion
Ref Expression
ertr |- ((ARB /\ BRC) -> ARC)

Proof of Theorem ertr
StepHypRef Expression
1 ertr.1 . 2 |- A e. V
2 ertr.2 . 2 |- B e. V
3 ertr.3 . 2 |- C e. V
4 breq1 2617 . . . . 5 |- (x = A -> (xRy <-> ARy))
54anbi1d 616 . . . 4 |- (x = A -> ((xRy /\ yRz) <-> (ARy /\ yRz)))
6 breq1 2617 . . . 4 |- (x = A -> (xRz <-> ARz))
75, 6imbi12d 625 . . 3 |- (x = A -> (((xRy /\ yRz) -> xRz) <-> ((ARy /\ yRz) -> ARz)))
8 breq2 2618 . . . . 5 |- (y = B -> (ARy <-> ARB))
9 breq1 2617 . . . . 5 |- (y = B -> (yRz <-> BRz))
108, 9anbi12d 627 . . . 4 |- (y = B -> ((ARy /\ yRz) <-> (ARB /\ BRz)))
1110imbi1d 612 . . 3 |- (y = B -> (((ARy /\ yRz) -> ARz) <-> ((ARB /\ BRz) -> ARz)))
12 breq2 2618 . . . . 5 |- (z = C -> (BRz <-> BRC))
1312anbi2d 615 . . . 4 |- (z = C -> ((ARB /\ BRz) <-> (ARB /\ BRC)))
14 breq2 2618 . . . 4 |- (z = C -> (ARz <-> ARC))
1513, 14imbi12d 625 . . 3 |- (z = C -> (((ARB /\ BRz) -> ARz) <-> ((ARB /\ BRC) -> ARC)))
167, 11, 15syl3an9b 889 . 2 |- ((x = A /\ y = B /\ z = C) -> (((xRy /\ yRz) -> xRz) <-> ((ARB /\ BRC) -> ARC)))
17 ertr.4 . . . . . . 7 |- Er R
18 dfer2 4252 . . . . . . 7 |- (Er R <-> A.xA.yA.z((xRy -> yRx) /\ ((xRy /\ yRz) -> xRz)))
1917, 18mpbi 189 . . . . . 6 |- A.xA.yA.z((xRy -> yRx) /\ ((xRy /\ yRz) -> xRz))
2019a4i 980 . . . . 5 |- A.yA.z((xRy -> yRx) /\ ((xRy /\ yRz) -> xRz))
2120a4i 980 . . . 4 |- A.z((xRy -> yRx) /\ ((xRy /\ yRz) -> xRz))
2221a4i 980 . . 3 |- ((xRy -> yRx) /\ ((xRy /\ yRz) -> xRz))
2322pm3.27i 324 . 2 |- ((xRy /\ yRz) -> xRz)
241, 2, 3, 16, 23vtocl3 1840 1 |- ((ARB /\ BRC) -> ARC)
Colors of variables: wff set class
Syntax hints:   -> wi 3   /\ wa 223  A.wal 952   = wceq 954   e. wcel 956  Vcvv 1807   class class class wbr 2614  Er wer 4248
This theorem is referenced by:  erref 4265  erthi 4271  erdisj 4276  entrt 4401
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-pow 2737  ax-pr 2774
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-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-br 2615  df-opab 2662  df-cnv 3181  df-co 3182  df-er 4251
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