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Theorem lnolin 8411
Description: Basic linearity property of a linear operator.
Hypotheses
Ref Expression
lnoval.1 |- X = (Base` U)
lnoval.2 |- Y = (Base` W)
lnoval.3 |- G = (+v` U)
lnoval.4 |- H = (+v` W)
lnoval.5 |- R = (.s` U)
lnoval.6 |- S = (.s` W)
lnoval.7 |- L = (U LnOp W)
Assertion
Ref Expression
lnolin |- (((U e. NrmCVec /\ W e. NrmCVec /\ T e. L) /\ (A e. X /\ B e. CC /\ C e. X)) -> (T` (AG(BRC))) = ((T` A)H(BS(T` C))))

Proof of Theorem lnolin
StepHypRef Expression
1 opreq1 3974 . . . . . 6 |- (u = A -> (uG(vRw)) = (AG(vRw)))
21fveq2d 3734 . . . . 5 |- (u = A -> (T` (uG(vRw))) = (T` (AG(vRw))))
3 fveq2 3730 . . . . . 6 |- (u = A -> (T` u) = (T` A))
43opreq1d 3981 . . . . 5 |- (u = A -> ((T` u)H(vS(T` w))) = ((T` A)H(vS(T` w))))
52, 4eqeq12d 1492 . . . 4 |- (u = A -> ((T` (uG(vRw))) = ((T` u)H(vS(T` w))) <-> (T` (AG(vRw))) = ((T` A)H(vS(T` w)))))
6 opreq1 3974 . . . . . . 7 |- (v = B -> (vRw) = (BRw))
76opreq2d 3982 . . . . . 6 |- (v = B -> (AG(vRw)) = (AG(BRw)))
87fveq2d 3734 . . . . 5 |- (v = B -> (T` (AG(vRw))) = (T` (AG(BRw))))
9 opreq1 3974 . . . . . 6 |- (v = B -> (vS(T` w)) = (BS(T` w)))
109opreq2d 3982 . . . . 5 |- (v = B -> ((T` A)H(vS(T` w))) = ((T` A)H(BS(T` w))))
118, 10eqeq12d 1492 . . . 4 |- (v = B -> ((T` (AG(vRw))) = ((T` A)H(vS(T` w))) <-> (T` (AG(BRw))) = ((T` A)H(BS(T` w)))))
12 opreq2 3975 . . . . . . 7 |- (w = C -> (BRw) = (BRC))
1312opreq2d 3982 . . . . . 6 |- (w = C -> (AG(BRw)) = (AG(BRC)))
1413fveq2d 3734 . . . . 5 |- (w = C -> (T` (AG(BRw))) = (T` (AG(BRC))))
15 fveq2 3730 . . . . . . 7 |- (w = C -> (T` w) = (T` C))
1615opreq2d 3982 . . . . . 6 |- (w = C -> (BS(T` w)) = (BS(T` C)))
1716opreq2d 3982 . . . . 5 |- (w = C -> ((T` A)H(BS(T` w))) = ((T` A)H(BS(T` C))))
1814, 17eqeq12d 1492 . . . 4 |- (w = C -> ((T` (AG(BRw))) = ((T` A)H(BS(T` w))) <-> (T` (AG(BRC))) = ((T` A)H(BS(T` C)))))
195, 11, 18rcla43v 1885 . . 3 |- ((A e. X /\ B e. CC /\ C e. X) -> (A.u e. X A.v e. CC A.w e. X (T` (uG(vRw))) = ((T` u)H(vS(T` w))) -> (T` (AG(BRC))) = ((T` A)H(BS(T` C)))))
20 lnoval.1 . . . . . 6 |- X = (Base` U)
21 lnoval.2 . . . . . 6 |- Y = (Base` W)
22 lnoval.3 . . . . . 6 |- G = (+v` U)
23 lnoval.4 . . . . . 6 |- H = (+v` W)
24 lnoval.5 . . . . . 6 |- R = (.s` U)
25 lnoval.6 . . . . . 6 |- S = (.s` W)
26 lnoval.7 . . . . . 6 |- L = (U LnOp W)
2720, 21, 22, 23, 24, 25, 26islno 8410 . . . . 5 |- ((U e. NrmCVec /\ W e. NrmCVec) -> (T e. L <-> (T:X-->Y /\ A.u e. X A.v e. CC A.w e. X (T` (uG(vRw))) = ((T` u)H(vS(T` w))))))
2827pm3.27bda 423 . . . 4 |- (((U e. NrmCVec /\ W e. NrmCVec) /\ T e. L) -> A.u e. X A.v e. CC A.w e. X (T` (uG(vRw))) = ((T` u)H(vS(T` w))))
29283impa 830 . . 3 |- ((U e. NrmCVec /\ W e. NrmCVec /\ T e. L) -> A.u e. X A.v e. CC A.w e. X (T` (uG(vRw))) = ((T` u)H(vS(T` w))))
3019, 29syl5 21 . 2 |- ((A e. X /\ B e. CC /\ C e. X) -> ((U e. NrmCVec /\ W e. NrmCVec /\ T e. L) -> (T` (AG(BRC))) = ((T` A)H(BS(T` C)))))
3130impcom 351 1 |- (((U e. NrmCVec /\ W e. NrmCVec /\ T e. L) /\ (A e. X /\ B e. CC /\ C e. X)) -> (T` (AG(BRC))) = ((T` A)H(BS(T` C))))
Colors of variables: wff set class
Syntax hints:   -> wi 3   /\ wa 223   /\ w3a 777   = wceq 958   e. wcel 960  A.wral 1648  -->wf 3184  ` cfv 3188  (class class class)co 3969  CCcc 5244  NrmCVeccnv 8199  +vcpv 8200  Basecba 8201  .scns 8202   LnOp clno 8397
This theorem is referenced by:  lno0 8413  lnocoi 8414  lnoadd 8415  lnosub 8416  lnomul 8417
This theorem was proved from axioms:  ax-1 4  ax-2 5  ax-3 6  ax-mp 7  ax-7 964  ax-gen 965  ax-8 966  ax-9 967  ax-10 968  ax-11 969  ax-12 970  ax-13 971  ax-14 972  ax-17 973  ax-4 975  ax-5o 977  ax-6o 980  ax-9o 1125  ax-10o 1142  ax-16 1212  ax-11o 1220  ax-ext 1462  ax-rep 2698  ax-sep 2708  ax-pow 2748  ax-pr 2785  ax-un 2872
This theorem depends on definitions:  df-bi 147  df-or 224  df-an 225  df-3an 779  df-ex 983  df-sb 1174  df-eu 1384  df-mo 1385  df-clab 1467  df-cleq 1472  df-clel 1475  df-ne 1590  df-ral 1652  df-rex 1653  df-v 1815  df-sbc 1945  df-csb 2005  df-dif 2052  df-un 2053  df-in 2054  df-ss 2056  df-nul 2284  df-pw 2406  df-sn 2416  df-pr 2417  df-op 2420  df-uni 2508  df-br 2625  df-opab 2672  df-id 2841  df-xp 3190  df-rel 3191  df-cnv 3192  df-co 3193  df-dm 3194  df-rn 3195  df-res 3196  df-ima 3197  df-fun 3198  df-fn 3199  df-f 3200  df-fv 3204  df-opr 3971  df-oprab 3972  df-lno 8401
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