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Theorem ltexprlemfu 6709
Description: Lemma for ltexpri 6711. One direction of our result for upper cuts. (Contributed by Jim Kingdon, 17-Dec-2019.)
Hypothesis
Ref Expression
ltexprlem.1  |-  C  = 
<. { x  e.  Q.  |  E. y ( y  e.  ( 2nd `  A
)  /\  ( y  +Q  x )  e.  ( 1st `  B ) ) } ,  {
x  e.  Q.  |  E. y ( y  e.  ( 1st `  A
)  /\  ( y  +Q  x )  e.  ( 2nd `  B ) ) } >.
Assertion
Ref Expression
ltexprlemfu  |-  ( A 
<P  B  ->  ( 2nd `  ( A  +P.  C
) )  C_  ( 2nd `  B ) )
Distinct variable groups:    x, y, A   
x, B, y    x, C, y

Proof of Theorem ltexprlemfu
Dummy variables  z  w  u  f  g  h are mutually distinct and distinct from all other variables.
StepHypRef Expression
1 ltrelpr 6603 . . . . . 6  |-  <P  C_  ( P.  X.  P. )
21brel 4392 . . . . 5  |-  ( A 
<P  B  ->  ( A  e.  P.  /\  B  e.  P. ) )
32simpld 105 . . . 4  |-  ( A 
<P  B  ->  A  e. 
P. )
4 ltexprlem.1 . . . . 5  |-  C  = 
<. { x  e.  Q.  |  E. y ( y  e.  ( 2nd `  A
)  /\  ( y  +Q  x )  e.  ( 1st `  B ) ) } ,  {
x  e.  Q.  |  E. y ( y  e.  ( 1st `  A
)  /\  ( y  +Q  x )  e.  ( 2nd `  B ) ) } >.
54ltexprlempr 6706 . . . 4  |-  ( A 
<P  B  ->  C  e. 
P. )
6 df-iplp 6566 . . . . 5  |-  +P.  =  ( z  e.  P. ,  y  e.  P.  |->  <. { f  e.  Q.  |  E. g  e.  Q.  E. h  e.  Q.  (
g  e.  ( 1st `  z )  /\  h  e.  ( 1st `  y
)  /\  f  =  ( g  +Q  h
) ) } ,  { f  e.  Q.  |  E. g  e.  Q.  E. h  e.  Q.  (
g  e.  ( 2nd `  z )  /\  h  e.  ( 2nd `  y
)  /\  f  =  ( g  +Q  h
) ) } >. )
7 addclnq 6473 . . . . 5  |-  ( ( g  e.  Q.  /\  h  e.  Q. )  ->  ( g  +Q  h
)  e.  Q. )
86, 7genpelvu 6611 . . . 4  |-  ( ( A  e.  P.  /\  C  e.  P. )  ->  ( z  e.  ( 2nd `  ( A  +P.  C ) )  <->  E. w  e.  ( 2nd `  A ) E. u  e.  ( 2nd `  C ) z  =  ( w  +Q  u
) ) )
93, 5, 8syl2anc 391 . . 3  |-  ( A 
<P  B  ->  ( z  e.  ( 2nd `  ( A  +P.  C ) )  <->  E. w  e.  ( 2nd `  A ) E. u  e.  ( 2nd `  C ) z  =  ( w  +Q  u
) ) )
10 simprr 484 . . . . . 6  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) ) )  -> 
z  =  ( w  +Q  u ) )
114ltexprlemelu 6697 . . . . . . . . . . 11  |-  ( u  e.  ( 2nd `  C
)  <->  ( u  e. 
Q.  /\  E. y
( y  e.  ( 1st `  A )  /\  ( y  +Q  u )  e.  ( 2nd `  B ) ) ) )
1211biimpi 113 . . . . . . . . . 10  |-  ( u  e.  ( 2nd `  C
)  ->  ( u  e.  Q.  /\  E. y
( y  e.  ( 1st `  A )  /\  ( y  +Q  u )  e.  ( 2nd `  B ) ) ) )
1312ad2antlr 458 . . . . . . . . 9  |-  ( ( ( w  e.  ( 2nd `  A )  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  ->  (
u  e.  Q.  /\  E. y ( y  e.  ( 1st `  A
)  /\  ( y  +Q  u )  e.  ( 2nd `  B ) ) ) )
1413simprd 107 . . . . . . . 8  |-  ( ( ( w  e.  ( 2nd `  A )  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  ->  E. y
( y  e.  ( 1st `  A )  /\  ( y  +Q  u )  e.  ( 2nd `  B ) ) )
1514adantl 262 . . . . . . 7  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) ) )  ->  E. y ( y  e.  ( 1st `  A
)  /\  ( y  +Q  u )  e.  ( 2nd `  B ) ) )
16 prop 6573 . . . . . . . . . . . . . . 15  |-  ( A  e.  P.  ->  <. ( 1st `  A ) ,  ( 2nd `  A
) >.  e.  P. )
173, 16syl 14 . . . . . . . . . . . . . 14  |-  ( A 
<P  B  ->  <. ( 1st `  A ) ,  ( 2nd `  A
) >.  e.  P. )
18 prltlu 6585 . . . . . . . . . . . . . 14  |-  ( (
<. ( 1st `  A
) ,  ( 2nd `  A ) >.  e.  P.  /\  y  e.  ( 1st `  A )  /\  w  e.  ( 2nd `  A
) )  ->  y  <Q  w )
1917, 18syl3an1 1168 . . . . . . . . . . . . 13  |-  ( ( A  <P  B  /\  y  e.  ( 1st `  A )  /\  w  e.  ( 2nd `  A
) )  ->  y  <Q  w )
20193com23 1110 . . . . . . . . . . . 12  |-  ( ( A  <P  B  /\  w  e.  ( 2nd `  A )  /\  y  e.  ( 1st `  A
) )  ->  y  <Q  w )
21203adant2r 1130 . . . . . . . . . . 11  |-  ( ( A  <P  B  /\  ( w  e.  ( 2nd `  A )  /\  u  e.  ( 2nd `  C ) )  /\  y  e.  ( 1st `  A ) )  -> 
y  <Q  w )
22213adant2r 1130 . . . . . . . . . 10  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  y  e.  ( 1st `  A
) )  ->  y  <Q  w )
23223adant3r 1132 . . . . . . . . 9  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  -> 
y  <Q  w )
24 ltanqg 6498 . . . . . . . . . . . 12  |-  ( ( f  e.  Q.  /\  g  e.  Q.  /\  h  e.  Q. )  ->  (
f  <Q  g  <->  ( h  +Q  f )  <Q  (
h  +Q  g ) ) )
2524adantl 262 . . . . . . . . . . 11  |-  ( ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  /\  ( f  e.  Q.  /\  g  e.  Q.  /\  h  e.  Q. )
)  ->  ( f  <Q  g  <->  ( h  +Q  f )  <Q  (
h  +Q  g ) ) )
26 elprnql 6579 . . . . . . . . . . . . . 14  |-  ( (
<. ( 1st `  A
) ,  ( 2nd `  A ) >.  e.  P.  /\  y  e.  ( 1st `  A ) )  -> 
y  e.  Q. )
2717, 26sylan 267 . . . . . . . . . . . . 13  |-  ( ( A  <P  B  /\  y  e.  ( 1st `  A ) )  -> 
y  e.  Q. )
2827adantrr 448 . . . . . . . . . . . 12  |-  ( ( A  <P  B  /\  ( y  e.  ( 1st `  A )  /\  ( y  +Q  u )  e.  ( 2nd `  B ) ) )  ->  y  e.  Q. )
29283adant2 923 . . . . . . . . . . 11  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  -> 
y  e.  Q. )
30 elprnqu 6580 . . . . . . . . . . . . . . 15  |-  ( (
<. ( 1st `  A
) ,  ( 2nd `  A ) >.  e.  P.  /\  w  e.  ( 2nd `  A ) )  ->  w  e.  Q. )
3117, 30sylan 267 . . . . . . . . . . . . . 14  |-  ( ( A  <P  B  /\  w  e.  ( 2nd `  A ) )  ->  w  e.  Q. )
3231adantrr 448 . . . . . . . . . . . . 13  |-  ( ( A  <P  B  /\  ( w  e.  ( 2nd `  A )  /\  u  e.  ( 2nd `  C ) ) )  ->  w  e.  Q. )
3332adantrr 448 . . . . . . . . . . . 12  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) ) )  ->  w  e.  Q. )
34333adant3 924 . . . . . . . . . . 11  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  ->  w  e.  Q. )
35 prop 6573 . . . . . . . . . . . . . . . 16  |-  ( C  e.  P.  ->  <. ( 1st `  C ) ,  ( 2nd `  C
) >.  e.  P. )
365, 35syl 14 . . . . . . . . . . . . . . 15  |-  ( A 
<P  B  ->  <. ( 1st `  C ) ,  ( 2nd `  C
) >.  e.  P. )
37 elprnqu 6580 . . . . . . . . . . . . . . 15  |-  ( (
<. ( 1st `  C
) ,  ( 2nd `  C ) >.  e.  P.  /\  u  e.  ( 2nd `  C ) )  ->  u  e.  Q. )
3836, 37sylan 267 . . . . . . . . . . . . . 14  |-  ( ( A  <P  B  /\  u  e.  ( 2nd `  C ) )  ->  u  e.  Q. )
3938adantrl 447 . . . . . . . . . . . . 13  |-  ( ( A  <P  B  /\  ( w  e.  ( 2nd `  A )  /\  u  e.  ( 2nd `  C ) ) )  ->  u  e.  Q. )
4039adantrr 448 . . . . . . . . . . . 12  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) ) )  ->  u  e.  Q. )
41403adant3 924 . . . . . . . . . . 11  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  ->  u  e.  Q. )
42 addcomnqg 6479 . . . . . . . . . . . 12  |-  ( ( f  e.  Q.  /\  g  e.  Q. )  ->  ( f  +Q  g
)  =  ( g  +Q  f ) )
4342adantl 262 . . . . . . . . . . 11  |-  ( ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  /\  ( f  e.  Q.  /\  g  e.  Q. )
)  ->  ( f  +Q  g )  =  ( g  +Q  f ) )
4425, 29, 34, 41, 43caovord2d 5670 . . . . . . . . . 10  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  -> 
( y  <Q  w  <->  ( y  +Q  u ) 
<Q  ( w  +Q  u
) ) )
452simprd 107 . . . . . . . . . . . . . 14  |-  ( A 
<P  B  ->  B  e. 
P. )
46 prop 6573 . . . . . . . . . . . . . 14  |-  ( B  e.  P.  ->  <. ( 1st `  B ) ,  ( 2nd `  B
) >.  e.  P. )
4745, 46syl 14 . . . . . . . . . . . . 13  |-  ( A 
<P  B  ->  <. ( 1st `  B ) ,  ( 2nd `  B
) >.  e.  P. )
48 prcunqu 6583 . . . . . . . . . . . . 13  |-  ( (
<. ( 1st `  B
) ,  ( 2nd `  B ) >.  e.  P.  /\  ( y  +Q  u
)  e.  ( 2nd `  B ) )  -> 
( ( y  +Q  u )  <Q  (
w  +Q  u )  ->  ( w  +Q  u )  e.  ( 2nd `  B ) ) )
4947, 48sylan 267 . . . . . . . . . . . 12  |-  ( ( A  <P  B  /\  ( y  +Q  u
)  e.  ( 2nd `  B ) )  -> 
( ( y  +Q  u )  <Q  (
w  +Q  u )  ->  ( w  +Q  u )  e.  ( 2nd `  B ) ) )
5049adantrl 447 . . . . . . . . . . 11  |-  ( ( A  <P  B  /\  ( y  e.  ( 1st `  A )  /\  ( y  +Q  u )  e.  ( 2nd `  B ) ) )  ->  (
( y  +Q  u
)  <Q  ( w  +Q  u )  ->  (
w  +Q  u )  e.  ( 2nd `  B
) ) )
51503adant2 923 . . . . . . . . . 10  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  -> 
( ( y  +Q  u )  <Q  (
w  +Q  u )  ->  ( w  +Q  u )  e.  ( 2nd `  B ) ) )
5244, 51sylbid 139 . . . . . . . . 9  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  -> 
( y  <Q  w  ->  ( w  +Q  u
)  e.  ( 2nd `  B ) ) )
5323, 52mpd 13 . . . . . . . 8  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) )  /\  (
y  e.  ( 1st `  A )  /\  (
y  +Q  u )  e.  ( 2nd `  B
) ) )  -> 
( w  +Q  u
)  e.  ( 2nd `  B ) )
54533expa 1104 . . . . . . 7  |-  ( ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) ) )  /\  ( y  e.  ( 1st `  A )  /\  ( y  +Q  u )  e.  ( 2nd `  B ) ) )  ->  (
w  +Q  u )  e.  ( 2nd `  B
) )
5515, 54exlimddv 1778 . . . . . 6  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) ) )  -> 
( w  +Q  u
)  e.  ( 2nd `  B ) )
5610, 55eqeltrd 2114 . . . . 5  |-  ( ( A  <P  B  /\  ( ( w  e.  ( 2nd `  A
)  /\  u  e.  ( 2nd `  C ) )  /\  z  =  ( w  +Q  u
) ) )  -> 
z  e.  ( 2nd `  B ) )
5756expr 357 . . . 4  |-  ( ( A  <P  B  /\  ( w  e.  ( 2nd `  A )  /\  u  e.  ( 2nd `  C ) ) )  ->  ( z  =  ( w  +Q  u
)  ->  z  e.  ( 2nd `  B ) ) )
5857rexlimdvva 2440 . . 3  |-  ( A 
<P  B  ->  ( E. w  e.  ( 2nd `  A ) E. u  e.  ( 2nd `  C
) z  =  ( w  +Q  u )  ->  z  e.  ( 2nd `  B ) ) )
599, 58sylbid 139 . 2  |-  ( A 
<P  B  ->  ( z  e.  ( 2nd `  ( A  +P.  C ) )  ->  z  e.  ( 2nd `  B ) ) )
6059ssrdv 2951 1  |-  ( A 
<P  B  ->  ( 2nd `  ( A  +P.  C
) )  C_  ( 2nd `  B ) )
Colors of variables: wff set class
Syntax hints:    -> wi 4    /\ wa 97    <-> wb 98    /\ w3a 885    = wceq 1243   E.wex 1381    e. wcel 1393   E.wrex 2307   {crab 2310    C_ wss 2917   <.cop 3378   class class class wbr 3764   ` cfv 4902  (class class class)co 5512   1stc1st 5765   2ndc2nd 5766   Q.cnq 6378    +Q cplq 6380    <Q cltq 6383   P.cnp 6389    +P. cpp 6391    <P cltp 6393
This theorem was proved from axioms:  ax-1 5  ax-2 6  ax-mp 7  ax-ia1 99  ax-ia2 100  ax-ia3 101  ax-in1 544  ax-in2 545  ax-io 630  ax-5 1336  ax-7 1337  ax-gen 1338  ax-ie1 1382  ax-ie2 1383  ax-8 1395  ax-10 1396  ax-11 1397  ax-i12 1398  ax-bndl 1399  ax-4 1400  ax-13 1404  ax-14 1405  ax-17 1419  ax-i9 1423  ax-ial 1427  ax-i5r 1428  ax-ext 2022  ax-coll 3872  ax-sep 3875  ax-nul 3883  ax-pow 3927  ax-pr 3944  ax-un 4170  ax-setind 4262  ax-iinf 4311
This theorem depends on definitions:  df-bi 110  df-dc 743  df-3or 886  df-3an 887  df-tru 1246  df-fal 1249  df-nf 1350  df-sb 1646  df-eu 1903  df-mo 1904  df-clab 2027  df-cleq 2033  df-clel 2036  df-nfc 2167  df-ne 2206  df-ral 2311  df-rex 2312  df-reu 2313  df-rab 2315  df-v 2559  df-sbc 2765  df-csb 2853  df-dif 2920  df-un 2922  df-in 2924  df-ss 2931  df-nul 3225  df-pw 3361  df-sn 3381  df-pr 3382  df-op 3384  df-uni 3581  df-int 3616  df-iun 3659  df-br 3765  df-opab 3819  df-mpt 3820  df-tr 3855  df-eprel 4026  df-id 4030  df-po 4033  df-iso 4034  df-iord 4103  df-on 4105  df-suc 4108  df-iom 4314  df-xp 4351  df-rel 4352  df-cnv 4353  df-co 4354  df-dm 4355  df-rn 4356  df-res 4357  df-ima 4358  df-iota 4867  df-fun 4904  df-fn 4905  df-f 4906  df-f1 4907  df-fo 4908  df-f1o 4909  df-fv 4910  df-ov 5515  df-oprab 5516  df-mpt2 5517  df-1st 5767  df-2nd 5768  df-recs 5920  df-irdg 5957  df-1o 6001  df-2o 6002  df-oadd 6005  df-omul 6006  df-er 6106  df-ec 6108  df-qs 6112  df-ni 6402  df-pli 6403  df-mi 6404  df-lti 6405  df-plpq 6442  df-mpq 6443  df-enq 6445  df-nqqs 6446  df-plqqs 6447  df-mqqs 6448  df-1nqqs 6449  df-rq 6450  df-ltnqqs 6451  df-enq0 6522  df-nq0 6523  df-0nq0 6524  df-plq0 6525  df-mq0 6526  df-inp 6564  df-iplp 6566  df-iltp 6568
This theorem is referenced by:  ltexpri  6711
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