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Theorem gzsumwsubmcl 13801
Description: Closure of the composite in any submonoid. (Contributed by Stefan O'Rear, 15-Aug-2015.) (Revised by Mario Carneiro, 1-Oct-2015.)
Assertion
Ref Expression
gzsumwsubmcl  |-  ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  ->  ( G  gzsumgz 
W )  e.  S
)

Proof of Theorem gzsumwsubmcl
Dummy variables  x  y  j are mutually distinct and distinct from all other variables.
StepHypRef Expression
1 oveq2 6093 . . . . 5  |-  ( W  =  (/)  ->  ( G 
gzsumgz  W )  =  ( G  gzsumgz  (/) ) )
21adantl 277 . . . 4  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =  (/) )  ->  ( G  gzsumgz 
W )  =  ( G  gzsumgz  (/) ) )
3 submrcl 13778 . . . . . 6  |-  ( S  e.  (SubMnd `  G
)  ->  G  e.  Mnd )
4 eqid 2238 . . . . . . 7  |-  ( 0g
`  G )  =  ( 0g `  G
)
54gzsum0 13713 . . . . . 6  |-  ( G  e.  Mnd  ->  ( G  gzsumgz  (/) )  =  ( 0g `  G ) )
63, 5syl 14 . . . . 5  |-  ( S  e.  (SubMnd `  G
)  ->  ( G  gzsumgz  (/) )  =  ( 0g `  G ) )
76ad2antrr 492 . . . 4  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =  (/) )  ->  ( G  gzsumgz  (/) )  =  ( 0g `  G ) )
82, 7eqtrd 2271 . . 3  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =  (/) )  ->  ( G  gzsumgz 
W )  =  ( 0g `  G ) )
94subm0cl 13785 . . . 4  |-  ( S  e.  (SubMnd `  G
)  ->  ( 0g `  G )  e.  S
)
109ad2antrr 492 . . 3  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =  (/) )  ->  ( 0g `  G )  e.  S )
118, 10eqeltrd 2315 . 2  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =  (/) )  ->  ( G  gzsumgz 
W )  e.  S
)
12 eqid 2238 . . . 4  |-  ( Base `  G )  =  (
Base `  G )
13 eqid 2238 . . . 4  |-  ( +g  `  G )  =  ( +g  `  G )
143ad2antrr 492 . . . 4  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  G  e.  Mnd )
15 lennncl 11324 . . . . . . 7  |-  ( ( W  e. Word  S  /\  W  =/=  (/) )  ->  ( `  W )  e.  NN )
1615adantll 480 . . . . . 6  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  ( `  W )  e.  NN )
17 nnm1nn0 9604 . . . . . 6  |-  ( ( `  W )  e.  NN  ->  ( ( `  W
)  -  1 )  e.  NN0 )
1816, 17syl 14 . . . . 5  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  (
( `  W )  - 
1 )  e.  NN0 )
19 nn0uz 9957 . . . . 5  |-  NN0  =  ( ZZ>= `  0 )
2018, 19eleqtrdi 2331 . . . 4  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  (
( `  W )  - 
1 )  e.  (
ZZ>= `  0 ) )
21 wrdf 11310 . . . . . . 7  |-  ( W  e. Word  S  ->  W : ( 0..^ ( `  W ) ) --> S )
2221ad2antlr 493 . . . . . 6  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  W : ( 0..^ ( `  W ) ) --> S )
2316nnzd 9767 . . . . . . . 8  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  ( `  W )  e.  ZZ )
24 fzoval 10555 . . . . . . . 8  |-  ( ( `  W )  e.  ZZ  ->  ( 0..^ ( `  W
) )  =  ( 0 ... ( ( `  W )  -  1 ) ) )
2523, 24syl 14 . . . . . . 7  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  (
0..^ ( `  W )
)  =  ( 0 ... ( ( `  W
)  -  1 ) ) )
2625feq2d 5521 . . . . . 6  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  ( W : ( 0..^ ( `  W ) ) --> S  <-> 
W : ( 0 ... ( ( `  W
)  -  1 ) ) --> S ) )
2722, 26mpbid 147 . . . . 5  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  W : ( 0 ... ( ( `  W
)  -  1 ) ) --> S )
2812submss 13783 . . . . . 6  |-  ( S  e.  (SubMnd `  G
)  ->  S  C_  ( Base `  G ) )
2928ad2antrr 492 . . . . 5  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  S  C_  ( Base `  G
) )
3027, 29fssd 5547 . . . 4  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  W : ( 0 ... ( ( `  W
)  -  1 ) ) --> ( Base `  G
) )
3112, 13, 14, 20, 30gzsumval2 13714 . . 3  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  ( G  gzsumgz 
W )  =  (  seq 0 ( ( +g  `  G ) ,  W ) `  ( ( `  W )  -  1 ) ) )
32 fvexg 5714 . . . . 5  |-  ( ( W  e. Word  S  /\  x  e.  ( ZZ>= ` 
0 ) )  -> 
( W `  x
)  e.  _V )
3332ad4ant24 520 . . . 4  |-  ( ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  /\  x  e.  ( ZZ>= ` 
0 ) )  -> 
( W `  x
)  e.  _V )
3427ffvelcdmda 5843 . . . 4  |-  ( ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  /\  x  e.  ( 0 ... ( ( `  W
)  -  1 ) ) )  ->  ( W `  x )  e.  S )
3513submcl 13786 . . . . . 6  |-  ( ( S  e.  (SubMnd `  G )  /\  x  e.  S  /\  y  e.  S )  ->  (
x ( +g  `  G
) y )  e.  S )
36353expb 1235 . . . . 5  |-  ( ( S  e.  (SubMnd `  G )  /\  (
x  e.  S  /\  y  e.  S )
)  ->  ( x
( +g  `  G ) y )  e.  S
)
3736ad4ant14 518 . . . 4  |-  ( ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  /\  ( x  e.  S  /\  y  e.  S
) )  ->  (
x ( +g  `  G
) y )  e.  S )
38 ssv 3270 . . . . 5  |-  S  C_  _V
3938a1i 9 . . . 4  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  S  C_ 
_V )
40 simprl 535 . . . . 5  |-  ( ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  /\  ( x  e.  _V  /\  y  e.  _V )
)  ->  x  e.  _V )
4114adantr 276 . . . . . 6  |-  ( ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  /\  ( x  e.  _V  /\  y  e.  _V )
)  ->  G  e.  Mnd )
42 plusgslid 13466 . . . . . . 7  |-  ( +g  = Slot  ( +g  `  ndx )  /\  ( +g  `  ndx )  e.  NN )
4342slotex 13379 . . . . . 6  |-  ( G  e.  Mnd  ->  ( +g  `  G )  e. 
_V )
4441, 43syl 14 . . . . 5  |-  ( ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  /\  ( x  e.  _V  /\  y  e.  _V )
)  ->  ( +g  `  G )  e.  _V )
45 simprr 537 . . . . 5  |-  ( ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  /\  ( x  e.  _V  /\  y  e.  _V )
)  ->  y  e.  _V )
46 ovexg 6119 . . . . 5  |-  ( ( x  e.  _V  /\  ( +g  `  G )  e.  _V  /\  y  e.  _V )  ->  (
x ( +g  `  G
) y )  e. 
_V )
4740, 44, 45, 46syl3anc 1278 . . . 4  |-  ( ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  /\  ( x  e.  _V  /\  y  e.  _V )
)  ->  ( x
( +g  `  G ) y )  e.  _V )
4820, 33, 34, 37, 39, 47seq3clss 10908 . . 3  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  (  seq 0 ( ( +g  `  G ) ,  W
) `  ( ( `  W )  -  1 ) )  e.  S
)
4931, 48eqeltrd 2315 . 2  |-  ( ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  /\  W  =/=  (/) )  ->  ( G  gzsumgz 
W )  e.  S
)
50 wrdfin 11323 . . . . 5  |-  ( W  e. Word  S  ->  W  e.  Fin )
51 fin0or 7190 . . . . 5  |-  ( W  e.  Fin  ->  ( W  =  (/)  \/  E. j  j  e.  W
) )
5250, 51syl 14 . . . 4  |-  ( W  e. Word  S  ->  ( W  =  (/)  \/  E. j  j  e.  W
) )
53 n0r 3535 . . . . 5  |-  ( E. j  j  e.  W  ->  W  =/=  (/) )
5453orim2i 773 . . . 4  |-  ( ( W  =  (/)  \/  E. j  j  e.  W
)  ->  ( W  =  (/)  \/  W  =/=  (/) ) )
5552, 54syl 14 . . 3  |-  ( W  e. Word  S  ->  ( W  =  (/)  \/  W  =/=  (/) ) )
5655adantl 277 . 2  |-  ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  ->  ( W  =  (/)  \/  W  =/=  (/) ) )
5711, 49, 56mpjaodan 810 1  |-  ( ( S  e.  (SubMnd `  G )  /\  W  e. Word  S )  ->  ( G  gzsumgz 
W )  e.  S
)
Colors of variables:    wff set class
This proof depends on syntax axioms:    -> wi 4    /\ wa 104    \/ wo 720    = wceq 1402   E.wex 1545    e. wcel 2209    =/= wne 2420   _Vcvv 2821    C_ wss 3220   (/)c0 3520   -->wf 5373   ` cfv 5377  (class class class)co 6085   Fincfn 7022   0cc0 8179   1c1 8180    - cmin 8497   NNcn 9304   NN0cn0 9563   ZZcz 9644   ZZ>=cuz 9921   ...cfz 10411  ..^cfzo 10549    seqcseq 10884  ♯chash 11214  Word cword 11304   Basecbs 13352   +g cplusg 13431   0gc0g 13610    gzsumgz cgzsu 13611   Mndcmnd 13729  SubMndcsubmnd 13765
This proof depends on axioms:  ax-mp 5  ax-1 6  ax-2 7  ax-ia1 106  ax-ia2 107  ax-ia3 108  ax-in1 623  ax-in2 624  ax-io 721  ax-5 1500  ax-7 1501  ax-gen 1502  ax-ie1 1546  ax-ie2 1547  ax-8 1557  ax-10 1558  ax-11 1559  ax-i12 1560  ax-bndl 1562  ax-4 1563  ax-17 1579  ax-i9 1583  ax-ial 1587  ax-i5r 1588  ax-14 2212  ax-ext 2220  ax-coll 4246  ax-sep 4249  ax-nul 4259  ax-pow 4311  ax-pr 4346  ax-un 4578  ax-setind 4684  ax-iinf 4735  ax-cnex 8270  ax-resscn 8271  ax-1cn 8272  ax-1re 8273  ax-icn 8274  ax-addcl 8275  ax-addrcl 8276  ax-mulcl 8277  ax-addcom 8279  ax-addass 8281  ax-distr 8283  ax-i2m1 8284  ax-0lt1 8285  ax-0id 8287  ax-rnegex 8288  ax-cnre 8290  ax-pre-ltirr 8291  ax-pre-ltwlin 8292  ax-pre-lttrn 8293  ax-pre-apti 8294  ax-pre-ltadd 8295
This proof depends on definitions:  df-bi 117  df-dc 847  df-3or 1010  df-3an 1011  df-tru 1405  df-fal 1408  df-nf 1514  df-sb 1816  df-eu 2089  df-mo 2090  df-clab 2225  df-cleq 2231  df-clel 2234  df-nfc 2381  df-ne 2421  df-nel 2516  df-ral 2533  df-rex 2534  df-reu 2535  df-rab 2537  df-v 2823  df-sbc 3052  df-csb 3148  df-dif 3222  df-un 3224  df-in 3226  df-ss 3233  df-nul 3521  df-if 3639  df-pw 3690  df-sn 3715  df-pr 3716  df-op 3718  df-uni 3936  df-int 3971  df-iun 4014  df-br 4131  df-opab 4193  df-mpt 4194  df-tr 4230  df-id 4438  df-iord 4511  df-on 4513  df-ilim 4514  df-suc 4516  df-iom 4738  df-xp 4780  df-rel 4781  df-cnv 4782  df-co 4783  df-dm 4784  df-rn 4785  df-res 4786  df-ima 4787  df-iota 5337  df-fun 5379  df-fn 5380  df-f 5381  df-f1 5382  df-fo 5383  df-f1o 5384  df-fv 5385  df-riota 6038  df-ov 6088  df-oprab 6089  df-mpo 6090  df-1st 6374  df-2nd 6375  df-recs 6576  df-frec 6662  df-1o 6687  df-er 6807  df-en 7023  df-dom 7024  df-fin 7025  df-pnf 8362  df-mnf 8363  df-xr 8364  df-ltxr 8365  df-le 8366  df-sub 8499  df-neg 8500  df-inn 9305  df-2 9363  df-n0 9564  df-z 9645  df-uz 9922  df-fz 10412  df-fzo 10550  df-seqfrec 10885  df-ihash 11215  df-word 11305  df-ndx 13355  df-slot 13356  df-base 13358  df-plusg 13444  df-0g 13612  df-gzsum 13613  df-submnd 13767
This theorem is used by:  gzsumwcl  13802
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