Users' Mathboxes Mathbox for Mario Carneiro < Previous   Next >
Nearby theorems
Mirrors  >  Home  >  MPE Home  >  Th. List  >   Mathboxes  >  subfacp1lem4 Structured version   Visualization version   GIF version

Theorem subfacp1lem4 31165
Description: Lemma for subfacp1 31168. The function 𝐹, which swaps 1 with 𝑀 and leaves all other elements alone, is a bijection of order 2, i.e. it is its own inverse. (Contributed by Mario Carneiro, 19-Jan-2015.)
Hypotheses
Ref Expression
derang.d 𝐷 = (𝑥 ∈ Fin ↦ (#‘{𝑓 ∣ (𝑓:𝑥1-1-onto𝑥 ∧ ∀𝑦𝑥 (𝑓𝑦) ≠ 𝑦)}))
subfac.n 𝑆 = (𝑛 ∈ ℕ0 ↦ (𝐷‘(1...𝑛)))
subfacp1lem.a 𝐴 = {𝑓 ∣ (𝑓:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)) ∧ ∀𝑦 ∈ (1...(𝑁 + 1))(𝑓𝑦) ≠ 𝑦)}
subfacp1lem1.n (𝜑𝑁 ∈ ℕ)
subfacp1lem1.m (𝜑𝑀 ∈ (2...(𝑁 + 1)))
subfacp1lem1.x 𝑀 ∈ V
subfacp1lem1.k 𝐾 = ((2...(𝑁 + 1)) ∖ {𝑀})
subfacp1lem5.b 𝐵 = {𝑔𝐴 ∣ ((𝑔‘1) = 𝑀 ∧ (𝑔𝑀) ≠ 1)}
subfacp1lem5.f 𝐹 = (( I ↾ 𝐾) ∪ {⟨1, 𝑀⟩, ⟨𝑀, 1⟩})
Assertion
Ref Expression
subfacp1lem4 (𝜑𝐹 = 𝐹)
Distinct variable groups:   𝑓,𝑔,𝑛,𝑥,𝑦,𝐴   𝑓,𝐹,𝑔,𝑥,𝑦   𝑓,𝑁,𝑔,𝑛,𝑥,𝑦   𝐵,𝑓,𝑔,𝑥,𝑦   𝜑,𝑥,𝑦   𝐷,𝑛   𝑓,𝐾,𝑛,𝑥,𝑦   𝑓,𝑀,𝑔,𝑥,𝑦   𝑆,𝑛,𝑥,𝑦
Allowed substitution hints:   𝜑(𝑓,𝑔,𝑛)   𝐵(𝑛)   𝐷(𝑥,𝑦,𝑓,𝑔)   𝑆(𝑓,𝑔)   𝐹(𝑛)   𝐾(𝑔)   𝑀(𝑛)

Proof of Theorem subfacp1lem4
StepHypRef Expression
1 derang.d . . . . 5 𝐷 = (𝑥 ∈ Fin ↦ (#‘{𝑓 ∣ (𝑓:𝑥1-1-onto𝑥 ∧ ∀𝑦𝑥 (𝑓𝑦) ≠ 𝑦)}))
2 subfac.n . . . . 5 𝑆 = (𝑛 ∈ ℕ0 ↦ (𝐷‘(1...𝑛)))
3 subfacp1lem.a . . . . 5 𝐴 = {𝑓 ∣ (𝑓:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)) ∧ ∀𝑦 ∈ (1...(𝑁 + 1))(𝑓𝑦) ≠ 𝑦)}
4 subfacp1lem1.n . . . . 5 (𝜑𝑁 ∈ ℕ)
5 subfacp1lem1.m . . . . 5 (𝜑𝑀 ∈ (2...(𝑁 + 1)))
6 subfacp1lem1.x . . . . 5 𝑀 ∈ V
7 subfacp1lem1.k . . . . 5 𝐾 = ((2...(𝑁 + 1)) ∖ {𝑀})
8 subfacp1lem5.f . . . . 5 𝐹 = (( I ↾ 𝐾) ∪ {⟨1, 𝑀⟩, ⟨𝑀, 1⟩})
9 f1oi 6174 . . . . . 6 ( I ↾ 𝐾):𝐾1-1-onto𝐾
109a1i 11 . . . . 5 (𝜑 → ( I ↾ 𝐾):𝐾1-1-onto𝐾)
111, 2, 3, 4, 5, 6, 7, 8, 10subfacp1lem2a 31162 . . . 4 (𝜑 → (𝐹:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)) ∧ (𝐹‘1) = 𝑀 ∧ (𝐹𝑀) = 1))
1211simp1d 1073 . . 3 (𝜑𝐹:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)))
13 f1ocnv 6149 . . 3 (𝐹:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)) → 𝐹:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)))
14 f1ofn 6138 . . 3 (𝐹:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)) → 𝐹 Fn (1...(𝑁 + 1)))
1512, 13, 143syl 18 . 2 (𝜑𝐹 Fn (1...(𝑁 + 1)))
16 f1ofn 6138 . . 3 (𝐹:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)) → 𝐹 Fn (1...(𝑁 + 1)))
1712, 16syl 17 . 2 (𝜑𝐹 Fn (1...(𝑁 + 1)))
181, 2, 3, 4, 5, 6, 7subfacp1lem1 31161 . . . . . . . 8 (𝜑 → ((𝐾 ∩ {1, 𝑀}) = ∅ ∧ (𝐾 ∪ {1, 𝑀}) = (1...(𝑁 + 1)) ∧ (#‘𝐾) = (𝑁 − 1)))
1918simp2d 1074 . . . . . . 7 (𝜑 → (𝐾 ∪ {1, 𝑀}) = (1...(𝑁 + 1)))
2019eleq2d 2687 . . . . . 6 (𝜑 → (𝑥 ∈ (𝐾 ∪ {1, 𝑀}) ↔ 𝑥 ∈ (1...(𝑁 + 1))))
2120biimpar 502 . . . . 5 ((𝜑𝑥 ∈ (1...(𝑁 + 1))) → 𝑥 ∈ (𝐾 ∪ {1, 𝑀}))
22 elun 3753 . . . . 5 (𝑥 ∈ (𝐾 ∪ {1, 𝑀}) ↔ (𝑥𝐾𝑥 ∈ {1, 𝑀}))
2321, 22sylib 208 . . . 4 ((𝜑𝑥 ∈ (1...(𝑁 + 1))) → (𝑥𝐾𝑥 ∈ {1, 𝑀}))
241, 2, 3, 4, 5, 6, 7, 8, 10subfacp1lem2b 31163 . . . . . . . 8 ((𝜑𝑥𝐾) → (𝐹𝑥) = (( I ↾ 𝐾)‘𝑥))
25 fvresi 6439 . . . . . . . . 9 (𝑥𝐾 → (( I ↾ 𝐾)‘𝑥) = 𝑥)
2625adantl 482 . . . . . . . 8 ((𝜑𝑥𝐾) → (( I ↾ 𝐾)‘𝑥) = 𝑥)
2724, 26eqtrd 2656 . . . . . . 7 ((𝜑𝑥𝐾) → (𝐹𝑥) = 𝑥)
2827fveq2d 6195 . . . . . 6 ((𝜑𝑥𝐾) → (𝐹‘(𝐹𝑥)) = (𝐹𝑥))
2928, 27eqtrd 2656 . . . . 5 ((𝜑𝑥𝐾) → (𝐹‘(𝐹𝑥)) = 𝑥)
30 vex 3203 . . . . . . 7 𝑥 ∈ V
3130elpr 4198 . . . . . 6 (𝑥 ∈ {1, 𝑀} ↔ (𝑥 = 1 ∨ 𝑥 = 𝑀))
3211simp2d 1074 . . . . . . . . . . 11 (𝜑 → (𝐹‘1) = 𝑀)
3332fveq2d 6195 . . . . . . . . . 10 (𝜑 → (𝐹‘(𝐹‘1)) = (𝐹𝑀))
3411simp3d 1075 . . . . . . . . . 10 (𝜑 → (𝐹𝑀) = 1)
3533, 34eqtrd 2656 . . . . . . . . 9 (𝜑 → (𝐹‘(𝐹‘1)) = 1)
36 fveq2 6191 . . . . . . . . . . 11 (𝑥 = 1 → (𝐹𝑥) = (𝐹‘1))
3736fveq2d 6195 . . . . . . . . . 10 (𝑥 = 1 → (𝐹‘(𝐹𝑥)) = (𝐹‘(𝐹‘1)))
38 id 22 . . . . . . . . . 10 (𝑥 = 1 → 𝑥 = 1)
3937, 38eqeq12d 2637 . . . . . . . . 9 (𝑥 = 1 → ((𝐹‘(𝐹𝑥)) = 𝑥 ↔ (𝐹‘(𝐹‘1)) = 1))
4035, 39syl5ibrcom 237 . . . . . . . 8 (𝜑 → (𝑥 = 1 → (𝐹‘(𝐹𝑥)) = 𝑥))
4134fveq2d 6195 . . . . . . . . . 10 (𝜑 → (𝐹‘(𝐹𝑀)) = (𝐹‘1))
4241, 32eqtrd 2656 . . . . . . . . 9 (𝜑 → (𝐹‘(𝐹𝑀)) = 𝑀)
43 fveq2 6191 . . . . . . . . . . 11 (𝑥 = 𝑀 → (𝐹𝑥) = (𝐹𝑀))
4443fveq2d 6195 . . . . . . . . . 10 (𝑥 = 𝑀 → (𝐹‘(𝐹𝑥)) = (𝐹‘(𝐹𝑀)))
45 id 22 . . . . . . . . . 10 (𝑥 = 𝑀𝑥 = 𝑀)
4644, 45eqeq12d 2637 . . . . . . . . 9 (𝑥 = 𝑀 → ((𝐹‘(𝐹𝑥)) = 𝑥 ↔ (𝐹‘(𝐹𝑀)) = 𝑀))
4742, 46syl5ibrcom 237 . . . . . . . 8 (𝜑 → (𝑥 = 𝑀 → (𝐹‘(𝐹𝑥)) = 𝑥))
4840, 47jaod 395 . . . . . . 7 (𝜑 → ((𝑥 = 1 ∨ 𝑥 = 𝑀) → (𝐹‘(𝐹𝑥)) = 𝑥))
4948imp 445 . . . . . 6 ((𝜑 ∧ (𝑥 = 1 ∨ 𝑥 = 𝑀)) → (𝐹‘(𝐹𝑥)) = 𝑥)
5031, 49sylan2b 492 . . . . 5 ((𝜑𝑥 ∈ {1, 𝑀}) → (𝐹‘(𝐹𝑥)) = 𝑥)
5129, 50jaodan 826 . . . 4 ((𝜑 ∧ (𝑥𝐾𝑥 ∈ {1, 𝑀})) → (𝐹‘(𝐹𝑥)) = 𝑥)
5223, 51syldan 487 . . 3 ((𝜑𝑥 ∈ (1...(𝑁 + 1))) → (𝐹‘(𝐹𝑥)) = 𝑥)
5312adantr 481 . . . 4 ((𝜑𝑥 ∈ (1...(𝑁 + 1))) → 𝐹:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)))
54 f1of 6137 . . . . . 6 (𝐹:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)) → 𝐹:(1...(𝑁 + 1))⟶(1...(𝑁 + 1)))
5512, 54syl 17 . . . . 5 (𝜑𝐹:(1...(𝑁 + 1))⟶(1...(𝑁 + 1)))
5655ffvelrnda 6359 . . . 4 ((𝜑𝑥 ∈ (1...(𝑁 + 1))) → (𝐹𝑥) ∈ (1...(𝑁 + 1)))
57 f1ocnvfv 6534 . . . 4 ((𝐹:(1...(𝑁 + 1))–1-1-onto→(1...(𝑁 + 1)) ∧ (𝐹𝑥) ∈ (1...(𝑁 + 1))) → ((𝐹‘(𝐹𝑥)) = 𝑥 → (𝐹𝑥) = (𝐹𝑥)))
5853, 56, 57syl2anc 693 . . 3 ((𝜑𝑥 ∈ (1...(𝑁 + 1))) → ((𝐹‘(𝐹𝑥)) = 𝑥 → (𝐹𝑥) = (𝐹𝑥)))
5952, 58mpd 15 . 2 ((𝜑𝑥 ∈ (1...(𝑁 + 1))) → (𝐹𝑥) = (𝐹𝑥))
6015, 17, 59eqfnfvd 6314 1 (𝜑𝐹 = 𝐹)
Colors of variables: wff setvar class
Syntax hints:  wi 4  wo 383  wa 384   = wceq 1483  wcel 1990  {cab 2608  wne 2794  wral 2912  {crab 2916  Vcvv 3200  cdif 3571  cun 3572  cin 3573  c0 3915  {csn 4177  {cpr 4179  cop 4183  cmpt 4729   I cid 5023  ccnv 5113  cres 5116   Fn wfn 5883  wf 5884  1-1-ontowf1o 5887  cfv 5888  (class class class)co 6650  Fincfn 7955  1c1 9937   + caddc 9939  cmin 10266  cn 11020  2c2 11070  0cn0 11292  ...cfz 12326  #chash 13117
This theorem was proved from axioms:  ax-mp 5  ax-1 6  ax-2 7  ax-3 8  ax-gen 1722  ax-4 1737  ax-5 1839  ax-6 1888  ax-7 1935  ax-8 1992  ax-9 1999  ax-10 2019  ax-11 2034  ax-12 2047  ax-13 2246  ax-ext 2602  ax-rep 4771  ax-sep 4781  ax-nul 4789  ax-pow 4843  ax-pr 4906  ax-un 6949  ax-cnex 9992  ax-resscn 9993  ax-1cn 9994  ax-icn 9995  ax-addcl 9996  ax-addrcl 9997  ax-mulcl 9998  ax-mulrcl 9999  ax-mulcom 10000  ax-addass 10001  ax-mulass 10002  ax-distr 10003  ax-i2m1 10004  ax-1ne0 10005  ax-1rid 10006  ax-rnegex 10007  ax-rrecex 10008  ax-cnre 10009  ax-pre-lttri 10010  ax-pre-lttrn 10011  ax-pre-ltadd 10012  ax-pre-mulgt0 10013
This theorem depends on definitions:  df-bi 197  df-or 385  df-an 386  df-3or 1038  df-3an 1039  df-tru 1486  df-ex 1705  df-nf 1710  df-sb 1881  df-eu 2474  df-mo 2475  df-clab 2609  df-cleq 2615  df-clel 2618  df-nfc 2753  df-ne 2795  df-nel 2898  df-ral 2917  df-rex 2918  df-reu 2919  df-rmo 2920  df-rab 2921  df-v 3202  df-sbc 3436  df-csb 3534  df-dif 3577  df-un 3579  df-in 3581  df-ss 3588  df-pss 3590  df-nul 3916  df-if 4087  df-pw 4160  df-sn 4178  df-pr 4180  df-tp 4182  df-op 4184  df-uni 4437  df-int 4476  df-iun 4522  df-br 4654  df-opab 4713  df-mpt 4730  df-tr 4753  df-id 5024  df-eprel 5029  df-po 5035  df-so 5036  df-fr 5073  df-we 5075  df-xp 5120  df-rel 5121  df-cnv 5122  df-co 5123  df-dm 5124  df-rn 5125  df-res 5126  df-ima 5127  df-pred 5680  df-ord 5726  df-on 5727  df-lim 5728  df-suc 5729  df-iota 5851  df-fun 5890  df-fn 5891  df-f 5892  df-f1 5893  df-fo 5894  df-f1o 5895  df-fv 5896  df-riota 6611  df-ov 6653  df-oprab 6654  df-mpt2 6655  df-om 7066  df-1st 7168  df-2nd 7169  df-wrecs 7407  df-recs 7468  df-rdg 7506  df-1o 7560  df-oadd 7564  df-er 7742  df-en 7956  df-dom 7957  df-sdom 7958  df-fin 7959  df-card 8765  df-cda 8990  df-pnf 10076  df-mnf 10077  df-xr 10078  df-ltxr 10079  df-le 10080  df-sub 10268  df-neg 10269  df-nn 11021  df-2 11079  df-n0 11293  df-z 11378  df-uz 11688  df-fz 12327  df-hash 13118
This theorem is referenced by:  subfacp1lem5  31166
  Copyright terms: Public domain W3C validator