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Mathbox for Alexander van der Vekens |
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Mirrors > Home > MPE Home > Th. List > Mathboxes > 0dig2nn0e | Structured version Visualization version GIF version |
Description: The last bit of an even integer is 0. (Contributed by AV, 3-Jun-2010.) |
Ref | Expression |
---|---|
0dig2nn0e | ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (0(digit‘2)𝑁) = 0) |
Step | Hyp | Ref | Expression |
---|---|---|---|
1 | 2nn 11185 | . . . 4 ⊢ 2 ∈ ℕ | |
2 | 1 | a1i 11 | . . 3 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → 2 ∈ ℕ) |
3 | 0nn0 11307 | . . . 4 ⊢ 0 ∈ ℕ0 | |
4 | 3 | a1i 11 | . . 3 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → 0 ∈ ℕ0) |
5 | nn0rp0 12279 | . . . 4 ⊢ (𝑁 ∈ ℕ0 → 𝑁 ∈ (0[,)+∞)) | |
6 | 5 | adantr 481 | . . 3 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → 𝑁 ∈ (0[,)+∞)) |
7 | nn0digval 42394 | . . 3 ⊢ ((2 ∈ ℕ ∧ 0 ∈ ℕ0 ∧ 𝑁 ∈ (0[,)+∞)) → (0(digit‘2)𝑁) = ((⌊‘(𝑁 / (2↑0))) mod 2)) | |
8 | 2, 4, 6, 7 | syl3anc 1326 | . 2 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (0(digit‘2)𝑁) = ((⌊‘(𝑁 / (2↑0))) mod 2)) |
9 | 2cn 11091 | . . . . . . . 8 ⊢ 2 ∈ ℂ | |
10 | exp0 12864 | . . . . . . . 8 ⊢ (2 ∈ ℂ → (2↑0) = 1) | |
11 | 9, 10 | mp1i 13 | . . . . . . 7 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (2↑0) = 1) |
12 | 11 | oveq2d 6666 | . . . . . 6 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (𝑁 / (2↑0)) = (𝑁 / 1)) |
13 | nn0cn 11302 | . . . . . . . 8 ⊢ (𝑁 ∈ ℕ0 → 𝑁 ∈ ℂ) | |
14 | 13 | div1d 10793 | . . . . . . 7 ⊢ (𝑁 ∈ ℕ0 → (𝑁 / 1) = 𝑁) |
15 | 14 | adantr 481 | . . . . . 6 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (𝑁 / 1) = 𝑁) |
16 | 12, 15 | eqtrd 2656 | . . . . 5 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (𝑁 / (2↑0)) = 𝑁) |
17 | 16 | fveq2d 6195 | . . . 4 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (⌊‘(𝑁 / (2↑0))) = (⌊‘𝑁)) |
18 | 17 | oveq1d 6665 | . . 3 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → ((⌊‘(𝑁 / (2↑0))) mod 2) = ((⌊‘𝑁) mod 2)) |
19 | nn0z 11400 | . . . . . . 7 ⊢ (𝑁 ∈ ℕ0 → 𝑁 ∈ ℤ) | |
20 | flid 12609 | . . . . . . 7 ⊢ (𝑁 ∈ ℤ → (⌊‘𝑁) = 𝑁) | |
21 | 19, 20 | syl 17 | . . . . . 6 ⊢ (𝑁 ∈ ℕ0 → (⌊‘𝑁) = 𝑁) |
22 | 21 | adantr 481 | . . . . 5 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (⌊‘𝑁) = 𝑁) |
23 | 22 | oveq1d 6665 | . . . 4 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → ((⌊‘𝑁) mod 2) = (𝑁 mod 2)) |
24 | nn0z 11400 | . . . . . 6 ⊢ ((𝑁 / 2) ∈ ℕ0 → (𝑁 / 2) ∈ ℤ) | |
25 | 24 | adantl 482 | . . . . 5 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (𝑁 / 2) ∈ ℤ) |
26 | nn0re 11301 | . . . . . . 7 ⊢ (𝑁 ∈ ℕ0 → 𝑁 ∈ ℝ) | |
27 | 26 | adantr 481 | . . . . . 6 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → 𝑁 ∈ ℝ) |
28 | 2rp 11837 | . . . . . 6 ⊢ 2 ∈ ℝ+ | |
29 | mod0 12675 | . . . . . 6 ⊢ ((𝑁 ∈ ℝ ∧ 2 ∈ ℝ+) → ((𝑁 mod 2) = 0 ↔ (𝑁 / 2) ∈ ℤ)) | |
30 | 27, 28, 29 | sylancl 694 | . . . . 5 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → ((𝑁 mod 2) = 0 ↔ (𝑁 / 2) ∈ ℤ)) |
31 | 25, 30 | mpbird 247 | . . . 4 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (𝑁 mod 2) = 0) |
32 | 23, 31 | eqtrd 2656 | . . 3 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → ((⌊‘𝑁) mod 2) = 0) |
33 | 18, 32 | eqtrd 2656 | . 2 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → ((⌊‘(𝑁 / (2↑0))) mod 2) = 0) |
34 | 8, 33 | eqtrd 2656 | 1 ⊢ ((𝑁 ∈ ℕ0 ∧ (𝑁 / 2) ∈ ℕ0) → (0(digit‘2)𝑁) = 0) |
Colors of variables: wff setvar class |
Syntax hints: → wi 4 ↔ wb 196 ∧ wa 384 = wceq 1483 ∈ wcel 1990 ‘cfv 5888 (class class class)co 6650 ℂcc 9934 ℝcr 9935 0cc0 9936 1c1 9937 +∞cpnf 10071 / cdiv 10684 ℕcn 11020 2c2 11070 ℕ0cn0 11292 ℤcz 11377 ℝ+crp 11832 [,)cico 12177 ⌊cfl 12591 mod cmo 12668 ↑cexp 12860 digitcdig 42389 |
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 ax-pre-sup 10014 |
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-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-er 7742 df-en 7956 df-dom 7957 df-sdom 7958 df-sup 8348 df-inf 8349 df-pnf 10076 df-mnf 10077 df-xr 10078 df-ltxr 10079 df-le 10080 df-sub 10268 df-neg 10269 df-div 10685 df-nn 11021 df-2 11079 df-n0 11293 df-z 11378 df-uz 11688 df-rp 11833 df-ico 12181 df-fl 12593 df-mod 12669 df-seq 12802 df-exp 12861 df-dig 42390 |
This theorem is referenced by: nn0sumshdiglemA 42413 |
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