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| Mirrors > Home > MPE Home > Th. List > prlngeu | Structured version Visualization version GIF version | ||
| Description: Given a line 𝐴 and a point 𝑋 not on 𝐴, a unique line parallel to 𝐴 can be drawn through 𝑋. Theorem 12.13 of [Schwabhauser] p. 124. (Contributed by Thierry Arnoux, 5-Jul-2026.) |
| Ref | Expression |
|---|---|
| prlngeu.p | ⊢ 𝑃 = (Base‘𝐺) |
| prlngeu.l | ⊢ 𝐿 = (LineG‘𝐺) |
| prlngeu.r | ⊢ ∥ = (parlnG‘𝐺) |
| prlngeu.g | ⊢ (𝜑 → 𝐺 ∈ TarskiG) |
| prlngeu.a | ⊢ (𝜑 → 𝐴 ∈ ran 𝐿) |
| prlngeu.x | ⊢ (𝜑 → 𝑋 ∈ (𝑃 ∖ 𝐴)) |
| prlngeu.1 | ⊢ (𝜑 → 𝐺 ∈ TarskiGE) |
| Ref | Expression |
|---|---|
| prlngeu | ⊢ (𝜑 → ∃!𝑏 ∈ ran 𝐿(𝐴 ∥ 𝑏 ∧ 𝑋 ∈ 𝑏)) |
| Step | Hyp | Ref | Expression |
|---|---|---|---|
| 1 | prlngeu.p | . . 3 ⊢ 𝑃 = (Base‘𝐺) | |
| 2 | prlngeu.l | . . 3 ⊢ 𝐿 = (LineG‘𝐺) | |
| 3 | prlngeu.r | . . 3 ⊢ ∥ = (parlnG‘𝐺) | |
| 4 | prlngeu.g | . . 3 ⊢ (𝜑 → 𝐺 ∈ TarskiG) | |
| 5 | prlngeu.a | . . 3 ⊢ (𝜑 → 𝐴 ∈ ran 𝐿) | |
| 6 | prlngeu.x | . . . 4 ⊢ (𝜑 → 𝑋 ∈ (𝑃 ∖ 𝐴)) | |
| 7 | 6 | eldifad 3918 | . . 3 ⊢ (𝜑 → 𝑋 ∈ 𝑃) |
| 8 | 1, 2, 3, 4, 5, 7 | prlngex 29230 | . 2 ⊢ (𝜑 → ∃𝑏 ∈ ran 𝐿(𝐴 ∥ 𝑏 ∧ 𝑋 ∈ 𝑏)) |
| 9 | prlngeu.1 | . . 3 ⊢ (𝜑 → 𝐺 ∈ TarskiGE) | |
| 10 | 1, 2, 3, 4, 5, 6, 9 | prlngmo 29233 | . 2 ⊢ (𝜑 → ∃*𝑏 ∈ ran 𝐿(𝐴 ∥ 𝑏 ∧ 𝑋 ∈ 𝑏)) |
| 11 | reu5 3373 | . 2 ⊢ (∃!𝑏 ∈ ran 𝐿(𝐴 ∥ 𝑏 ∧ 𝑋 ∈ 𝑏) ↔ (∃𝑏 ∈ ran 𝐿(𝐴 ∥ 𝑏 ∧ 𝑋 ∈ 𝑏) ∧ ∃*𝑏 ∈ ran 𝐿(𝐴 ∥ 𝑏 ∧ 𝑋 ∈ 𝑏))) | |
| 12 | 8, 10, 11 | sylanbrc 595 | 1 ⊢ (𝜑 → ∃!𝑏 ∈ ran 𝐿(𝐴 ∥ 𝑏 ∧ 𝑋 ∈ 𝑏)) |
| Colors of variables: wff setvar class |
| This proof depends on syntax axioms: → wi 4 ∧ wa 401 = wceq 1570 ∈ wcel 2146 ∃wrex 3091 ∃!wreu 3369 ∃*wrmo 3370 ∖ cdif 3903 class class class wbr 5111 ran crn 5664 ‘cfv 6540 Basecbs 17286 TarskiGcstrkg 28725 TarskiGEcstrkge 28730 LineGclng 28732 parlnGcprlng 29215 |
| This proof depends on axioms: ax-mp 5 ax-1 6 ax-2 7 ax-3 8 ax-gen 1828 ax-4 1842 ax-5 1943 ax-6 2000 ax-7 2041 ax-8 2148 ax-9 2156 ax-10 2179 ax-11 2195 ax-12 2216 ax-ext 2737 ax-rep 5240 ax-sep 5259 ax-nul 5271 ax-pow 5338 ax-pr 5406 ax-un 7738 ax-cnex 11167 ax-resscn 11168 ax-1cn 11169 ax-icn 11170 ax-addcl 11171 ax-addrcl 11172 ax-mulcl 11173 ax-mulrcl 11174 ax-mulcom 11175 ax-addass 11176 ax-mulass 11177 ax-distr 11178 ax-i2m1 11179 ax-1ne0 11180 ax-1rid 11181 ax-rnegex 11182 ax-rrecex 11183 ax-cnre 11184 ax-pre-lttri 11185 ax-pre-lttrn 11186 ax-pre-ltadd 11187 ax-pre-mulgt0 11188 |
| This proof depends on definitions: df-bi 210 df-an 402 df-or 862 df-3or 1104 df-3an 1105 df-tru 1573 df-fal 1583 df-ex 1813 df-nf 1817 df-sb 2100 df-mo 2569 df-eu 2599 df-clab 2744 df-cleq 2757 df-clel 2840 df-nfc 2914 df-ne 2961 df-nel 3067 df-ral 3082 df-rex 3092 df-rmo 3371 df-reu 3372 df-rab 3419 df-v 3459 df-sbc 3747 df-csb 3855 df-dif 3909 df-un 3911 df-in 3913 df-ss 3923 df-pss 3926 df-nul 4287 df-if 4490 df-pw 4566 df-sn 4592 df-pr 4594 df-tp 4596 df-op 4598 df-uni 4875 df-int 4915 df-iun 4960 df-br 5112 df-opab 5176 df-mpt 5195 df-tr 5221 df-id 5558 df-eprel 5563 df-po 5571 df-so 5572 df-fr 5616 df-we 5618 df-xp 5669 df-rel 5670 df-cnv 5671 df-co 5672 df-dm 5673 df-rn 5674 df-res 5675 df-ima 5676 df-pred 6306 df-ord 6367 df-on 6368 df-lim 6369 df-suc 6370 df-iota 6496 df-fun 6542 df-fn 6543 df-f 6544 df-f1 6545 df-fo 6546 df-f1o 6547 df-fv 6548 df-riota 7373 df-ov 7419 df-oprab 7420 df-mpo 7421 df-om 7865 df-1st 7988 df-2nd 7989 df-frecs 8280 df-wrecs 8311 df-recs 8360 df-rdg 8399 df-1o 8455 df-oadd 8459 df-er 8696 df-map 8828 df-pm 8829 df-en 8946 df-dom 8947 df-sdom 8948 df-fin 8949 df-dju 9899 df-card 9937 df-pnf 11256 df-mnf 11257 df-xr 11258 df-ltxr 11259 df-le 11260 df-sub 11454 df-neg 11455 df-nn 12245 df-2 12314 df-3 12315 df-n0 12516 df-xnn0 12589 df-z 12603 df-uz 12874 df-fz 13547 df-fzo 13695 df-hash 14380 df-word 14564 df-concat 14621 df-s1 14648 df-s2 14904 df-s3 14905 df-trkgc 28746 df-trkgb 28747 df-trkgcb 28748 df-trkge 28749 df-trkgld 28750 df-trkg 28751 df-cgrg 28809 df-ismt 28831 df-leg 28881 df-hlg 28899 df-mir 28959 df-rag 29003 df-perpg 29005 df-hpg 29069 df-plng 29085 df-mid 29112 df-lmi 29113 df-cgra 29148 df-prlng 29216 |
| This theorem is used by: (None) |
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