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Description: TODO: Fix comment. (Contributed by NM, 30-May-2013)
| Ref | Expression | ||
|---|---|---|---|
| Hypotheses | cdlemg12.l | ⊢ ≤ = ( le ‘ 𝐾 ) | |
| cdlemg12.j | ⊢ ∨ = ( join ‘ 𝐾 ) | ||
| cdlemg12.m | ⊢ ∧ = ( meet ‘ 𝐾 ) | ||
| cdlemg12.a | ⊢ 𝐴 = ( Atoms ‘ 𝐾 ) | ||
| cdlemg12.h | ⊢ 𝐻 = ( LHyp ‘ 𝐾 ) | ||
| cdlemg12.t | ⊢ 𝑇 = ( ( LTrn ‘ 𝐾 ) ‘ 𝑊 ) | ||
| cdlemg12b.r | ⊢ 𝑅 = ( ( trL ‘ 𝐾 ) ‘ 𝑊 ) | ||
| cdlemg31.n | ⊢ 𝑁 = ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) | ||
| Assertion | cdlemg31b0a | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( 𝑁 ∈ 𝐴 ∨ 𝑁 = ( 0. ‘ 𝐾 ) ) ) |
| Step | Hyp | Ref | Expression |
|---|---|---|---|
| 1 | cdlemg12.l | ⊢ ≤ = ( le ‘ 𝐾 ) | |
| 2 | cdlemg12.j | ⊢ ∨ = ( join ‘ 𝐾 ) | |
| 3 | cdlemg12.m | ⊢ ∧ = ( meet ‘ 𝐾 ) | |
| 4 | cdlemg12.a | ⊢ 𝐴 = ( Atoms ‘ 𝐾 ) | |
| 5 | cdlemg12.h | ⊢ 𝐻 = ( LHyp ‘ 𝐾 ) | |
| 6 | cdlemg12.t | ⊢ 𝑇 = ( ( LTrn ‘ 𝐾 ) ‘ 𝑊 ) | |
| 7 | cdlemg12b.r | ⊢ 𝑅 = ( ( trL ‘ 𝐾 ) ‘ 𝑊 ) | |
| 8 | cdlemg31.n | ⊢ 𝑁 = ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) | |
| 9 | simp1l | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → 𝐾 ∈ HL ) | |
| 10 | simp21l | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → 𝑃 ∈ 𝐴 ) | |
| 11 | simp23l | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → 𝑣 ∈ 𝐴 ) | |
| 12 | simp22l | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → 𝑄 ∈ 𝐴 ) | |
| 13 | simp1 | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ) | |
| 14 | simp3l | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → 𝐹 ∈ 𝑇 ) | |
| 15 | eqid | ⊢ ( 0. ‘ 𝐾 ) = ( 0. ‘ 𝐾 ) | |
| 16 | 15 4 5 6 7 | trlator0 | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ 𝐹 ∈ 𝑇 ) → ( ( 𝑅 ‘ 𝐹 ) ∈ 𝐴 ∨ ( 𝑅 ‘ 𝐹 ) = ( 0. ‘ 𝐾 ) ) ) |
| 17 | 13 14 16 | syl2anc | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( ( 𝑅 ‘ 𝐹 ) ∈ 𝐴 ∨ ( 𝑅 ‘ 𝐹 ) = ( 0. ‘ 𝐾 ) ) ) |
| 18 | simp22 | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ) | |
| 19 | 1 5 6 7 | trlle | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ 𝐹 ∈ 𝑇 ) → ( 𝑅 ‘ 𝐹 ) ≤ 𝑊 ) |
| 20 | 13 14 19 | syl2anc | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( 𝑅 ‘ 𝐹 ) ≤ 𝑊 ) |
| 21 | 17 20 | jca | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( ( ( 𝑅 ‘ 𝐹 ) ∈ 𝐴 ∨ ( 𝑅 ‘ 𝐹 ) = ( 0. ‘ 𝐾 ) ) ∧ ( 𝑅 ‘ 𝐹 ) ≤ 𝑊 ) ) |
| 22 | simp23 | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) | |
| 23 | simp3r | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) | |
| 24 | 23 | necomd | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( 𝑅 ‘ 𝐹 ) ≠ 𝑣 ) |
| 25 | 1 2 15 4 5 | lhp2at0ne | ⊢ ( ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ 𝑃 ∈ 𝐴 ) ∧ ( ( ( ( 𝑅 ‘ 𝐹 ) ∈ 𝐴 ∨ ( 𝑅 ‘ 𝐹 ) = ( 0. ‘ 𝐾 ) ) ∧ ( 𝑅 ‘ 𝐹 ) ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝑅 ‘ 𝐹 ) ≠ 𝑣 ) → ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ≠ ( 𝑃 ∨ 𝑣 ) ) |
| 26 | 13 18 10 21 22 24 25 | syl321anc | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ≠ ( 𝑃 ∨ 𝑣 ) ) |
| 27 | 26 | necomd | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( 𝑃 ∨ 𝑣 ) ≠ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) |
| 28 | 2 3 15 4 | 2at0mat0 | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑃 ∈ 𝐴 ∧ 𝑣 ∈ 𝐴 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ( ( 𝑅 ‘ 𝐹 ) ∈ 𝐴 ∨ ( 𝑅 ‘ 𝐹 ) = ( 0. ‘ 𝐾 ) ) ∧ ( 𝑃 ∨ 𝑣 ) ≠ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) ) → ( ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) ∈ 𝐴 ∨ ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) = ( 0. ‘ 𝐾 ) ) ) |
| 29 | 9 10 11 12 17 27 28 | syl33anc | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) ∈ 𝐴 ∨ ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) = ( 0. ‘ 𝐾 ) ) ) |
| 30 | 8 | eleq1i | ⊢ ( 𝑁 ∈ 𝐴 ↔ ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) ∈ 𝐴 ) |
| 31 | 8 | eqeq1i | ⊢ ( 𝑁 = ( 0. ‘ 𝐾 ) ↔ ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) = ( 0. ‘ 𝐾 ) ) |
| 32 | 30 31 | orbi12i | ⊢ ( ( 𝑁 ∈ 𝐴 ∨ 𝑁 = ( 0. ‘ 𝐾 ) ) ↔ ( ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) ∈ 𝐴 ∨ ( ( 𝑃 ∨ 𝑣 ) ∧ ( 𝑄 ∨ ( 𝑅 ‘ 𝐹 ) ) ) = ( 0. ‘ 𝐾 ) ) ) |
| 33 | 29 32 | sylibr | ⊢ ( ( ( 𝐾 ∈ HL ∧ 𝑊 ∈ 𝐻 ) ∧ ( ( 𝑃 ∈ 𝐴 ∧ ¬ 𝑃 ≤ 𝑊 ) ∧ ( 𝑄 ∈ 𝐴 ∧ ¬ 𝑄 ≤ 𝑊 ) ∧ ( 𝑣 ∈ 𝐴 ∧ 𝑣 ≤ 𝑊 ) ) ∧ ( 𝐹 ∈ 𝑇 ∧ 𝑣 ≠ ( 𝑅 ‘ 𝐹 ) ) ) → ( 𝑁 ∈ 𝐴 ∨ 𝑁 = ( 0. ‘ 𝐾 ) ) ) |