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Mirrors > Home > MPE Home > Th. List > ifan | Structured version Visualization version GIF version |
Description: Rewrite a conjunction in a conditional as two nested conditionals. (Contributed by Mario Carneiro, 28-Jul-2014.) |
Ref | Expression |
---|---|
ifan | ⊢ if((𝜑 ∧ 𝜓), 𝐴, 𝐵) = if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵) |
Step | Hyp | Ref | Expression |
---|---|---|---|
1 | iftrue 4476 | . . 3 ⊢ (𝜑 → if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵) = if(𝜓, 𝐴, 𝐵)) | |
2 | ibar 531 | . . . 4 ⊢ (𝜑 → (𝜓 ↔ (𝜑 ∧ 𝜓))) | |
3 | 2 | ifbid 4492 | . . 3 ⊢ (𝜑 → if(𝜓, 𝐴, 𝐵) = if((𝜑 ∧ 𝜓), 𝐴, 𝐵)) |
4 | 1, 3 | eqtr2d 2860 | . 2 ⊢ (𝜑 → if((𝜑 ∧ 𝜓), 𝐴, 𝐵) = if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵)) |
5 | simpl 485 | . . . . 5 ⊢ ((𝜑 ∧ 𝜓) → 𝜑) | |
6 | 5 | con3i 157 | . . . 4 ⊢ (¬ 𝜑 → ¬ (𝜑 ∧ 𝜓)) |
7 | 6 | iffalsed 4481 | . . 3 ⊢ (¬ 𝜑 → if((𝜑 ∧ 𝜓), 𝐴, 𝐵) = 𝐵) |
8 | iffalse 4479 | . . 3 ⊢ (¬ 𝜑 → if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵) = 𝐵) | |
9 | 7, 8 | eqtr4d 2862 | . 2 ⊢ (¬ 𝜑 → if((𝜑 ∧ 𝜓), 𝐴, 𝐵) = if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵)) |
10 | 4, 9 | pm2.61i 184 | 1 ⊢ if((𝜑 ∧ 𝜓), 𝐴, 𝐵) = if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵) |
Colors of variables: wff setvar class |
Syntax hints: ¬ wn 3 ∧ wa 398 = wceq 1536 ifcif 4470 |
This theorem was proved from axioms: ax-mp 5 ax-1 6 ax-2 7 ax-3 8 ax-gen 1795 ax-4 1809 ax-5 1910 ax-6 1969 ax-7 2014 ax-8 2115 ax-9 2123 ax-ext 2796 |
This theorem depends on definitions: df-bi 209 df-an 399 df-or 844 df-ex 1780 df-sb 2069 df-clab 2803 df-cleq 2817 df-clel 2896 df-if 4471 |
This theorem is referenced by: itg0 24383 iblre 24397 itgreval 24400 iblss 24408 iblss2 24409 itgle 24413 itgss 24415 itgeqa 24417 iblconst 24421 itgconst 24422 ibladdlem 24423 iblabslem 24431 iblabsr 24433 iblmulc2 24434 itgsplit 24439 itgcn 24446 mrsubrn 32764 itg2gt0cn 34951 ibladdnclem 34952 iblabsnclem 34959 iblmulc2nc 34961 bddiblnc 34966 iblsplit 42257 |
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