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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 4465 | . . 3 ⊢ (𝜑 → if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵) = if(𝜓, 𝐴, 𝐵)) | |
2 | ibar 529 | . . . 4 ⊢ (𝜑 → (𝜓 ↔ (𝜑 ∧ 𝜓))) | |
3 | 2 | ifbid 4482 | . . 3 ⊢ (𝜑 → if(𝜓, 𝐴, 𝐵) = if((𝜑 ∧ 𝜓), 𝐴, 𝐵)) |
4 | 1, 3 | eqtr2d 2779 | . 2 ⊢ (𝜑 → if((𝜑 ∧ 𝜓), 𝐴, 𝐵) = if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵)) |
5 | simpl 483 | . . . . 5 ⊢ ((𝜑 ∧ 𝜓) → 𝜑) | |
6 | 5 | con3i 154 | . . . 4 ⊢ (¬ 𝜑 → ¬ (𝜑 ∧ 𝜓)) |
7 | 6 | iffalsed 4470 | . . 3 ⊢ (¬ 𝜑 → if((𝜑 ∧ 𝜓), 𝐴, 𝐵) = 𝐵) |
8 | iffalse 4468 | . . 3 ⊢ (¬ 𝜑 → if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵) = 𝐵) | |
9 | 7, 8 | eqtr4d 2781 | . 2 ⊢ (¬ 𝜑 → if((𝜑 ∧ 𝜓), 𝐴, 𝐵) = if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵)) |
10 | 4, 9 | pm2.61i 182 | 1 ⊢ if((𝜑 ∧ 𝜓), 𝐴, 𝐵) = if(𝜑, if(𝜓, 𝐴, 𝐵), 𝐵) |
Colors of variables: wff setvar class |
Syntax hints: ¬ wn 3 ∧ wa 396 = wceq 1539 ifcif 4459 |
This theorem was proved from axioms: ax-mp 5 ax-1 6 ax-2 7 ax-3 8 ax-gen 1798 ax-4 1812 ax-5 1913 ax-6 1971 ax-7 2011 ax-8 2108 ax-9 2116 ax-ext 2709 |
This theorem depends on definitions: df-bi 206 df-an 397 df-or 845 df-ex 1783 df-sb 2068 df-clab 2716 df-cleq 2730 df-clel 2816 df-if 4460 |
This theorem is referenced by: itg0 24944 iblre 24958 itgreval 24961 iblss 24969 iblss2 24970 itgle 24974 itgss 24976 itgeqa 24978 iblconst 24982 itgconst 24983 ibladdlem 24984 iblabslem 24992 iblabsr 24994 iblmulc2 24995 itgsplit 25000 bddiblnc 25006 itgcn 25009 mrsubrn 33475 itg2gt0cn 35832 ibladdnclem 35833 iblabsnclem 35840 iblmulc2nc 35842 iblsplit 43507 |
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