author | wenzelm |
Fri, 05 Apr 2019 17:05:32 +0200 | |
changeset 70067 | 9b34dbeb1103 |
parent 69597 | ff784d5a5bfb |
child 74397 | e80c4cde6064 |
permissions | -rw-r--r-- |
30439 | 1 |
(* Title: HOL/Decision_Procs/mir_tac.ML |
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Author: Amine Chaieb, TU Muenchen |
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*) |
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signature MIR_TAC = |
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sig |
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val mir_tac: Proof.context -> bool -> int -> tactic |
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end |
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structure Mir_Tac: MIR_TAC = |
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struct |
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val mir_ss = |
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simpset_of (\<^context> delsimps [@{thm "of_int_eq_iff"}, @{thm "of_int_less_iff"}, @{thm "of_int_le_iff"}] |
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addsimps @{thms "iff_real_of_int"}); |
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val nT = HOLogic.natT; |
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val nat_arith = [@{thm diff_nat_numeral}]; |
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val comp_arith = [@{thm "Let_def"}, @{thm "if_False"}, @{thm "if_True"}, @{thm "add_0"}, |
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@{thm "add_Suc"}, @{thm add_numeral_left}, @{thm mult_numeral_left(1)}] @ |
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Removed some legacy theorems; minor adjustments to simplification rules; new material on homotopic paths
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(map (fn th => th RS sym) [@{thm "numeral_One"}]) |
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@ @{thms arith_simps} @ nat_arith @ @{thms rel_simps} |
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val ths = [@{thm "mult_numeral_1"}, @{thm "mult_numeral_1_right"}, |
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Coercion "real" now has type nat => real only and is no longer overloaded. Type class "real_of" is gone. Many duplicate theorems removed.
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@{thm of_nat_numeral}, |
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Coercion "real" now has type nat => real only and is no longer overloaded. Type class "real_of" is gone. Many duplicate theorems removed.
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@{thm "of_nat_Suc"}, @{thm "of_nat_1"}, |
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@{thm "of_int_0"}, @{thm "of_nat_0"}, |
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@{thm "div_by_0"}, |
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@{thm "divide_divide_eq_left"}, @{thm "times_divide_eq_right"}, |
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@{thm "times_divide_eq_left"}, @{thm "divide_divide_eq_right"}, |
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@{thm uminus_add_conv_diff [symmetric]}, @{thm "minus_divide_left"}] |
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val comp_ths = distinct Thm.eq_thm (ths @ comp_arith @ @{thms simp_thms}); |
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fun prepare_for_mir q fm = |
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let |
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val ps = Logic.strip_params fm |
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val hs = map HOLogic.dest_Trueprop (Logic.strip_assums_hyp fm) |
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val c = HOLogic.dest_Trueprop (Logic.strip_assums_concl fm) |
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fun mk_all ((s, T), (P,n)) = |
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if Term.is_dependent P then |
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(HOLogic.all_const T $ Abs (s, T, P), n) |
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else (incr_boundvars ~1 P, n-1) |
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fun mk_all2 (v, t) = HOLogic.all_const (fastype_of v) $ lambda v t; |
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val rhs = hs |
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(* val (rhs,irhs) = List.partition (relevant (rev ps)) hs *) |
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val np = length ps |
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val (fm',np) = List.foldr (fn ((x, T), (fm,n)) => mk_all ((x, T), (fm,n))) |
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(List.foldr HOLogic.mk_imp c rhs, np) ps |
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val (vs, _) = List.partition (fn t => q orelse (type_of t) = nT) |
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(Misc_Legacy.term_frees fm' @ Misc_Legacy.term_vars fm'); |
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val fm2 = List.foldr mk_all2 fm' vs |
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in (fm2, np + length vs, length rhs) end; |
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(*Object quantifier to meta --*) |
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fun spec_step n th = if (n=0) then th else (spec_step (n-1) th) RS spec ; |
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(* object implication to meta---*) |
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fun mp_step n th = if (n=0) then th else (mp_step (n-1) th) RS mp; |
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fun mir_tac ctxt q = |
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proper context for basic Simplifier operations: rewrite_rule, rewrite_goals_rule, rewrite_goals_tac etc.;
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Object_Logic.atomize_prems_tac ctxt |
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THEN' simp_tac (put_simpset HOL_basic_ss ctxt |
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addsimps [@{thm "abs_ge_zero"}] addsimps @{thms simp_thms}) |
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proper context for compose_tac, Splitter.split_tac (relevant for unify trace options);
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THEN' (REPEAT_DETERM o split_tac ctxt [@{thm "split_min"}, @{thm "split_max"}, @{thm "abs_split"}]) |
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THEN' SUBGOAL (fn (g, i) => |
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let |
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(* Transform the term*) |
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val (t,np,nh) = prepare_for_mir q g |
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(* Some simpsets for dealing with mod div abs and nat*) |
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val mod_div_simpset = put_simpset HOL_basic_ss ctxt |
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addsimps [refl, @{thm mod_add_eq}, |
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@{thm mod_self}, |
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@{thm div_0}, @{thm mod_0}, |
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@{thm div_by_1}, @{thm mod_by_1}, @{thm div_by_Suc_0}, @{thm mod_by_Suc_0}, |
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@{thm "Suc_eq_plus1"}] |
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addsimps @{thms add.assoc add.commute add.left_commute} |
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addsimprocs [\<^simproc>\<open>cancel_div_mod_nat\<close>, \<^simproc>\<open>cancel_div_mod_int\<close>] |
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val simpset0 = put_simpset HOL_basic_ss ctxt |
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addsimps @{thms minus_div_mult_eq_mod [symmetric] Suc_eq_plus1} |
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addsimps comp_ths |
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|> fold Splitter.add_split |
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[@{thm "split_zdiv"}, @{thm "split_zmod"}, @{thm "split_div'"}, |
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@{thm "split_min"}, @{thm "split_max"}] |
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(* Simp rules for changing (n::int) to int n *) |
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val simpset1 = put_simpset HOL_basic_ss ctxt |
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addsimps @{thms int_dvd_int_iff [symmetric] of_nat_add of_nat_mult} @ |
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map (fn r => r RS sym) [@{thm "int_int_eq"}, @{thm "zle_int"}, @{thm "of_nat_less_iff"}, @{thm nat_numeral}] |
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|> Splitter.add_split @{thm "zdiff_int_split"} |
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(*simp rules for elimination of int n*) |
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val simpset2 = put_simpset HOL_basic_ss ctxt |
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addsimps [@{thm "nat_0_le"}, @{thm "all_nat"}, @{thm "ex_nat"}, @{thm zero_le_numeral}, |
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@{thm "of_nat_0"}, @{thm "of_nat_1"}] |
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|> fold Simplifier.add_cong [@{thm "conj_le_cong"}, @{thm "imp_le_cong"}] |
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(* simp rules for elimination of abs *) |
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val ct = Thm.cterm_of ctxt (HOLogic.mk_Trueprop t) |
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(* Theorem for the nat --> int transformation *) |
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val pre_thm = Seq.hd (EVERY |
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[simp_tac mod_div_simpset 1, simp_tac simpset0 1, |
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TRY (simp_tac simpset1 1), TRY (simp_tac simpset2 1), |
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TRY (simp_tac (put_simpset mir_ss ctxt) 1)] |
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(Thm.trivial ct)) |
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fun assm_tac i = REPEAT_DETERM_N nh (assume_tac ctxt i) |
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(* The result of the quantifier elimination *) |
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val (th, tac) = |
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case Thm.prop_of pre_thm of |
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Const (\<^const_name>\<open>Pure.imp\<close>, _) $ (Const (\<^const_name>\<open>Trueprop\<close>, _) $ t1) $ _ => |
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let |
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val pth = mirfr_oracle (ctxt, Envir.eta_long [] t1) |
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in |
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((pth RS iffD2) RS pre_thm, |
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assm_tac (i + 1) THEN (if q then I else TRY) (resolve_tac ctxt [TrueI] i)) |
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end |
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| _ => (pre_thm, assm_tac i) |
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in resolve_tac ctxt [((mp_step nh) o (spec_step np)) th] i THEN tac end); |
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end |