| author | wenzelm | 
| Sat, 10 Oct 2015 21:12:37 +0200 | |
| changeset 61389 | 509d7ee638f8 | 
| parent 61308 | bb0596c7f921 | 
| child 61681 | ca53150406c9 | 
| permissions | -rw-r--r-- | 
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changeset | 1 | (* Title: HOL/Tools/inductive.ML | 
| 5094 | 2 | Author: Lawrence C Paulson, Cambridge University Computer Laboratory | 
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changeset | 3 | Author: Stefan Berghofer and Markus Wenzel, TU Muenchen | 
| 5094 | 4 | |
| 6424 | 5 | (Co)Inductive Definition module for HOL. | 
| 5094 | 6 | |
| 7 | Features: | |
| 6424 | 8 | * least or greatest fixedpoints | 
| 9 | * mutually recursive definitions | |
| 10 | * definitions involving arbitrary monotone operators | |
| 11 | * automatically proves introduction and elimination rules | |
| 5094 | 12 | |
| 13 | Introduction rules have the form | |
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changeset | 14 | [| M Pj ti, ..., Q x, ... |] ==> Pk t | 
| 5094 | 15 | where M is some monotone operator (usually the identity) | 
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changeset | 16 | Q x is any side condition on the free variables | 
| 5094 | 17 | ti, t are any terms | 
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changeset | 18 | Pj, Pk are two of the predicates being defined in mutual recursion | 
| 5094 | 19 | *) | 
| 20 | ||
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changeset | 21 | signature BASIC_INDUCTIVE = | 
| 5094 | 22 | sig | 
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changeset | 23 | type inductive_result = | 
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changeset | 24 |     {preds: term list, elims: thm list, raw_induct: thm,
 | 
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changeset | 25 | induct: thm, inducts: thm list, intrs: thm list, eqs: thm list} | 
| 45290 | 26 | val transform_result: morphism -> inductive_result -> inductive_result | 
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changeset | 27 |   type inductive_info = {names: string list, coind: bool} * inductive_result
 | 
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changeset | 28 | val the_inductive: Proof.context -> string -> inductive_info | 
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changeset | 29 | val print_inductives: bool -> Proof.context -> unit | 
| 45651 | 30 | val get_monos: Proof.context -> thm list | 
| 18728 | 31 | val mono_add: attribute | 
| 32 | val mono_del: attribute | |
| 53994 | 33 | val mk_cases_tac: Proof.context -> tactic | 
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changeset | 34 | val mk_cases: Proof.context -> term -> thm | 
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changeset | 35 | val inductive_forall_def: thm | 
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changeset | 36 | val rulify: Proof.context -> thm -> thm | 
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changeset | 37 | val inductive_cases: (Attrib.binding * string list) list -> local_theory -> | 
| 53995 | 38 | (string * thm list) list * local_theory | 
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changeset | 39 | val inductive_cases_i: (Attrib.binding * term list) list -> local_theory -> | 
| 53995 | 40 | (string * thm list) list * local_theory | 
| 59845 | 41 | val ind_cases_rules: Proof.context -> | 
| 42 | string list -> (binding * string option * mixfix) list -> thm list | |
| 53995 | 43 | val inductive_simps: (Attrib.binding * string list) list -> local_theory -> | 
| 44 | (string * thm list) list * local_theory | |
| 45 | val inductive_simps_i: (Attrib.binding * term list) list -> local_theory -> | |
| 46 | (string * thm list) list * local_theory | |
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changeset | 47 | type inductive_flags = | 
| 33669 | 48 |     {quiet_mode: bool, verbose: bool, alt_name: binding, coind: bool,
 | 
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changeset | 49 | no_elim: bool, no_ind: bool, skip_mono: bool} | 
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changeset | 50 | val add_inductive_i: | 
| 29581 | 51 | inductive_flags -> ((binding * typ) * mixfix) list -> | 
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type Attrib.binding abbreviates Name.binding without attributes;
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changeset | 52 | (string * typ) list -> (Attrib.binding * term) list -> thm list -> local_theory -> | 
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changeset | 53 | inductive_result * local_theory | 
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changeset | 54 | val add_inductive: bool -> bool -> | 
| 29581 | 55 | (binding * string option * mixfix) list -> | 
| 56 | (binding * string option * mixfix) list -> | |
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changeset | 57 | (Attrib.binding * string) list -> | 
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changeset | 58 | (Facts.ref * Token.src list) list -> | 
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changeset | 59 | local_theory -> inductive_result * local_theory | 
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changeset | 60 | val add_inductive_global: inductive_flags -> | 
| 29581 | 61 | ((binding * typ) * mixfix) list -> (string * typ) list -> (Attrib.binding * term) list -> | 
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changeset | 62 | thm list -> theory -> inductive_result * theory | 
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changeset | 63 | val arities_of: thm -> (string * int) list | 
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changeset | 64 | val params_of: thm -> term list | 
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changeset | 65 | val partition_rules: thm -> thm list -> (string * thm list) list | 
| 25822 | 66 | val partition_rules': thm -> (thm * 'a) list -> (string * (thm * 'a) list) list | 
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changeset | 67 | val unpartition_rules: thm list -> (string * 'a list) list -> 'a list | 
| 60362 | 68 | val infer_intro_vars: theory -> thm -> int -> thm list -> term list list | 
| 5094 | 69 | end; | 
| 70 | ||
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changeset | 71 | signature INDUCTIVE = | 
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changeset | 72 | sig | 
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changeset | 73 | include BASIC_INDUCTIVE | 
| 59532 | 74 | val select_disj_tac: Proof.context -> int -> int -> int -> tactic | 
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changeset | 75 | type add_ind_def = | 
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changeset | 76 | inductive_flags -> | 
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changeset | 77 | term list -> (Attrib.binding * term) list -> thm list -> | 
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changeset | 78 | term list -> (binding * mixfix) list -> | 
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changeset | 79 | local_theory -> inductive_result * local_theory | 
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changeset | 80 | val declare_rules: binding -> bool -> bool -> string list -> term list -> | 
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changeset | 81 | thm list -> binding list -> Token.src list list -> (thm * string list * int) list -> | 
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changeset | 82 | thm list -> thm -> local_theory -> thm list * thm list * thm list * thm * thm list * local_theory | 
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changeset | 83 | val add_ind_def: add_ind_def | 
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changeset | 84 | val gen_add_inductive_i: add_ind_def -> inductive_flags -> | 
| 29581 | 85 | ((binding * typ) * mixfix) list -> (string * typ) list -> (Attrib.binding * term) list -> | 
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changeset | 86 | thm list -> local_theory -> inductive_result * local_theory | 
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changeset | 87 | val gen_add_inductive: add_ind_def -> bool -> bool -> | 
| 29581 | 88 | (binding * string option * mixfix) list -> | 
| 89 | (binding * string option * mixfix) list -> | |
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changeset | 90 | (Attrib.binding * string) list -> (Facts.ref * Token.src list) list -> | 
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changeset | 91 | local_theory -> inductive_result * local_theory | 
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changeset | 92 | val gen_ind_decl: add_ind_def -> bool -> (local_theory -> local_theory) parser | 
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changeset | 93 | end; | 
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changeset | 94 | |
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changeset | 95 | structure Inductive: INDUCTIVE = | 
| 5094 | 96 | struct | 
| 97 | ||
| 10729 | 98 | (** theory context references **) | 
| 99 | ||
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changeset | 100 | val inductive_forall_def = @{thm HOL.induct_forall_def};
 | 
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changeset | 101 | val inductive_conj_def = @{thm HOL.induct_conj_def};
 | 
| 32602 | 102 | val inductive_conj = @{thms induct_conj};
 | 
| 103 | val inductive_atomize = @{thms induct_atomize};
 | |
| 104 | val inductive_rulify = @{thms induct_rulify};
 | |
| 105 | val inductive_rulify_fallback = @{thms induct_rulify_fallback};
 | |
| 10729 | 106 | |
| 45649 | 107 | val simp_thms1 = | 
| 108 | map mk_meta_eq | |
| 109 |     @{lemma "(~ True) = False" "(~ False) = True"
 | |
| 110 | "(True --> P) = P" "(False --> P) = True" | |
| 111 | "(P & True) = P" "(True & P) = P" | |
| 112 | by (fact simp_thms)+}; | |
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changeset | 113 | |
| 45649 | 114 | val simp_thms2 = | 
| 115 |   map mk_meta_eq [@{thm inf_fun_def}, @{thm inf_bool_def}] @ simp_thms1;
 | |
| 32652 | 116 | |
| 45649 | 117 | val simp_thms3 = | 
| 118 |   map mk_meta_eq [@{thm le_fun_def}, @{thm le_bool_def}, @{thm sup_fun_def}, @{thm sup_bool_def}];
 | |
| 10729 | 119 | |
| 120 | ||
| 45647 | 121 | |
| 10735 | 122 | (** misc utilities **) | 
| 6424 | 123 | |
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changeset | 124 | fun message quiet_mode s = if quiet_mode then () else writeln s; | 
| 52059 | 125 | |
| 126 | fun clean_message ctxt quiet_mode s = | |
| 127 | if Config.get ctxt quick_and_dirty then () else message quiet_mode s; | |
| 5662 | 128 | |
| 6424 | 129 | fun coind_prefix true = "co" | 
| 130 | | coind_prefix false = ""; | |
| 131 | ||
| 45651 | 132 | fun log (b: int) m n = if m >= n then 0 else 1 + log b (b * m) n; | 
| 6424 | 133 | |
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changeset | 134 | fun make_bool_args f g [] i = [] | 
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changeset | 135 | | make_bool_args f g (x :: xs) i = | 
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changeset | 136 | (if i mod 2 = 0 then f x else g x) :: make_bool_args f g xs (i div 2); | 
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changeset | 137 | |
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changeset | 138 | fun make_bool_args' xs = | 
| 45740 | 139 |   make_bool_args (K @{term False}) (K @{term True}) xs;
 | 
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changeset | 140 | |
| 33957 | 141 | fun arg_types_of k c = drop k (binder_types (fastype_of c)); | 
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changeset | 142 | |
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changeset | 143 | fun find_arg T x [] = raise Fail "find_arg" | 
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changeset | 144 | | find_arg T x ((p as (_, (SOME _, _))) :: ps) = | 
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changeset | 145 | apsnd (cons p) (find_arg T x ps) | 
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changeset | 146 | | find_arg T x ((p as (U, (NONE, y))) :: ps) = | 
| 23577 | 147 | if (T: typ) = U then (y, (U, (SOME x, y)) :: ps) | 
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changeset | 148 | else apsnd (cons p) (find_arg T x ps); | 
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changeset | 149 | |
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changeset | 150 | fun make_args Ts xs = | 
| 28524 | 151 |   map (fn (T, (NONE, ())) => Const (@{const_name undefined}, T) | (_, (SOME t, ())) => t)
 | 
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changeset | 152 | (fold (fn (t, T) => snd o find_arg T t) xs (map (rpair (NONE, ())) Ts)); | 
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changeset | 153 | |
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changeset | 154 | fun make_args' Ts xs Us = | 
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changeset | 155 | fst (fold_map (fn T => find_arg T ()) Us (Ts ~~ map (pair NONE) xs)); | 
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changeset | 156 | |
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changeset | 157 | fun dest_predicate cs params t = | 
| 5094 | 158 | let | 
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changeset | 159 | val k = length params; | 
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changeset | 160 | val (c, ts) = strip_comb t; | 
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changeset | 161 | val (xs, ys) = chop k ts; | 
| 31986 | 162 | val i = find_index (fn c' => c' = c) cs; | 
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changeset | 163 | in | 
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changeset | 164 | if xs = params andalso i >= 0 then | 
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changeset | 165 | SOME (c, i, ys, chop (length ys) (arg_types_of k c)) | 
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changeset | 166 | else NONE | 
| 5094 | 167 | end; | 
| 168 | ||
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changeset | 169 | fun mk_names a 0 = [] | 
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changeset | 170 | | mk_names a 1 = [a] | 
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changeset | 171 | | mk_names a n = map (fn i => a ^ string_of_int i) (1 upto n); | 
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changeset | 172 | |
| 59532 | 173 | fun select_disj_tac ctxt = | 
| 174 | let | |
| 175 | fun tacs 1 1 = [] | |
| 176 |       | tacs _ 1 = [resolve_tac ctxt @{thms disjI1}]
 | |
| 177 |       | tacs n i = resolve_tac ctxt @{thms disjI2} :: tacs (n - 1) (i - 1);
 | |
| 178 | in fn n => fn i => EVERY' (tacs n i) end; | |
| 45647 | 179 | |
| 6424 | 180 | |
| 181 | ||
| 45651 | 182 | (** context data **) | 
| 183 | ||
| 184 | type inductive_result = | |
| 185 |   {preds: term list, elims: thm list, raw_induct: thm,
 | |
| 186 | induct: thm, inducts: thm list, intrs: thm list, eqs: thm list}; | |
| 187 | ||
| 188 | fun transform_result phi {preds, elims, raw_induct: thm, induct, inducts, intrs, eqs} =
 | |
| 189 | let | |
| 190 | val term = Morphism.term phi; | |
| 191 | val thm = Morphism.thm phi; | |
| 192 | val fact = Morphism.fact phi; | |
| 193 | in | |
| 194 |    {preds = map term preds, elims = fact elims, raw_induct = thm raw_induct,
 | |
| 195 | induct = thm induct, inducts = fact inducts, intrs = fact intrs, eqs = fact eqs} | |
| 196 | end; | |
| 197 | ||
| 198 | type inductive_info = {names: string list, coind: bool} * inductive_result;
 | |
| 199 | ||
| 200 | val empty_equations = | |
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changeset | 201 | Item_Net.init Thm.eq_thm_prop | 
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changeset | 202 | (single o fst o HOLogic.dest_eq o HOLogic.dest_Trueprop o Thm.prop_of); | 
| 45651 | 203 | |
| 204 | datatype data = Data of | |
| 205 |  {infos: inductive_info Symtab.table,
 | |
| 206 | monos: thm list, | |
| 207 | equations: thm Item_Net.T}; | |
| 208 | ||
| 209 | fun make_data (infos, monos, equations) = | |
| 210 |   Data {infos = infos, monos = monos, equations = equations};
 | |
| 211 | ||
| 212 | structure Data = Generic_Data | |
| 213 | ( | |
| 214 | type T = data; | |
| 215 | val empty = make_data (Symtab.empty, [], empty_equations); | |
| 216 | val extend = I; | |
| 217 |   fun merge (Data {infos = infos1, monos = monos1, equations = equations1},
 | |
| 218 |       Data {infos = infos2, monos = monos2, equations = equations2}) =
 | |
| 219 | make_data (Symtab.merge (K true) (infos1, infos2), | |
| 220 | Thm.merge_thms (monos1, monos2), | |
| 221 | Item_Net.merge (equations1, equations2)); | |
| 222 | ); | |
| 223 | ||
| 224 | fun map_data f = | |
| 225 |   Data.map (fn Data {infos, monos, equations} => make_data (f (infos, monos, equations)));
 | |
| 226 | ||
| 227 | fun rep_data ctxt = Data.get (Context.Proof ctxt) |> (fn Data rep => rep); | |
| 228 | ||
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changeset | 229 | fun print_inductives verbose ctxt = | 
| 45651 | 230 | let | 
| 231 |     val {infos, monos, ...} = rep_data ctxt;
 | |
| 232 | val space = Consts.space_of (Proof_Context.consts_of ctxt); | |
| 233 | in | |
| 50301 | 234 | [Pretty.block | 
| 235 | (Pretty.breaks | |
| 236 | (Pretty.str "(co)inductives:" :: | |
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changeset | 237 | map (Pretty.mark_str o #1) | 
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changeset | 238 | (Name_Space.markup_entries verbose ctxt space (Symtab.dest infos)))), | 
| 61268 | 239 | Pretty.big_list "monotonicity rules:" (map (Thm.pretty_thm_item ctxt) monos)] | 
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changeset | 240 | end |> Pretty.writeln_chunks; | 
| 45651 | 241 | |
| 242 | ||
| 243 | (* inductive info *) | |
| 244 | ||
| 245 | fun the_inductive ctxt name = | |
| 246 | (case Symtab.lookup (#infos (rep_data ctxt)) name of | |
| 247 |     NONE => error ("Unknown (co)inductive predicate " ^ quote name)
 | |
| 248 | | SOME info => info); | |
| 249 | ||
| 250 | fun put_inductives names info = | |
| 251 | map_data (fn (infos, monos, equations) => | |
| 252 | (fold (fn name => Symtab.update (name, info)) names infos, monos, equations)); | |
| 253 | ||
| 254 | ||
| 255 | (* monotonicity rules *) | |
| 256 | ||
| 257 | val get_monos = #monos o rep_data; | |
| 258 | ||
| 259 | fun mk_mono ctxt thm = | |
| 260 | let | |
| 261 |     fun eq_to_mono thm' = thm' RS (thm' RS @{thm eq_to_mono});
 | |
| 262 |     fun dest_less_concl thm = dest_less_concl (thm RS @{thm le_funD})
 | |
| 263 |       handle THM _ => thm RS @{thm le_boolD}
 | |
| 264 | in | |
| 59582 | 265 | (case Thm.concl_of thm of | 
| 56245 | 266 |       Const (@{const_name Pure.eq}, _) $ _ $ _ => eq_to_mono (thm RS meta_eq_to_obj_eq)
 | 
| 45651 | 267 |     | _ $ (Const (@{const_name HOL.eq}, _) $ _ $ _) => eq_to_mono thm
 | 
| 268 |     | _ $ (Const (@{const_name Orderings.less_eq}, _) $ _ $ _) =>
 | |
| 269 | dest_less_concl (Seq.hd (REPEAT (FIRSTGOAL | |
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changeset | 270 |         (resolve_tac ctxt [@{thm le_funI}, @{thm le_boolI'}])) thm))
 | 
| 45651 | 271 | | _ => thm) | 
| 61268 | 272 |   end handle THM _ => error ("Bad monotonicity theorem:\n" ^ Thm.string_of_thm ctxt thm);
 | 
| 45651 | 273 | |
| 274 | val mono_add = | |
| 275 | Thm.declaration_attribute (fn thm => fn context => | |
| 276 | map_data (fn (infos, monos, equations) => | |
| 277 | (infos, Thm.add_thm (mk_mono (Context.proof_of context) thm) monos, equations)) context); | |
| 278 | ||
| 279 | val mono_del = | |
| 280 | Thm.declaration_attribute (fn thm => fn context => | |
| 281 | map_data (fn (infos, monos, equations) => | |
| 282 | (infos, Thm.del_thm (mk_mono (Context.proof_of context) thm) monos, equations)) context); | |
| 283 | ||
| 58815 | 284 | val _ = | 
| 285 | Theory.setup | |
| 286 |     (Attrib.setup @{binding mono} (Attrib.add_del mono_add mono_del)
 | |
| 287 | "declaration of monotonicity rule"); | |
| 288 | ||
| 45651 | 289 | |
| 290 | (* equations *) | |
| 291 | ||
| 292 | val get_equations = #equations o rep_data; | |
| 293 | ||
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changeset | 294 | val equation_add_permissive = | 
| 45651 | 295 | Thm.declaration_attribute (fn thm => | 
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changeset | 296 | map_data (fn (infos, monos, equations) => | 
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changeset | 297 | (infos, monos, perhaps (try (Item_Net.update thm)) equations))); | 
| 45651 | 298 | |
| 299 | ||
| 300 | ||
| 10729 | 301 | (** process rules **) | 
| 302 | ||
| 303 | local | |
| 5094 | 304 | |
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changeset | 305 | fun err_in_rule ctxt name t msg = | 
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changeset | 306 | error (cat_lines ["Ill-formed introduction rule " ^ Binding.print name, | 
| 24920 | 307 | Syntax.string_of_term ctxt t, msg]); | 
| 10729 | 308 | |
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changeset | 309 | fun err_in_prem ctxt name t p msg = | 
| 24920 | 310 | error (cat_lines ["Ill-formed premise", Syntax.string_of_term ctxt p, | 
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changeset | 311 | "in introduction rule " ^ Binding.print name, Syntax.string_of_term ctxt t, msg]); | 
| 5094 | 312 | |
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changeset | 313 | val bad_concl = "Conclusion of introduction rule must be an inductive predicate"; | 
| 10729 | 314 | |
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changeset | 315 | val bad_ind_occ = "Inductive predicate occurs in argument of inductive predicate"; | 
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changeset | 316 | |
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changeset | 317 | val bad_app = "Inductive predicate must be applied to parameter(s) "; | 
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changeset | 318 | |
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changeset | 319 | fun atomize_term thy = Raw_Simplifier.rewrite_term thy inductive_atomize []; | 
| 10729 | 320 | |
| 321 | in | |
| 5094 | 322 | |
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changeset | 323 | fun check_rule ctxt cs params ((binding, att), rule) = | 
| 10729 | 324 | let | 
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changeset | 325 | val params' = Term.variant_frees rule (Logic.strip_params rule); | 
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changeset | 326 | val frees = rev (map Free params'); | 
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changeset | 327 | val concl = subst_bounds (frees, Logic.strip_assums_concl rule); | 
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changeset | 328 | val prems = map (curry subst_bounds frees) (Logic.strip_assums_hyp rule); | 
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changeset | 329 | val rule' = Logic.list_implies (prems, concl); | 
| 42361 | 330 | val aprems = map (atomize_term (Proof_Context.theory_of ctxt)) prems; | 
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changeset | 331 | val arule = fold_rev (Logic.all o Free) params' (Logic.list_implies (aprems, concl)); | 
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changeset | 332 | |
| 45647 | 333 | fun check_ind err t = | 
| 334 | (case dest_predicate cs params t of | |
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changeset | 335 | NONE => err (bad_app ^ | 
| 24920 | 336 | commas (map (Syntax.string_of_term ctxt) params)) | 
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changeset | 337 | | SOME (_, _, ys, _) => | 
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changeset | 338 | if exists (fn c => exists (fn t => Logic.occs (c, t)) ys) cs | 
| 45647 | 339 | then err bad_ind_occ else ()); | 
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changeset | 340 | |
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changeset | 341 | fun check_prem' prem t = | 
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changeset | 342 | if member (op =) cs (head_of t) then | 
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changeset | 343 | check_ind (err_in_prem ctxt binding rule prem) t | 
| 45647 | 344 | else | 
| 345 | (case t of | |
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changeset | 346 | Abs (_, _, t) => check_prem' prem t | 
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changeset | 347 | | t $ u => (check_prem' prem t; check_prem' prem u) | 
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changeset | 348 | | _ => ()); | 
| 5094 | 349 | |
| 10729 | 350 | fun check_prem (prem, aprem) = | 
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changeset | 351 | if can HOLogic.dest_Trueprop aprem then check_prem' prem prem | 
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changeset | 352 | else err_in_prem ctxt binding rule prem "Non-atomic premise"; | 
| 45647 | 353 | |
| 354 | val _ = | |
| 355 | (case concl of | |
| 356 |         Const (@{const_name Trueprop}, _) $ t =>
 | |
| 357 | if member (op =) cs (head_of t) then | |
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changeset | 358 | (check_ind (err_in_rule ctxt binding rule') t; | 
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changeset | 359 | List.app check_prem (prems ~~ aprems)) | 
| 45647 | 360 | else err_in_rule ctxt binding rule' bad_concl | 
| 361 | | _ => err_in_rule ctxt binding rule' bad_concl); | |
| 362 | in | |
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changeset | 363 | ((binding, att), arule) | 
| 10729 | 364 | end; | 
| 5094 | 365 | |
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changeset | 366 | fun rulify ctxt = | 
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changeset | 367 | hol_simplify ctxt inductive_conj | 
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changeset | 368 | #> hol_simplify ctxt inductive_rulify | 
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changeset | 369 | #> hol_simplify ctxt inductive_rulify_fallback | 
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changeset | 370 | #> Simplifier.norm_hhf ctxt; | 
| 10729 | 371 | |
| 372 | end; | |
| 373 | ||
| 5094 | 374 | |
| 6424 | 375 | |
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changeset | 376 | (** proofs for (co)inductive predicates **) | 
| 6424 | 377 | |
| 26534 | 378 | (* prove monotonicity *) | 
| 5094 | 379 | |
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changeset | 380 | fun prove_mono quiet_mode skip_mono predT fp_fun monos ctxt = | 
| 52059 | 381 | (message (quiet_mode orelse skip_mono andalso Config.get ctxt quick_and_dirty) | 
| 26534 | 382 | " Proving monotonicity ..."; | 
| 51551 | 383 | (if skip_mono then Goal.prove_sorry else Goal.prove_future) ctxt | 
| 36642 | 384 | [] [] | 
| 17985 | 385 | (HOLogic.mk_Trueprop | 
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changeset | 386 |       (Const (@{const_name Orderings.mono}, (predT --> predT) --> HOLogic.boolT) $ fp_fun))
 | 
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changeset | 387 |     (fn _ => EVERY [resolve_tac ctxt @{thms monoI} 1,
 | 
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changeset | 388 |       REPEAT (resolve_tac ctxt [@{thm le_funI}, @{thm le_boolI'}] 1),
 | 
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changeset | 389 | REPEAT (FIRST | 
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changeset | 390 | [assume_tac ctxt 1, | 
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changeset | 391 | resolve_tac ctxt (map (mk_mono ctxt) monos @ get_monos ctxt) 1, | 
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changeset | 392 |          eresolve_tac ctxt @{thms le_funE} 1,
 | 
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changeset | 393 |          dresolve_tac ctxt @{thms le_boolD} 1])]));
 | 
| 5094 | 394 | |
| 6424 | 395 | |
| 10735 | 396 | (* prove introduction rules *) | 
| 5094 | 397 | |
| 36642 | 398 | fun prove_intrs quiet_mode coind mono fp_def k intr_ts rec_preds_defs ctxt ctxt' = | 
| 5094 | 399 | let | 
| 52059 | 400 | val _ = clean_message ctxt quiet_mode " Proving the introduction rules ..."; | 
| 5094 | 401 | |
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changeset | 402 | val unfold = funpow k (fn th => th RS fun_cong) | 
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changeset | 403 | (mono RS (fp_def RS | 
| 32652 | 404 |         (if coind then @{thm def_gfp_unfold} else @{thm def_lfp_unfold})));
 | 
| 5094 | 405 | |
| 45648 | 406 |     val rules = [refl, TrueI, @{lemma "~ False" by (rule notI)}, exI, conjI];
 | 
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changeset | 407 | |
| 36642 | 408 | val intrs = map_index (fn (i, intr) => | 
| 51551 | 409 | Goal.prove_sorry ctxt [] [] intr (fn _ => EVERY | 
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changeset | 410 | [rewrite_goals_tac ctxt rec_preds_defs, | 
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changeset | 411 | resolve_tac ctxt [unfold RS iffD2] 1, | 
| 59532 | 412 | select_disj_tac ctxt (length intr_ts) (i + 1) 1, | 
| 17985 | 413 | (*Not ares_tac, since refl must be tried before any equality assumptions; | 
| 414 | backtracking may occur if the premises have extra variables!*) | |
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changeset | 415 | DEPTH_SOLVE_1 (resolve_tac ctxt rules 1 APPEND assume_tac ctxt 1)]) | 
| 42361 | 416 | |> singleton (Proof_Context.export ctxt ctxt')) intr_ts | 
| 5094 | 417 | |
| 418 | in (intrs, unfold) end; | |
| 419 | ||
| 6424 | 420 | |
| 10735 | 421 | (* prove elimination rules *) | 
| 5094 | 422 | |
| 36642 | 423 | fun prove_elims quiet_mode cs params intr_ts intr_names unfold rec_preds_defs ctxt ctxt''' = | 
| 5094 | 424 | let | 
| 52059 | 425 | val _ = clean_message ctxt quiet_mode " Proving the elimination rules ..."; | 
| 5094 | 426 | |
| 36642 | 427 | val ([pname], ctxt') = Variable.variant_fixes ["P"] ctxt; | 
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changeset | 428 | val P = HOLogic.mk_Trueprop (Free (pname, HOLogic.boolT)); | 
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changeset | 429 | |
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changeset | 430 | fun dest_intr r = | 
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changeset | 431 | (the (dest_predicate cs params (HOLogic.dest_Trueprop (Logic.strip_assums_concl r))), | 
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changeset | 432 | Logic.strip_assums_hyp r, Logic.strip_params r); | 
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changeset | 433 | |
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changeset | 434 | val intrs = map dest_intr intr_ts ~~ intr_names; | 
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changeset | 435 | |
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changeset | 436 | val rules1 = [disjE, exE, FalseE]; | 
| 45648 | 437 |     val rules2 = [conjE, FalseE, @{lemma "~ True ==> R" by (rule notE [OF _ TrueI])}];
 | 
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changeset | 438 | |
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changeset | 439 | fun prove_elim c = | 
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changeset | 440 | let | 
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changeset | 441 | val Ts = arg_types_of (length params) c; | 
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changeset | 442 | val (anames, ctxt'') = Variable.variant_fixes (mk_names "a" (length Ts)) ctxt'; | 
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changeset | 443 | val frees = map Free (anames ~~ Ts); | 
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changeset | 444 | |
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changeset | 445 | fun mk_elim_prem ((_, _, us, _), ts, params') = | 
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changeset | 446 | Logic.list_all (params', | 
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changeset | 447 | Logic.list_implies (map (HOLogic.mk_Trueprop o HOLogic.mk_eq) | 
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changeset | 448 | (frees ~~ us) @ ts, P)); | 
| 33317 | 449 | val c_intrs = filter (equal c o #1 o #1 o #1) intrs; | 
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changeset | 450 | val prems = HOLogic.mk_Trueprop (list_comb (c, params @ frees)) :: | 
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changeset | 451 | map mk_elim_prem (map #1 c_intrs) | 
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changeset | 452 | in | 
| 51551 | 453 | (Goal.prove_sorry ctxt'' [] prems P | 
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changeset | 454 |           (fn {context = ctxt4, prems} => EVERY
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changeset | 455 | [cut_tac (hd prems) 1, | 
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changeset | 456 | rewrite_goals_tac ctxt4 rec_preds_defs, | 
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changeset | 457 | dresolve_tac ctxt4 [unfold RS iffD1] 1, | 
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changeset | 458 | REPEAT (FIRSTGOAL (eresolve_tac ctxt4 rules1)), | 
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changeset | 459 | REPEAT (FIRSTGOAL (eresolve_tac ctxt4 rules2)), | 
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changeset | 460 | EVERY (map (fn prem => | 
| 59499 | 461 | DEPTH_SOLVE_1 (assume_tac ctxt4 1 ORELSE | 
| 462 | resolve_tac ctxt [rewrite_rule ctxt4 rec_preds_defs prem, conjI] 1)) | |
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changeset | 463 | (tl prems))]) | 
| 42361 | 464 | |> singleton (Proof_Context.export ctxt'' ctxt'''), | 
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changeset | 465 | map #2 c_intrs, length Ts) | 
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changeset | 466 | end | 
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changeset | 467 | |
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changeset | 468 | in map prove_elim cs end; | 
| 5094 | 469 | |
| 45647 | 470 | |
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changeset | 471 | (* prove simplification equations *) | 
| 6424 | 472 | |
| 45647 | 473 | fun prove_eqs quiet_mode cs params intr_ts intrs | 
| 474 | (elims: (thm * bstring list * int) list) ctxt ctxt'' = (* FIXME ctxt'' ?? *) | |
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changeset | 475 | let | 
| 52059 | 476 | val _ = clean_message ctxt quiet_mode " Proving the simplification rules ..."; | 
| 45647 | 477 | |
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changeset | 478 | fun dest_intr r = | 
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changeset | 479 | (the (dest_predicate cs params (HOLogic.dest_Trueprop (Logic.strip_assums_concl r))), | 
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changeset | 480 | Logic.strip_assums_hyp r, Logic.strip_params r); | 
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changeset | 481 | val intr_ts' = map dest_intr intr_ts; | 
| 45647 | 482 | |
| 37901 | 483 | fun prove_eq c (elim: thm * 'a * 'b) = | 
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changeset | 484 | let | 
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changeset | 485 | val Ts = arg_types_of (length params) c; | 
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changeset | 486 | val (anames, ctxt') = Variable.variant_fixes (mk_names "a" (length Ts)) ctxt; | 
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changeset | 487 | val frees = map Free (anames ~~ Ts); | 
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changeset | 488 | val c_intrs = filter (equal c o #1 o #1 o #1) (intr_ts' ~~ intrs); | 
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changeset | 489 | fun mk_intr_conj (((_, _, us, _), ts, params'), _) = | 
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changeset | 490 | let | 
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changeset | 491 | fun list_ex ([], t) = t | 
| 45647 | 492 | | list_ex ((a, T) :: vars, t) = | 
| 493 | HOLogic.exists_const T $ Abs (a, T, list_ex (vars, t)); | |
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changeset | 494 | val conjs = map2 (curry HOLogic.mk_eq) frees us @ map HOLogic.dest_Trueprop ts; | 
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changeset | 495 | in | 
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changeset | 496 |             list_ex (params', if null conjs then @{term True} else foldr1 HOLogic.mk_conj conjs)
 | 
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changeset | 497 | end; | 
| 45647 | 498 | val lhs = list_comb (c, params @ frees); | 
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changeset | 499 | val rhs = | 
| 45647 | 500 |           if null c_intrs then @{term False}
 | 
| 501 | else foldr1 HOLogic.mk_disj (map mk_intr_conj c_intrs); | |
| 502 | val eq = HOLogic.mk_Trueprop (HOLogic.mk_eq (lhs, rhs)); | |
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changeset | 503 |         fun prove_intr1 (i, _) = Subgoal.FOCUS_PREMS (fn {context = ctxt'', params, prems, ...} =>
 | 
| 59532 | 504 | select_disj_tac ctxt'' (length c_intrs) (i + 1) 1 THEN | 
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changeset | 505 |             EVERY (replicate (length params) (resolve_tac ctxt'' @{thms exI} 1)) THEN
 | 
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changeset | 506 |             (if null prems then resolve_tac ctxt'' @{thms TrueI} 1
 | 
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changeset | 507 | else | 
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changeset | 508 | let | 
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changeset | 509 | val (prems', last_prem) = split_last prems; | 
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changeset | 510 | in | 
| 58839 | 511 | EVERY (map (fn prem => | 
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changeset | 512 |                   (resolve_tac ctxt'' @{thms conjI} 1 THEN resolve_tac ctxt'' [prem] 1)) prems')
 | 
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changeset | 513 | THEN resolve_tac ctxt'' [last_prem] 1 | 
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changeset | 514 | end)) ctxt' 1; | 
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changeset | 515 | fun prove_intr2 (((_, _, us, _), ts, params'), intr) = | 
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changeset | 516 |           EVERY (replicate (length params') (eresolve_tac ctxt' @{thms exE} 1)) THEN
 | 
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changeset | 517 | (if null ts andalso null us then resolve_tac ctxt' [intr] 1 | 
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changeset | 518 | else | 
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changeset | 519 |             EVERY (replicate (length ts + length us - 1) (eresolve_tac ctxt' @{thms conjE} 1)) THEN
 | 
| 59059 | 520 |             Subgoal.FOCUS_PREMS (fn {context = ctxt'', prems, ...} =>
 | 
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changeset | 521 | let | 
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changeset | 522 | val (eqs, prems') = chop (length us) prems; | 
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changeset | 523 |                 val rew_thms = map (fn th => th RS @{thm eq_reflection}) eqs;
 | 
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changeset | 524 | in | 
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changeset | 525 | rewrite_goal_tac ctxt'' rew_thms 1 THEN | 
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changeset | 526 | resolve_tac ctxt'' [intr] 1 THEN | 
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changeset | 527 | EVERY (map (fn p => resolve_tac ctxt'' [p] 1) prems') | 
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changeset | 528 | end) ctxt' 1); | 
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changeset | 529 | in | 
| 51551 | 530 | Goal.prove_sorry ctxt' [] [] eq (fn _ => | 
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changeset | 531 |           resolve_tac ctxt' @{thms iffI} 1 THEN
 | 
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changeset | 532 | eresolve_tac ctxt' [#1 elim] 1 THEN | 
| 45647 | 533 | EVERY (map_index prove_intr1 c_intrs) THEN | 
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changeset | 534 |           (if null c_intrs then eresolve_tac ctxt' @{thms FalseE} 1
 | 
| 45647 | 535 | else | 
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changeset | 536 | let val (c_intrs', last_c_intr) = split_last c_intrs in | 
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changeset | 537 |               EVERY (map (fn ci => eresolve_tac ctxt' @{thms disjE} 1 THEN prove_intr2 ci) c_intrs')
 | 
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changeset | 538 | THEN prove_intr2 last_c_intr | 
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changeset | 539 | end)) | 
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changeset | 540 | |> rulify ctxt' | 
| 42361 | 541 | |> singleton (Proof_Context.export ctxt' ctxt'') | 
| 45647 | 542 | end; | 
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changeset | 543 | in | 
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changeset | 544 | map2 prove_eq cs elims | 
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changeset | 545 | end; | 
| 45647 | 546 | |
| 547 | ||
| 10735 | 548 | (* derivation of simplified elimination rules *) | 
| 5094 | 549 | |
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changeset | 550 | local | 
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changeset | 551 | |
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changeset | 552 | (*delete needless equality assumptions*) | 
| 29064 | 553 | val refl_thin = Goal.prove_global @{theory HOL} [] [] @{prop "!!P. a = a ==> P ==> P"}
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changeset | 554 |   (fn {context = ctxt, ...} => assume_tac ctxt 1);
 | 
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changeset | 555 | val elim_rls = [asm_rl, FalseE, refl_thin, conjE, exE]; | 
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changeset | 556 | fun elim_tac ctxt = REPEAT o eresolve_tac ctxt elim_rls; | 
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changeset | 557 | |
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changeset | 558 | fun simp_case_tac ctxt i = | 
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changeset | 559 | EVERY' [elim_tac ctxt, | 
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changeset | 560 | asm_full_simp_tac ctxt, | 
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changeset | 561 | elim_tac ctxt, | 
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changeset | 562 | REPEAT o bound_hyp_subst_tac ctxt] i; | 
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changeset | 563 | |
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changeset | 564 | in | 
| 9598 | 565 | |
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changeset | 566 | fun mk_cases_tac ctxt = ALLGOALS (simp_case_tac ctxt) THEN prune_params_tac ctxt; | 
| 53994 | 567 | |
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changeset | 568 | fun mk_cases ctxt prop = | 
| 7107 | 569 | let | 
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changeset | 570 | fun err msg = | 
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changeset | 571 | error (Pretty.string_of (Pretty.block | 
| 24920 | 572 | [Pretty.str msg, Pretty.fbrk, Syntax.pretty_term ctxt prop])); | 
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changeset | 573 | |
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changeset | 574 | val elims = Induct.find_casesP ctxt prop; | 
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changeset | 575 | |
| 59642 | 576 | val cprop = Thm.cterm_of ctxt prop; | 
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changeset | 577 | fun mk_elim rl = | 
| 53994 | 578 | Thm.implies_intr cprop | 
| 579 | (Tactic.rule_by_tactic ctxt (mk_cases_tac ctxt) (Thm.assume cprop RS rl)) | |
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changeset | 580 | |> singleton (Variable.export (Variable.auto_fixes prop ctxt) ctxt); | 
| 7107 | 581 | in | 
| 582 | (case get_first (try mk_elim) elims of | |
| 15531 | 583 | SOME r => r | 
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changeset | 584 | | NONE => err "Proposition not an inductive predicate:") | 
| 7107 | 585 | end; | 
| 586 | ||
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changeset | 587 | end; | 
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changeset | 588 | |
| 45647 | 589 | |
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changeset | 590 | (* inductive_cases *) | 
| 7107 | 591 | |
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changeset | 592 | fun gen_inductive_cases prep_att prep_prop args lthy = | 
| 9598 | 593 | let | 
| 46915 | 594 | val thmss = | 
| 595 | map snd args | |
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changeset | 596 | |> burrow (grouped 10 Par_List.map_independent (mk_cases lthy o prep_prop lthy)); | 
| 46915 | 597 | val facts = | 
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changeset | 598 | map2 (fn ((a, atts), _) => fn thms => ((a, map (prep_att lthy) atts), [(thms, [])])) | 
| 46915 | 599 | args thmss; | 
| 53995 | 600 | in lthy |> Local_Theory.notes facts end; | 
| 5094 | 601 | |
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changeset | 602 | val inductive_cases = gen_inductive_cases Attrib.check_src Syntax.read_prop; | 
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changeset | 603 | val inductive_cases_i = gen_inductive_cases (K I) Syntax.check_prop; | 
| 7107 | 604 | |
| 59845 | 605 | |
| 606 | (* ind_cases *) | |
| 607 | ||
| 608 | fun ind_cases_rules ctxt raw_props raw_fixes = | |
| 609 | let | |
| 610 | val (props, ctxt' ) = Specification.read_props raw_props raw_fixes ctxt; | |
| 611 | val rules = Proof_Context.export ctxt' ctxt (map (mk_cases ctxt') props); | |
| 612 | in rules end; | |
| 613 | ||
| 58815 | 614 | val _ = | 
| 615 | Theory.setup | |
| 616 |     (Method.setup @{binding ind_cases}
 | |
| 59845 | 617 | (Scan.lift (Scan.repeat1 Parse.prop -- Parse.for_fixes) >> | 
| 618 | (fn (props, fixes) => fn ctxt => | |
| 619 | Method.erule ctxt 0 (ind_cases_rules ctxt props fixes))) | |
| 620 | "case analysis for inductive definitions, based on simplified elimination rule"); | |
| 9598 | 621 | |
| 45647 | 622 | |
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changeset | 623 | (* derivation of simplified equation *) | 
| 9598 | 624 | |
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changeset | 625 | fun mk_simp_eq ctxt prop = | 
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changeset | 626 | let | 
| 45647 | 627 | val thy = Proof_Context.theory_of ctxt; | 
| 628 | val ctxt' = Variable.auto_fixes prop ctxt; | |
| 629 | val lhs_of = fst o HOLogic.dest_eq o HOLogic.dest_Trueprop o Thm.prop_of; | |
| 630 | val substs = | |
| 45649 | 631 | Item_Net.retrieve (get_equations ctxt) (HOLogic.dest_Trueprop prop) | 
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changeset | 632 | |> map_filter | 
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changeset | 633 | (fn eq => SOME (Pattern.match thy (lhs_of eq, HOLogic.dest_Trueprop prop) | 
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changeset | 634 | (Vartab.empty, Vartab.empty), eq) | 
| 45647 | 635 | handle Pattern.MATCH => NONE); | 
| 636 | val (subst, eq) = | |
| 637 | (case substs of | |
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changeset | 638 | [s] => s | 
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changeset | 639 | | _ => error | 
| 45647 | 640 |         ("equations matching pattern " ^ Syntax.string_of_term ctxt prop ^ " is not unique"));
 | 
| 641 | val inst = | |
| 60784 | 642 | map (fn v => (fst v, Thm.cterm_of ctxt' (Envir.subst_term subst (Var v)))) | 
| 45647 | 643 | (Term.add_vars (lhs_of eq) []); | 
| 644 | in | |
| 60784 | 645 | infer_instantiate ctxt' inst eq | 
| 646 | |> Conv.fconv_rule (Conv.arg_conv (Conv.arg_conv (Simplifier.full_rewrite ctxt'))) | |
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changeset | 647 | |> singleton (Variable.export ctxt' ctxt) | 
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changeset | 648 | end | 
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changeset | 649 | |
| 45647 | 650 | |
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changeset | 651 | (* inductive simps *) | 
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changeset | 652 | |
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changeset | 653 | fun gen_inductive_simps prep_att prep_prop args lthy = | 
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changeset | 654 | let | 
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changeset | 655 | val facts = args |> map (fn ((a, atts), props) => | 
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changeset | 656 | ((a, map (prep_att lthy) atts), | 
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changeset | 657 | map (Thm.no_attributes o single o mk_simp_eq lthy o prep_prop lthy) props)); | 
| 53995 | 658 | in lthy |> Local_Theory.notes facts end; | 
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changeset | 659 | |
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changeset | 660 | val inductive_simps = gen_inductive_simps Attrib.check_src Syntax.read_prop; | 
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changeset | 661 | val inductive_simps_i = gen_inductive_simps (K I) Syntax.check_prop; | 
| 40902 | 662 | |
| 45647 | 663 | |
| 10735 | 664 | (* prove induction rule *) | 
| 5094 | 665 | |
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changeset | 666 | fun prove_indrule quiet_mode cs argTs bs xs rec_const params intr_ts mono | 
| 45647 | 667 | fp_def rec_preds_defs ctxt ctxt''' = (* FIXME ctxt''' ?? *) | 
| 5094 | 668 | let | 
| 52059 | 669 | val _ = clean_message ctxt quiet_mode " Proving the induction rule ..."; | 
| 5094 | 670 | |
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changeset | 671 | (* predicates for induction rule *) | 
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changeset | 672 | |
| 36642 | 673 | val (pnames, ctxt') = Variable.variant_fixes (mk_names "P" (length cs)) ctxt; | 
| 45647 | 674 | val preds = | 
| 675 | map2 (curry Free) pnames | |
| 676 | (map (fn c => arg_types_of (length params) c ---> HOLogic.boolT) cs); | |
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changeset | 677 | |
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changeset | 678 | (* transform an introduction rule into a premise for induction rule *) | 
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changeset | 679 | |
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changeset | 680 | fun mk_ind_prem r = | 
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changeset | 681 | let | 
| 33669 | 682 | fun subst s = | 
| 683 | (case dest_predicate cs params s of | |
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changeset | 684 | SOME (_, i, ys, (_, Ts)) => | 
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changeset | 685 | let | 
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changeset | 686 | val k = length Ts; | 
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changeset | 687 | val bs = map Bound (k - 1 downto 0); | 
| 42364 | 688 | val P = list_comb (nth preds i, map (incr_boundvars k) ys @ bs); | 
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changeset | 689 | val Q = | 
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changeset | 690 | fold_rev Term.abs (mk_names "x" k ~~ Ts) | 
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changeset | 691 |                     (HOLogic.mk_binop @{const_name HOL.induct_conj}
 | 
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changeset | 692 | (list_comb (incr_boundvars k s, bs), P)); | 
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changeset | 693 | in (Q, case Ts of [] => SOME (s, P) | _ => NONE) end | 
| 33669 | 694 | | NONE => | 
| 695 | (case s of | |
| 45647 | 696 | t $ u => (fst (subst t) $ fst (subst u), NONE) | 
| 697 | | Abs (a, T, t) => (Abs (a, T, fst (subst t)), NONE) | |
| 33669 | 698 | | _ => (s, NONE))); | 
| 7293 | 699 | |
| 33338 | 700 | fun mk_prem s prems = | 
| 701 | (case subst s of | |
| 702 | (_, SOME (t, u)) => t :: u :: prems | |
| 703 | | (t, _) => t :: prems); | |
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changeset | 704 | |
| 45647 | 705 | val SOME (_, i, ys, _) = | 
| 706 | dest_predicate cs params (HOLogic.dest_Trueprop (Logic.strip_assums_concl r)); | |
| 42364 | 707 | in | 
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changeset | 708 | fold_rev (Logic.all o Free) (Logic.strip_params r) | 
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changeset | 709 | (Logic.list_implies (map HOLogic.mk_Trueprop (fold_rev mk_prem | 
| 42364 | 710 | (map HOLogic.dest_Trueprop (Logic.strip_assums_hyp r)) []), | 
| 711 | HOLogic.mk_Trueprop (list_comb (nth preds i, ys)))) | |
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changeset | 712 | end; | 
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changeset | 713 | |
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changeset | 714 | val ind_prems = map mk_ind_prem intr_ts; | 
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changeset | 715 | |
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changeset | 716 | |
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changeset | 717 | (* make conclusions for induction rules *) | 
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changeset | 718 | |
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changeset | 719 | val Tss = map (binder_types o fastype_of) preds; | 
| 45647 | 720 | val (xnames, ctxt'') = Variable.variant_fixes (mk_names "x" (length (flat Tss))) ctxt'; | 
| 721 | val mutual_ind_concl = | |
| 722 | HOLogic.mk_Trueprop (foldr1 HOLogic.mk_conj | |
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changeset | 723 | (map (fn (((xnames, Ts), c), P) => | 
| 45647 | 724 | let val frees = map Free (xnames ~~ Ts) | 
| 725 | in HOLogic.mk_imp (list_comb (c, params @ frees), list_comb (P, frees)) end) | |
| 726 | (unflat Tss xnames ~~ Tss ~~ cs ~~ preds))); | |
| 5094 | 727 | |
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changeset | 728 | |
| 5094 | 729 | (* make predicate for instantiation of abstract induction rule *) | 
| 730 | ||
| 45647 | 731 | val ind_pred = | 
| 732 | fold_rev lambda (bs @ xs) (foldr1 HOLogic.mk_conj | |
| 733 | (map_index (fn (i, P) => fold_rev (curry HOLogic.mk_imp) | |
| 734 | (make_bool_args HOLogic.mk_not I bs i) | |
| 735 | (list_comb (P, make_args' argTs xs (binder_types (fastype_of P))))) preds)); | |
| 5094 | 736 | |
| 45647 | 737 | val ind_concl = | 
| 738 | HOLogic.mk_Trueprop | |
| 739 |         (HOLogic.mk_binrel @{const_name Orderings.less_eq} (rec_const, ind_pred));
 | |
| 5094 | 740 | |
| 45647 | 741 |     val raw_fp_induct = mono RS (fp_def RS @{thm def_lfp_induct});
 | 
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changeset | 742 | |
| 51551 | 743 | val induct = Goal.prove_sorry ctxt'' [] ind_prems ind_concl | 
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changeset | 744 |       (fn {context = ctxt3, prems} => EVERY
 | 
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changeset | 745 | [rewrite_goals_tac ctxt3 [inductive_conj_def], | 
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changeset | 746 | DETERM (resolve_tac ctxt3 [raw_fp_induct] 1), | 
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changeset | 747 |          REPEAT (resolve_tac ctxt3 [@{thm le_funI}, @{thm le_boolI}] 1),
 | 
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changeset | 748 | rewrite_goals_tac ctxt3 simp_thms2, | 
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changeset | 749 | (*This disjE separates out the introduction rules*) | 
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changeset | 750 | REPEAT (FIRSTGOAL (eresolve_tac ctxt3 [disjE, exE, FalseE])), | 
| 5094 | 751 | (*Now break down the individual cases. No disjE here in case | 
| 752 | some premise involves disjunction.*) | |
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changeset | 753 | REPEAT (FIRSTGOAL (eresolve_tac ctxt3 [conjE] ORELSE' bound_hyp_subst_tac ctxt3)), | 
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changeset | 754 | REPEAT (FIRSTGOAL | 
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changeset | 755 | (resolve_tac ctxt3 [conjI, impI] ORELSE' | 
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changeset | 756 | (eresolve_tac ctxt3 [notE] THEN' assume_tac ctxt3))), | 
| 59499 | 757 | EVERY (map (fn prem => | 
| 758 | DEPTH_SOLVE_1 (assume_tac ctxt3 1 ORELSE | |
| 759 | resolve_tac ctxt3 | |
| 760 | [rewrite_rule ctxt3 (inductive_conj_def :: rec_preds_defs @ simp_thms2) prem, | |
| 761 | conjI, refl] 1)) prems)]); | |
| 5094 | 762 | |
| 51551 | 763 | val lemma = Goal.prove_sorry ctxt'' [] [] | 
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changeset | 764 |       (Logic.mk_implies (ind_concl, mutual_ind_concl)) (fn {context = ctxt3, ...} => EVERY
 | 
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changeset | 765 | [rewrite_goals_tac ctxt3 rec_preds_defs, | 
| 5094 | 766 | REPEAT (EVERY | 
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changeset | 767 | [REPEAT (resolve_tac ctxt3 [conjI, impI] 1), | 
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changeset | 768 |             REPEAT (eresolve_tac ctxt3 [@{thm le_funE}, @{thm le_boolE}] 1),
 | 
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changeset | 769 | assume_tac ctxt3 1, | 
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changeset | 770 | rewrite_goals_tac ctxt3 simp_thms1, | 
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changeset | 771 | assume_tac ctxt3 1])]); | 
| 5094 | 772 | |
| 42361 | 773 | in singleton (Proof_Context.export ctxt'' ctxt''') (induct RS lemma) end; | 
| 5094 | 774 | |
| 6424 | 775 | |
| 776 | ||
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changeset | 777 | (** specification of (co)inductive predicates **) | 
| 10729 | 778 | |
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changeset | 779 | fun mk_ind_def quiet_mode skip_mono alt_name coind cs intr_ts monos params cnames_syn lthy = | 
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changeset | 780 | let | 
| 24915 | 781 |     val fp_name = if coind then @{const_name Inductive.gfp} else @{const_name Inductive.lfp};
 | 
| 5094 | 782 | |
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changeset | 783 | val argTs = fold (combine (op =) o arg_types_of (length params)) cs []; | 
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changeset | 784 | val k = log 2 1 (length cs); | 
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changeset | 785 | val predT = replicate k HOLogic.boolT ---> argTs ---> HOLogic.boolT; | 
| 45647 | 786 | val p :: xs = | 
| 787 | map Free (Variable.variant_frees lthy intr_ts | |
| 788 |         (("p", predT) :: (mk_names "x" (length argTs) ~~ argTs)));
 | |
| 789 | val bs = | |
| 790 | map Free (Variable.variant_frees lthy (p :: xs @ intr_ts) | |
| 791 | (map (rpair HOLogic.boolT) (mk_names "b" k))); | |
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changeset | 792 | |
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changeset | 793 | fun subst t = | 
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changeset | 794 | (case dest_predicate cs params t of | 
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changeset | 795 | SOME (_, i, ts, (Ts, Us)) => | 
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changeset | 796 | let | 
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changeset | 797 | val l = length Us; | 
| 33669 | 798 | val zs = map Bound (l - 1 downto 0); | 
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changeset | 799 | in | 
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changeset | 800 | fold_rev (Term.abs o pair "z") Us | 
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changeset | 801 | (list_comb (p, | 
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changeset | 802 | make_bool_args' bs i @ make_args argTs | 
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changeset | 803 | ((map (incr_boundvars l) ts ~~ Ts) @ (zs ~~ Us)))) | 
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changeset | 804 | end | 
| 33669 | 805 | | NONE => | 
| 806 | (case t of | |
| 807 | t1 $ t2 => subst t1 $ subst t2 | |
| 808 | | Abs (x, T, u) => Abs (x, T, subst u) | |
| 809 | | _ => t)); | |
| 5149 | 810 | |
| 5094 | 811 | (* transform an introduction rule into a conjunction *) | 
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changeset | 812 | (* [| p_i t; ... |] ==> p_j u *) | 
| 5094 | 813 | (* is transformed into *) | 
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changeset | 814 | (* b_j & x_j = u & p b_j t & ... *) | 
| 5094 | 815 | |
| 816 | fun transform_rule r = | |
| 817 | let | |
| 45647 | 818 | val SOME (_, i, ts, (Ts, _)) = | 
| 819 | dest_predicate cs params (HOLogic.dest_Trueprop (Logic.strip_assums_concl r)); | |
| 820 | val ps = | |
| 821 | make_bool_args HOLogic.mk_not I bs i @ | |
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changeset | 822 | map HOLogic.mk_eq (make_args' argTs xs Ts ~~ ts) @ | 
| 45647 | 823 | map (subst o HOLogic.dest_Trueprop) (Logic.strip_assums_hyp r); | 
| 33338 | 824 | in | 
| 825 | fold_rev (fn (x, T) => fn P => HOLogic.exists_const T $ Abs (x, T, P)) | |
| 826 | (Logic.strip_params r) | |
| 45740 | 827 |           (if null ps then @{term True} else foldr1 HOLogic.mk_conj ps)
 | 
| 45647 | 828 | end; | 
| 5094 | 829 | |
| 830 | (* make a disjunction of all introduction rules *) | |
| 831 | ||
| 45647 | 832 | val fp_fun = | 
| 833 | fold_rev lambda (p :: bs @ xs) | |
| 45740 | 834 |         (if null intr_ts then @{term False}
 | 
| 45647 | 835 | else foldr1 HOLogic.mk_disj (map transform_rule intr_ts)); | 
| 5094 | 836 | |
| 61308 | 837 | (* add definition of recursive predicates to theory *) | 
| 5094 | 838 | |
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changeset | 839 | val rec_name = | 
| 28965 | 840 | if Binding.is_empty alt_name then | 
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changeset | 841 | Binding.name (space_implode "_" (map (Binding.name_of o fst) cnames_syn)) | 
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changeset | 842 | else alt_name; | 
| 5094 | 843 | |
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changeset | 844 | val is_auxiliary = length cs >= 2; | 
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changeset | 845 | val ((rec_const, (_, fp_def)), lthy') = lthy | 
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changeset | 846 | |> is_auxiliary ? Proof_Context.concealed | 
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changeset | 847 | |> Local_Theory.define | 
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changeset | 848 | ((rec_name, case cnames_syn of [(_, syn)] => syn | _ => NoSyn), | 
| 59859 | 849 |          ((Binding.concealed (Thm.def_binding rec_name), @{attributes [nitpick_unfold]}),
 | 
| 45592 | 850 | fold_rev lambda params | 
| 851 | (Const (fp_name, (predT --> predT) --> predT) $ fp_fun))) | |
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changeset | 852 | ||> Proof_Context.restore_naming lthy; | 
| 45647 | 853 | val fp_def' = | 
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changeset | 854 | Simplifier.rewrite (put_simpset HOL_basic_ss lthy' addsimps [fp_def]) | 
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changeset | 855 | (Thm.cterm_of lthy' (list_comb (rec_const, params))); | 
| 33278 | 856 | val specs = | 
| 857 | if length cs < 2 then [] | |
| 858 | else | |
| 859 | map_index (fn (i, (name_mx, c)) => | |
| 860 | let | |
| 861 | val Ts = arg_types_of (length params) c; | |
| 45647 | 862 | val xs = | 
| 61063 | 863 | map Free (Variable.variant_frees lthy' intr_ts (mk_names "x" (length Ts) ~~ Ts)); | 
| 33278 | 864 | in | 
| 59859 | 865 | (name_mx, (apfst Binding.concealed Attrib.empty_binding, fold_rev lambda (params @ xs) | 
| 33278 | 866 | (list_comb (rec_const, params @ make_bool_args' bs i @ | 
| 867 | make_args argTs (xs ~~ Ts))))) | |
| 868 | end) (cnames_syn ~~ cs); | |
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changeset | 869 | val (consts_defs, lthy'') = lthy' | 
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changeset | 870 | |> fold_map Local_Theory.define specs; | 
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changeset | 871 | val preds = (case cs of [_] => [rec_const] | _ => map #1 consts_defs); | 
| 5094 | 872 | |
| 61063 | 873 | val (_, ctxt'') = Variable.add_fixes (map (fst o dest_Free) params) lthy''; | 
| 874 | val mono = prove_mono quiet_mode skip_mono predT fp_fun monos ctxt''; | |
| 875 | val (_, lthy''') = lthy'' | |
| 876 | |> Local_Theory.note (apfst Binding.concealed Attrib.empty_binding, | |
| 877 | Proof_Context.export ctxt'' lthy'' [mono]); | |
| 878 | in | |
| 879 | (lthy''', Proof_Context.transfer (Proof_Context.theory_of lthy''') ctxt'', | |
| 880 | rec_name, mono, fp_def', map (#2 o #2) consts_defs, | |
| 881 | list_comb (rec_const, params), preds, argTs, bs, xs) | |
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changeset | 882 | end; | 
| 5094 | 883 | |
| 33669 | 884 | fun declare_rules rec_binding coind no_ind cnames | 
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changeset | 885 | preds intrs intr_bindings intr_atts elims eqs raw_induct lthy = | 
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changeset | 886 | let | 
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changeset | 887 | val rec_name = Binding.name_of rec_binding; | 
| 32773 | 888 | fun rec_qualified qualified = Binding.qualify qualified rec_name; | 
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changeset | 889 | val intr_names = map Binding.name_of intr_bindings; | 
| 61308 | 890 | val ind_case_names = | 
| 891 | if forall (equal "") intr_names then [] | |
| 892 | else [Attrib.internal (K (Rule_Cases.case_names intr_names))]; | |
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changeset | 893 | val induct = | 
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changeset | 894 | if coind then | 
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changeset | 895 | (raw_induct, | 
| 61308 | 896 | map (Attrib.internal o K) | 
| 897 | [Rule_Cases.case_names [rec_name], | |
| 898 | Rule_Cases.case_conclusion (rec_name, intr_names), | |
| 899 | Rule_Cases.consumes (1 - Thm.nprems_of raw_induct), | |
| 900 | Induct.coinduct_pred (hd cnames)]) | |
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changeset | 901 | else if no_ind orelse length cnames > 1 then | 
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changeset | 902 | (raw_induct, | 
| 61308 | 903 | ind_case_names @ | 
| 904 | [Attrib.internal (K (Rule_Cases.consumes (~ (Thm.nprems_of raw_induct))))]) | |
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changeset | 905 | else | 
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changeset | 906 | (raw_induct RSN (2, rev_mp), | 
| 61308 | 907 | ind_case_names @ | 
| 908 | [Attrib.internal (K (Rule_Cases.consumes (~ (Thm.nprems_of raw_induct))))]); | |
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changeset | 909 | |
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changeset | 910 | val (intrs', lthy1) = | 
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changeset | 911 | lthy |> | 
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changeset | 912 | Spec_Rules.add | 
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changeset | 913 | (if coind then Spec_Rules.Co_Inductive else Spec_Rules.Inductive) (preds, intrs) |> | 
| 33671 | 914 | Local_Theory.notes | 
| 33278 | 915 | (map (rec_qualified false) intr_bindings ~~ intr_atts ~~ | 
| 916 | map (fn th => [([th], | |
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changeset | 917 | [Attrib.internal (K (Context_Rules.intro_query NONE))])]) intrs) |>> | 
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changeset | 918 | map (hd o snd); | 
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changeset | 919 | val (((_, elims'), (_, [induct'])), lthy2) = | 
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changeset | 920 | lthy1 |> | 
| 33671 | 921 | Local_Theory.note ((rec_qualified true (Binding.name "intros"), []), intrs') ||>> | 
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changeset | 922 | fold_map (fn (name, (elim, cases, k)) => | 
| 33671 | 923 | Local_Theory.note | 
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changeset | 924 | ((Binding.qualify true (Long_Name.base_name name) (Binding.name "cases"), | 
| 61308 | 925 | map (Attrib.internal o K) | 
| 926 | ((if forall (equal "") cases then [] else [Rule_Cases.case_names cases]) @ | |
| 927 | [Rule_Cases.consumes (1 - Thm.nprems_of elim), | |
| 928 | Rule_Cases.constraints k, | |
| 929 | Induct.cases_pred name, | |
| 930 | Context_Rules.elim_query NONE])), [elim]) #> | |
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changeset | 931 | apfst (hd o snd)) (if null elims then [] else cnames ~~ elims) ||>> | 
| 33671 | 932 | Local_Theory.note | 
| 61308 | 933 | ((rec_qualified true (Binding.name (coind_prefix coind ^ "induct")), #2 induct), | 
| 934 | [rulify lthy1 (#1 induct)]); | |
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changeset | 935 | |
| 45647 | 936 | val (eqs', lthy3) = lthy2 |> | 
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changeset | 937 | fold_map (fn (name, eq) => Local_Theory.note | 
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changeset | 938 | ((Binding.qualify true (Long_Name.base_name name) (Binding.name "simps"), | 
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changeset | 939 | [Attrib.internal (K equation_add_permissive)]), [eq]) | 
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changeset | 940 | #> apfst (hd o snd)) | 
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changeset | 941 | (if null eqs then [] else (cnames ~~ eqs)) | 
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changeset | 942 | val (inducts, lthy4) = | 
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changeset | 943 | if no_ind orelse coind then ([], lthy3) | 
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changeset | 944 | else | 
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changeset | 945 | let val inducts = cnames ~~ Project_Rule.projects lthy3 (1 upto length cnames) induct' in | 
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changeset | 946 | lthy3 |> | 
| 33671 | 947 | Local_Theory.notes [((rec_qualified true (Binding.name "inducts"), []), | 
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changeset | 948 | inducts |> map (fn (name, th) => ([th], | 
| 61308 | 949 | ind_case_names @ | 
| 950 | [Attrib.internal (K (Rule_Cases.consumes (1 - Thm.nprems_of th))), | |
| 951 | Attrib.internal (K (Induct.induct_pred name))])))] |>> snd o hd | |
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changeset | 952 | end; | 
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changeset | 953 | in (intrs', elims', eqs', induct', inducts, lthy4) end; | 
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changeset | 954 | |
| 26534 | 955 | type inductive_flags = | 
| 33669 | 956 |   {quiet_mode: bool, verbose: bool, alt_name: binding, coind: bool,
 | 
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changeset | 957 | no_elim: bool, no_ind: bool, skip_mono: bool}; | 
| 26534 | 958 | |
| 959 | type add_ind_def = | |
| 960 | inductive_flags -> | |
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changeset | 961 | term list -> (Attrib.binding * term) list -> thm list -> | 
| 29581 | 962 | term list -> (binding * mixfix) list -> | 
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changeset | 963 | local_theory -> inductive_result * local_theory; | 
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changeset | 964 | |
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changeset | 965 | fun add_ind_def {quiet_mode, verbose, alt_name, coind, no_elim, no_ind, skip_mono}
 | 
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changeset | 966 | cs intros monos params cnames_syn lthy = | 
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changeset | 967 | let | 
| 25288 | 968 | val _ = null cnames_syn andalso error "No inductive predicates given"; | 
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changeset | 969 | val names = map (Binding.name_of o fst) cnames_syn; | 
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changeset | 970 | val _ = message (quiet_mode andalso not verbose) | 
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changeset | 971 |       ("Proofs for " ^ coind_prefix coind ^ "inductive predicate(s) " ^ commas_quote names);
 | 
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changeset | 972 | |
| 33671 | 973 | val cnames = map (Local_Theory.full_name lthy o #1) cnames_syn; (* FIXME *) | 
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changeset | 974 | val ((intr_names, intr_atts), intr_ts) = | 
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changeset | 975 | apfst split_list (split_list (map (check_rule lthy cs params) intros)); | 
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changeset | 976 | |
| 36642 | 977 | val (lthy1, lthy2, rec_name, mono, fp_def, rec_preds_defs, rec_const, preds, | 
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changeset | 978 | argTs, bs, xs) = mk_ind_def quiet_mode skip_mono alt_name coind cs intr_ts | 
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changeset | 979 | monos params cnames_syn lthy; | 
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changeset | 980 | |
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changeset | 981 | val (intrs, unfold) = prove_intrs quiet_mode coind mono fp_def (length bs + length xs) | 
| 36642 | 982 | intr_ts rec_preds_defs lthy2 lthy1; | 
| 33459 | 983 | val elims = | 
| 984 | if no_elim then [] | |
| 985 | else | |
| 986 | prove_elims quiet_mode cs params intr_ts (map Binding.name_of intr_names) | |
| 36642 | 987 | unfold rec_preds_defs lthy2 lthy1; | 
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changeset | 988 | val raw_induct = zero_var_indexes | 
| 33459 | 989 | (if no_ind then Drule.asm_rl | 
| 990 | else if coind then | |
| 42361 | 991 | singleton (Proof_Context.export lthy2 lthy1) | 
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changeset | 992 | (rotate_prems ~1 (Object_Logic.rulify lthy2 | 
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changeset | 993 | (fold_rule lthy2 rec_preds_defs | 
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changeset | 994 | (rewrite_rule lthy2 simp_thms3 | 
| 32652 | 995 |                 (mono RS (fp_def RS @{thm def_coinduct}))))))
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changeset | 996 | else | 
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changeset | 997 | prove_indrule quiet_mode cs argTs bs xs rec_const params intr_ts mono fp_def | 
| 36642 | 998 | rec_preds_defs lthy2 lthy1); | 
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changeset | 999 | val eqs = | 
| 45647 | 1000 | if no_elim then [] else prove_eqs quiet_mode cs params intr_ts intrs elims lthy2 lthy1; | 
| 5094 | 1001 | |
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changeset | 1002 | val elims' = map (fn (th, ns, i) => (rulify lthy1 th, ns, i)) elims; | 
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changeset | 1003 | val intrs' = map (rulify lthy1) intrs; | 
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changeset | 1004 | |
| 45647 | 1005 | val (intrs'', elims'', eqs', induct, inducts, lthy3) = | 
| 1006 | declare_rules rec_name coind no_ind | |
| 1007 | cnames preds intrs' intr_names intr_atts elims' eqs raw_induct lthy1; | |
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changeset | 1008 | |
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changeset | 1009 | val result = | 
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changeset | 1010 |       {preds = preds,
 | 
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changeset | 1011 | intrs = intrs'', | 
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changeset | 1012 | elims = elims'', | 
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changeset | 1013 | raw_induct = rulify lthy3 raw_induct, | 
| 35646 | 1014 | induct = induct, | 
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changeset | 1015 | inducts = inducts, | 
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changeset | 1016 | eqs = eqs'}; | 
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changeset | 1017 | |
| 36642 | 1018 | val lthy4 = lthy3 | 
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changeset | 1019 |       |> Local_Theory.declaration {syntax = false, pervasive = false} (fn phi =>
 | 
| 45290 | 1020 | let val result' = transform_result phi result; | 
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changeset | 1021 |         in put_inductives cnames (*global names!?*) ({names = cnames, coind = coind}, result') end);
 | 
| 36642 | 1022 | in (result, lthy4) end; | 
| 5094 | 1023 | |
| 6424 | 1024 | |
| 10735 | 1025 | (* external interfaces *) | 
| 5094 | 1026 | |
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changeset | 1027 | fun gen_add_inductive_i mk_def | 
| 59059 | 1028 | flags cnames_syn pnames spec monos lthy = | 
| 5094 | 1029 | let | 
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changeset | 1030 | |
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changeset | 1031 | (* abbrevs *) | 
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changeset | 1032 | |
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changeset | 1033 | val (_, ctxt1) = Variable.add_fixes (map (Binding.name_of o fst o fst) cnames_syn) lthy; | 
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changeset | 1034 | |
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changeset | 1035 | fun get_abbrev ((name, atts), t) = | 
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changeset | 1036 | if can (Logic.strip_assums_concl #> Logic.dest_equals) t then | 
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changeset | 1037 | let | 
| 29006 | 1038 | val _ = Binding.is_empty name andalso null atts orelse | 
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changeset | 1039 | error "Abbreviations may not have names or attributes"; | 
| 35624 | 1040 | val ((x, T), rhs) = Local_Defs.abs_def (snd (Local_Defs.cert_def ctxt1 t)); | 
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changeset | 1041 | val var = | 
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changeset | 1042 | (case find_first (fn ((c, _), _) => Binding.name_of c = x) cnames_syn of | 
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changeset | 1043 |               NONE => error ("Undeclared head of abbreviation " ^ quote x)
 | 
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changeset | 1044 | | SOME ((b, T'), mx) => | 
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changeset | 1045 |                 if T <> T' then error ("Bad type specification for abbreviation " ^ quote x)
 | 
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changeset | 1046 | else (b, mx)); | 
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changeset | 1047 | in SOME (var, rhs) end | 
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changeset | 1048 | else NONE; | 
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changeset | 1049 | |
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changeset | 1050 | val abbrevs = map_filter get_abbrev spec; | 
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changeset | 1051 | val bs = map (Binding.name_of o fst o fst) abbrevs; | 
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changeset | 1052 | |
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changeset | 1053 | |
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changeset | 1054 | (* predicates *) | 
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changeset | 1055 | |
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changeset | 1056 | val pre_intros = filter_out (is_some o get_abbrev) spec; | 
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changeset | 1057 | val cnames_syn' = filter_out (member (op =) bs o Binding.name_of o fst o fst) cnames_syn; | 
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changeset | 1058 | val cs = map (Free o apfst Binding.name_of o fst) cnames_syn'; | 
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changeset | 1059 | val ps = map Free pnames; | 
| 5094 | 1060 | |
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changeset | 1061 | val (_, ctxt2) = lthy |> Variable.add_fixes (map (Binding.name_of o fst o fst) cnames_syn'); | 
| 35624 | 1062 | val _ = map (fn abbr => Local_Defs.fixed_abbrev abbr ctxt2) abbrevs; | 
| 1063 | val ctxt3 = ctxt2 |> fold (snd oo Local_Defs.fixed_abbrev) abbrevs; | |
| 42361 | 1064 | val expand = Assumption.export_term ctxt3 lthy #> Proof_Context.cert_term lthy; | 
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changeset | 1065 | |
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changeset | 1066 | fun close_rule r = | 
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changeset | 1067 | fold (Logic.all o Free) (fold_aterms | 
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changeset | 1068 | (fn t as Free (v as (s, _)) => | 
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changeset | 1069 | if Variable.is_fixed ctxt1 s orelse | 
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changeset | 1070 | member (op =) ps t then I else insert (op =) v | 
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changeset | 1071 | | _ => I) r []) r; | 
| 5094 | 1072 | |
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changeset | 1073 | val intros = map (apsnd (Syntax.check_term lthy #> close_rule #> expand)) pre_intros; | 
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changeset | 1074 | val preds = map (fn ((c, _), mx) => (c, mx)) cnames_syn'; | 
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changeset | 1075 | in | 
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changeset | 1076 | lthy | 
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changeset | 1077 | |> mk_def flags cs intros monos ps preds | 
| 33671 | 1078 | ||> fold (snd oo Local_Theory.abbrev Syntax.mode_default) abbrevs | 
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changeset | 1079 | end; | 
| 5094 | 1080 | |
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changeset | 1081 | fun gen_add_inductive mk_def verbose coind cnames_syn pnames_syn intro_srcs raw_monos lthy = | 
| 5094 | 1082 | let | 
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changeset | 1083 | val ((vars, intrs), _) = lthy | 
| 42361 | 1084 | |> Proof_Context.set_mode Proof_Context.mode_abbrev | 
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changeset | 1085 | |> Specification.read_spec (cnames_syn @ pnames_syn) intro_srcs; | 
| 24721 | 1086 | val (cs, ps) = chop (length cnames_syn) vars; | 
| 1087 | val monos = Attrib.eval_thms lthy raw_monos; | |
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changeset | 1088 | val flags = | 
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changeset | 1089 |      {quiet_mode = false, verbose = verbose, alt_name = Binding.empty,
 | 
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changeset | 1090 | coind = coind, no_elim = false, no_ind = false, skip_mono = false}; | 
| 26128 | 1091 | in | 
| 1092 | lthy | |
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changeset | 1093 | |> gen_add_inductive_i mk_def flags cs (map (apfst Binding.name_of o fst) ps) intrs monos | 
| 26128 | 1094 | end; | 
| 5094 | 1095 | |
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changeset | 1096 | val add_inductive_i = gen_add_inductive_i add_ind_def; | 
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changeset | 1097 | val add_inductive = gen_add_inductive add_ind_def; | 
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changeset | 1098 | |
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changeset | 1099 | fun add_inductive_global flags cnames_syn pnames pre_intros monos thy = | 
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changeset | 1100 | let | 
| 29006 | 1101 | val name = Sign.full_name thy (fst (fst (hd cnames_syn))); | 
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changeset | 1102 | val ctxt' = thy | 
| 38388 | 1103 | |> Named_Target.theory_init | 
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changeset | 1104 | |> add_inductive_i flags cnames_syn pnames pre_intros monos |> snd | 
| 33671 | 1105 | |> Local_Theory.exit; | 
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changeset | 1106 | val info = #2 (the_inductive ctxt' name); | 
| 42361 | 1107 | in (info, Proof_Context.theory_of ctxt') end; | 
| 6424 | 1108 | |
| 1109 | ||
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changeset | 1110 | (* read off arities of inductive predicates from raw induction rule *) | 
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changeset | 1111 | fun arities_of induct = | 
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changeset | 1112 | map (fn (_ $ t $ u) => | 
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changeset | 1113 | (fst (dest_Const (head_of t)), length (snd (strip_comb u)))) | 
| 59582 | 1114 | (HOLogic.dest_conj (HOLogic.dest_Trueprop (Thm.concl_of induct))); | 
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changeset | 1115 | |
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changeset | 1116 | (* read off parameters of inductive predicate from raw induction rule *) | 
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changeset | 1117 | fun params_of induct = | 
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changeset | 1118 | let | 
| 59582 | 1119 | val (_ $ t $ u :: _) = HOLogic.dest_conj (HOLogic.dest_Trueprop (Thm.concl_of induct)); | 
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changeset | 1120 | val (_, ts) = strip_comb t; | 
| 45647 | 1121 | val (_, us) = strip_comb u; | 
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changeset | 1122 | in | 
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changeset | 1123 | List.take (ts, length ts - length us) | 
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changeset | 1124 | end; | 
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changeset | 1125 | |
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changeset | 1126 | val pname_of_intr = | 
| 59582 | 1127 | Thm.concl_of #> HOLogic.dest_Trueprop #> head_of #> dest_Const #> fst; | 
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changeset | 1128 | |
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changeset | 1129 | (* partition introduction rules according to predicate name *) | 
| 25822 | 1130 | fun gen_partition_rules f induct intros = | 
| 1131 | fold_rev (fn r => AList.map_entry op = (pname_of_intr (f r)) (cons r)) intros | |
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changeset | 1132 | (map (rpair [] o fst) (arities_of induct)); | 
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changeset | 1133 | |
| 25822 | 1134 | val partition_rules = gen_partition_rules I; | 
| 1135 | fun partition_rules' induct = gen_partition_rules fst induct; | |
| 1136 | ||
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changeset | 1137 | fun unpartition_rules intros xs = | 
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changeset | 1138 | fold_map (fn r => AList.map_entry_yield op = (pname_of_intr r) | 
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changeset | 1139 | (fn x :: xs => (x, xs)) #>> the) intros xs |> fst; | 
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changeset | 1140 | |
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changeset | 1141 | (* infer order of variables in intro rules from order of quantifiers in elim rule *) | 
| 60362 | 1142 | fun infer_intro_vars thy elim arity intros = | 
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changeset | 1143 | let | 
| 59582 | 1144 | val _ :: cases = Thm.prems_of elim; | 
| 1145 | val used = map (fst o fst) (Term.add_vars (Thm.prop_of elim) []); | |
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changeset | 1146 | fun mtch (t, u) = | 
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changeset | 1147 | let | 
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changeset | 1148 | val params = Logic.strip_params t; | 
| 45647 | 1149 | val vars = | 
| 1150 | map (Var o apfst (rpair 0)) | |
| 1151 | (Name.variant_list used (map fst params) ~~ map snd params); | |
| 1152 | val ts = | |
| 1153 | map (curry subst_bounds (rev vars)) | |
| 1154 | (List.drop (Logic.strip_assums_hyp t, arity)); | |
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changeset | 1155 | val us = Logic.strip_imp_prems u; | 
| 45647 | 1156 | val tab = | 
| 1157 | fold (Pattern.first_order_match thy) (ts ~~ us) (Vartab.empty, Vartab.empty); | |
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changeset | 1158 | in | 
| 32035 | 1159 | map (Envir.subst_term tab) vars | 
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changeset | 1160 | end | 
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changeset | 1161 | in | 
| 59582 | 1162 | map (mtch o apsnd Thm.prop_of) (cases ~~ intros) | 
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changeset | 1163 | end; | 
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changeset | 1164 | |
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changeset | 1165 | |
| 25978 | 1166 | |
| 58815 | 1167 | (** outer syntax **) | 
| 6424 | 1168 | |
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changeset | 1169 | fun gen_ind_decl mk_def coind = | 
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changeset | 1170 | Parse.fixes -- Parse.for_fixes -- | 
| 36954 | 1171 | Scan.optional Parse_Spec.where_alt_specs [] -- | 
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changeset | 1172 |   Scan.optional (@{keyword "monos"} |-- Parse.!!! Parse.xthms1) []
 | 
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changeset | 1173 | >> (fn (((preds, params), specs), monos) => | 
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changeset | 1174 | (snd o gen_add_inductive mk_def true coind preds params specs monos)); | 
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changeset | 1175 | |
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changeset | 1176 | val ind_decl = gen_ind_decl add_ind_def; | 
| 6424 | 1177 | |
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changeset | 1178 | val _ = | 
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changeset | 1179 |   Outer_Syntax.local_theory @{command_keyword inductive} "define inductive predicates"
 | 
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changeset | 1180 | (ind_decl false); | 
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changeset | 1181 | |
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changeset | 1182 | val _ = | 
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changeset | 1183 |   Outer_Syntax.local_theory @{command_keyword coinductive} "define coinductive predicates"
 | 
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changeset | 1184 | (ind_decl true); | 
| 6723 | 1185 | |
| 24867 | 1186 | val _ = | 
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changeset | 1187 |   Outer_Syntax.local_theory @{command_keyword inductive_cases}
 | 
| 50214 | 1188 | "create simplified instances of elimination rules" | 
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changeset | 1189 | (Parse.and_list1 Parse_Spec.specs >> (snd oo inductive_cases)); | 
| 7107 | 1190 | |
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changeset | 1191 | val _ = | 
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changeset | 1192 |   Outer_Syntax.local_theory @{command_keyword inductive_simps}
 | 
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changeset | 1193 | "create simplification rules for inductive predicates" | 
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changeset | 1194 | (Parse.and_list1 Parse_Spec.specs >> (snd oo inductive_simps)); | 
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changeset | 1195 | |
| 50302 | 1196 | val _ = | 
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changeset | 1197 |   Outer_Syntax.command @{command_keyword print_inductives}
 | 
| 50302 | 1198 | "print (co)inductive definitions and monotonicity rules" | 
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changeset | 1199 | (Parse.opt_bang >> (fn b => Toplevel.keep (print_inductives b o Toplevel.context_of))); | 
| 50302 | 1200 | |
| 5094 | 1201 | end; |