| author | blanchet | 
| Thu, 30 Jan 2014 21:02:19 +0100 | |
| changeset 55193 | 78eb7fab3284 | 
| parent 54742 | 7a86358a3c0b | 
| child 55375 | d26d5f988d71 | 
| permissions | -rw-r--r-- | 
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changeset | 1 | (* Title: HOL/Tools/lin_arith.ML | 
| 29288 | 2 | Author: Tjark Weber and Tobias Nipkow, TU Muenchen | 
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changeset | 3 | |
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changeset | 4 | HOL setup for linear arithmetic (see Provers/Arith/fast_lin_arith.ML). | 
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changeset | 5 | *) | 
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changeset | 6 | |
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changeset | 7 | signature LIN_ARITH = | 
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changeset | 8 | sig | 
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changeset | 9 | val pre_tac: Proof.context -> int -> tactic | 
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changeset | 10 | val simple_tac: Proof.context -> int -> tactic | 
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changeset | 11 | val tac: Proof.context -> int -> tactic | 
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changeset | 12 | val simproc: Proof.context -> term -> thm option | 
| 31100 | 13 | val add_inj_thms: thm list -> Context.generic -> Context.generic | 
| 14 | val add_lessD: thm -> Context.generic -> Context.generic | |
| 15 | val add_simps: thm list -> Context.generic -> Context.generic | |
| 16 | val add_simprocs: simproc list -> Context.generic -> Context.generic | |
| 31082 | 17 | val add_inj_const: string * typ -> Context.generic -> Context.generic | 
| 31100 | 18 | val add_discrete_type: string -> Context.generic -> Context.generic | 
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changeset | 19 | val set_number_of: (theory -> typ -> int -> cterm) -> Context.generic -> Context.generic | 
| 31082 | 20 | val setup: Context.generic -> Context.generic | 
| 31100 | 21 | val global_setup: theory -> theory | 
| 31082 | 22 | val split_limit: int Config.T | 
| 23 | val neq_limit: int Config.T | |
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changeset | 24 | val verbose: bool Config.T | 
| 44654 | 25 | val trace: bool Config.T | 
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changeset | 26 | end; | 
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changeset | 27 | |
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changeset | 28 | structure Lin_Arith: LIN_ARITH = | 
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changeset | 29 | struct | 
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changeset | 30 | |
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changeset | 31 | (* Parameters data for general linear arithmetic functor *) | 
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changeset | 32 | |
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changeset | 33 | structure LA_Logic: LIN_ARITH_LOGIC = | 
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changeset | 34 | struct | 
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changeset | 35 | |
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changeset | 36 | val ccontr = ccontr; | 
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changeset | 37 | val conjI = conjI; | 
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changeset | 38 | val notI = notI; | 
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changeset | 39 | val sym = sym; | 
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changeset | 40 | val trueI = TrueI; | 
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changeset | 41 | val not_lessD = @{thm linorder_not_less} RS iffD1;
 | 
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changeset | 42 | val not_leD = @{thm linorder_not_le} RS iffD1;
 | 
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changeset | 43 | |
| 35410 | 44 | fun mk_Eq thm = thm RS @{thm Eq_FalseI} handle THM _ => thm RS @{thm Eq_TrueI};
 | 
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changeset | 45 | |
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changeset | 46 | val mk_Trueprop = HOLogic.mk_Trueprop; | 
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changeset | 47 | |
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changeset | 48 | fun atomize thm = case Thm.prop_of thm of | 
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changeset | 49 |     Const (@{const_name Trueprop}, _) $ (Const (@{const_name HOL.conj}, _) $ _ $ _) =>
 | 
| 31100 | 50 | atomize (thm RS conjunct1) @ atomize (thm RS conjunct2) | 
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changeset | 51 | | _ => [thm]; | 
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changeset | 52 | |
| 38558 | 53 | fun neg_prop ((TP as Const(@{const_name Trueprop}, _)) $ (Const (@{const_name Not}, _) $ t)) = TP $ t
 | 
| 54 |   | neg_prop ((TP as Const(@{const_name Trueprop}, _)) $ t) = TP $ (HOLogic.Not $t)
 | |
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changeset | 55 |   | neg_prop t = raise TERM ("neg_prop", [t]);
 | 
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changeset | 56 | |
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changeset | 57 | fun is_False thm = | 
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changeset | 58 | let val _ $ t = Thm.prop_of thm | 
| 45740 | 59 |   in t = @{term False} end;
 | 
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changeset | 60 | |
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changeset | 61 | fun is_nat t = (fastype_of1 t = HOLogic.natT); | 
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changeset | 62 | |
| 31100 | 63 | fun mk_nat_thm thy t = | 
| 64 | let | |
| 65 |     val cn = cterm_of thy (Var (("n", 0), HOLogic.natT))
 | |
| 66 | and ct = cterm_of thy t | |
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changeset | 67 |   in Drule.instantiate_normalize ([], [(cn, ct)]) @{thm le0} end;
 | 
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changeset | 68 | |
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changeset | 69 | end; | 
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changeset | 70 | |
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changeset | 71 | |
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changeset | 72 | (* arith context data *) | 
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changeset | 73 | |
| 33519 | 74 | structure Lin_Arith_Data = Generic_Data | 
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changeset | 75 | ( | 
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changeset | 76 |   type T = {splits: thm list,
 | 
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changeset | 77 | inj_consts: (string * typ) list, | 
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changeset | 78 | discrete: string list}; | 
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changeset | 79 |   val empty = {splits = [], inj_consts = [], discrete = []};
 | 
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changeset | 80 | val extend = I; | 
| 33519 | 81 | fun merge | 
| 44946 | 82 |    ({splits = splits1, inj_consts = inj_consts1, discrete = discrete1},
 | 
| 83 |     {splits = splits2, inj_consts = inj_consts2, discrete = discrete2}) : T =
 | |
| 33520 | 84 |    {splits = Thm.merge_thms (splits1, splits2),
 | 
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changeset | 85 | inj_consts = Library.merge (op =) (inj_consts1, inj_consts2), | 
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changeset | 86 | discrete = Library.merge (op =) (discrete1, discrete2)}; | 
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changeset | 87 | ); | 
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changeset | 88 | |
| 31100 | 89 | val get_arith_data = Lin_Arith_Data.get o Context.Proof; | 
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changeset | 90 | |
| 31100 | 91 | fun add_split thm = Lin_Arith_Data.map (fn {splits, inj_consts, discrete} =>
 | 
| 92 |   {splits = update Thm.eq_thm_prop thm splits,
 | |
| 93 | inj_consts = inj_consts, discrete = discrete}); | |
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changeset | 94 | |
| 31100 | 95 | fun add_discrete_type d = Lin_Arith_Data.map (fn {splits, inj_consts, discrete} =>
 | 
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changeset | 96 |   {splits = splits, inj_consts = inj_consts,
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changeset | 97 | discrete = update (op =) d discrete}); | 
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changeset | 98 | |
| 31100 | 99 | fun add_inj_const c = Lin_Arith_Data.map (fn {splits, inj_consts, discrete} =>
 | 
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changeset | 100 |   {splits = splits, inj_consts = update (op =) c inj_consts,
 | 
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changeset | 101 | discrete = discrete}); | 
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changeset | 102 | |
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changeset | 103 | val split_limit = Attrib.setup_config_int @{binding linarith_split_limit} (K 9);
 | 
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changeset | 104 | val neq_limit = Attrib.setup_config_int @{binding linarith_neq_limit} (K 9);
 | 
| 44654 | 105 | val verbose = Attrib.setup_config_bool @{binding linarith_verbose} (K true);
 | 
| 106 | val trace = Attrib.setup_config_bool @{binding linarith_trace} (K false);
 | |
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changeset | 107 | |
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changeset | 108 | |
| 31100 | 109 | structure LA_Data = | 
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changeset | 110 | struct | 
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changeset | 111 | |
| 44654 | 112 | val neq_limit = neq_limit; | 
| 113 | val verbose = verbose; | |
| 114 | val trace = trace; | |
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changeset | 115 | |
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changeset | 116 | |
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changeset | 117 | (* Decomposition of terms *) | 
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changeset | 118 | |
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changeset | 119 | (*internal representation of linear (in-)equations*) | 
| 26942 | 120 | type decomp = | 
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changeset | 121 | ((term * Rat.rat) list * Rat.rat * string * (term * Rat.rat) list * Rat.rat * bool); | 
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changeset | 122 | |
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changeset | 123 | fun nT (Type ("fun", [N, _])) = (N = HOLogic.natT)
 | 
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changeset | 124 | | nT _ = false; | 
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changeset | 125 | |
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changeset | 126 | fun add_atom (t : term) (m : Rat.rat) (p : (term * Rat.rat) list, i : Rat.rat) : | 
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changeset | 127 | (term * Rat.rat) list * Rat.rat = | 
| 52131 | 128 | case AList.lookup Envir.aeconv p t of | 
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changeset | 129 | NONE => ((t, m) :: p, i) | 
| 52131 | 130 | | SOME n => (AList.update Envir.aeconv (t, Rat.add n m) p, i); | 
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changeset | 131 | |
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changeset | 132 | (* decompose nested multiplications, bracketing them to the right and combining | 
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changeset | 133 | all their coefficients | 
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changeset | 134 | |
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changeset | 135 | inj_consts: list of constants to be ignored when encountered | 
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changeset | 136 | (e.g. arithmetic type conversions that preserve value) | 
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changeset | 137 | |
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changeset | 138 | m: multiplicity associated with the entire product | 
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changeset | 139 | |
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changeset | 140 | returns either (SOME term, associated multiplicity) or (NONE, constant) | 
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changeset | 141 | *) | 
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changeset | 142 | fun demult (inj_consts : (string * typ) list) : term * Rat.rat -> term option * Rat.rat = | 
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changeset | 143 | let | 
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changeset | 144 |   fun demult ((mC as Const (@{const_name Groups.times}, _)) $ s $ t, m) =
 | 
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changeset | 145 |       (case s of Const (@{const_name Groups.times}, _) $ s1 $ s2 =>
 | 
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changeset | 146 | (* bracketing to the right: '(s1 * s2) * t' becomes 's1 * (s2 * t)' *) | 
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changeset | 147 | demult (mC $ s1 $ (mC $ s2 $ t), m) | 
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changeset | 148 | | _ => | 
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changeset | 149 | (* product 's * t', where either factor can be 'NONE' *) | 
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changeset | 150 | (case demult (s, m) of | 
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changeset | 151 | (SOME s', m') => | 
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changeset | 152 | (case demult (t, m') of | 
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changeset | 153 | (SOME t', m'') => (SOME (mC $ s' $ t'), m'') | 
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changeset | 154 | | (NONE, m'') => (SOME s', m'')) | 
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changeset | 155 | | (NONE, m') => demult (t, m'))) | 
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changeset | 156 |     | demult ((mC as Const (@{const_name Fields.divide}, _)) $ s $ t, m) =
 | 
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changeset | 157 | (* FIXME: Shouldn't we simplify nested quotients, e.g. '(s/t)/u' could | 
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changeset | 158 | become 's/(t*u)', and '(s*t)/u' could become 's*(t/u)' ? Note that | 
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changeset | 159 | if we choose to do so here, the simpset used by arith must be able to | 
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changeset | 160 | perform the same simplifications. *) | 
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changeset | 161 | (* FIXME: Currently we treat the numerator as atomic unless the | 
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changeset | 162 | denominator can be reduced to a numeric constant. It might be better | 
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changeset | 163 | to demult the numerator in any case, and invent a new term of the form | 
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changeset | 164 | '1 / t' if the numerator can be reduced, but the denominator cannot. *) | 
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changeset | 165 | (* FIXME: Currently we even treat the whole fraction as atomic unless the | 
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changeset | 166 | denominator can be reduced to a numeric constant. It might be better | 
| 25015 | 167 | to use the partially reduced denominator (i.e. 's / (2*t)' could be | 
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changeset | 168 | demult'ed to 's / t' with multiplicity .5). This would require a | 
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changeset | 169 | very simple change only below, but it breaks existing proofs. *) | 
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changeset | 170 | (* quotient 's / t', where the denominator t can be NONE *) | 
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changeset | 171 | (* Note: will raise Rat.DIVZERO iff m' is Rat.zero *) | 
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changeset | 172 | (case demult (t, Rat.one) of | 
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changeset | 173 | (SOME _, _) => (SOME (mC $ s $ t), m) | 
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changeset | 174 | | (NONE, m') => apsnd (Rat.mult (Rat.inv m')) (demult (s, m))) | 
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changeset | 175 | (* terms that evaluate to numeric constants *) | 
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changeset | 176 |     | demult (Const (@{const_name Groups.uminus}, _) $ t, m) = demult (t, Rat.neg m)
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changeset | 177 |     | demult (Const (@{const_name Groups.zero}, _), _) = (NONE, Rat.zero)
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changeset | 178 |     | demult (Const (@{const_name Groups.one}, _), m) = (NONE, m)
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changeset | 179 | (*Warning: in rare cases (neg_)numeral encloses a non-numeral, | 
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changeset | 180 | in which case dest_num raises TERM; hence all the handles below. | 
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changeset | 181 | Same for Suc-terms that turn out not to be numerals - | 
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changeset | 182 | although the simplifier should eliminate those anyway ...*) | 
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changeset | 183 |     | demult (t as Const ("Num.numeral_class.numeral", _) $ n, m) =
 | 
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changeset | 184 | ((NONE, Rat.mult m (Rat.rat_of_int (HOLogic.dest_num n))) | 
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changeset | 185 | handle TERM _ => (SOME t, m)) | 
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changeset | 186 |     | demult (t as Const (@{const_name Suc}, _) $ _, m) =
 | 
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changeset | 187 | ((NONE, Rat.mult m (Rat.rat_of_int (HOLogic.dest_nat t))) | 
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changeset | 188 | handle TERM _ => (SOME t, m)) | 
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changeset | 189 | (* injection constants are ignored *) | 
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changeset | 190 | | demult (t as Const f $ x, m) = | 
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changeset | 191 | if member (op =) inj_consts f then demult (x, m) else (SOME t, m) | 
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changeset | 192 | (* everything else is considered atomic *) | 
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changeset | 193 | | demult (atom, m) = (SOME atom, m) | 
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changeset | 194 | in demult end; | 
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changeset | 195 | |
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changeset | 196 | fun decomp0 (inj_consts : (string * typ) list) (rel : string, lhs : term, rhs : term) : | 
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changeset | 197 | ((term * Rat.rat) list * Rat.rat * string * (term * Rat.rat) list * Rat.rat) option = | 
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changeset | 198 | let | 
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changeset | 199 | (* Turns a term 'all' and associated multiplicity 'm' into a list 'p' of | 
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changeset | 200 | summands and associated multiplicities, plus a constant 'i' (with implicit | 
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changeset | 201 | multiplicity 1) *) | 
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changeset | 202 |   fun poly (Const (@{const_name Groups.plus}, _) $ s $ t,
 | 
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changeset | 203 | m : Rat.rat, pi : (term * Rat.rat) list * Rat.rat) = poly (s, m, poly (t, m, pi)) | 
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changeset | 204 |     | poly (all as Const (@{const_name Groups.minus}, T) $ s $ t, m, pi) =
 | 
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changeset | 205 | if nT T then add_atom all m pi else poly (s, m, poly (t, Rat.neg m, pi)) | 
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changeset | 206 |     | poly (all as Const (@{const_name Groups.uminus}, T) $ t, m, pi) =
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changeset | 207 | if nT T then add_atom all m pi else poly (t, Rat.neg m, pi) | 
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changeset | 208 |     | poly (Const (@{const_name Groups.zero}, _), _, pi) =
 | 
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changeset | 209 | pi | 
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changeset | 210 |     | poly (Const (@{const_name Groups.one}, _), m, (p, i)) =
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changeset | 211 | (p, Rat.add i m) | 
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changeset | 212 |     | poly (all as Const ("Num.numeral_class.numeral", Type(_,[_,_])) $ t, m, pi as (p, i)) =
 | 
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changeset | 213 | (let val k = HOLogic.dest_num t | 
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changeset | 214 | in (p, Rat.add i (Rat.mult m (Rat.rat_of_int k))) end | 
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changeset | 215 | handle TERM _ => add_atom all m pi) | 
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changeset | 216 |     | poly (Const (@{const_name Suc}, _) $ t, m, (p, i)) =
 | 
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changeset | 217 | poly (t, m, (p, Rat.add i m)) | 
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changeset | 218 |     | poly (all as Const (@{const_name Groups.times}, _) $ _ $ _, m, pi as (p, i)) =
 | 
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changeset | 219 | (case demult inj_consts (all, m) of | 
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changeset | 220 | (NONE, m') => (p, Rat.add i m') | 
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changeset | 221 | | (SOME u, m') => add_atom u m' pi) | 
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changeset | 222 |     | poly (all as Const (@{const_name Fields.divide}, _) $ _ $ _, m, pi as (p, i)) =
 | 
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changeset | 223 | (case demult inj_consts (all, m) of | 
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changeset | 224 | (NONE, m') => (p, Rat.add i m') | 
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changeset | 225 | | (SOME u, m') => add_atom u m' pi) | 
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changeset | 226 | | poly (all as Const f $ x, m, pi) = | 
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changeset | 227 | if member (op =) inj_consts f then poly (x, m, pi) else add_atom all m pi | 
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changeset | 228 | | poly (all, m, pi) = | 
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changeset | 229 | add_atom all m pi | 
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changeset | 230 | val (p, i) = poly (lhs, Rat.one, ([], Rat.zero)) | 
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changeset | 231 | val (q, j) = poly (rhs, Rat.one, ([], Rat.zero)) | 
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changeset | 232 | in | 
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changeset | 233 | case rel of | 
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changeset | 234 |     @{const_name Orderings.less}    => SOME (p, i, "<", q, j)
 | 
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changeset | 235 |   | @{const_name Orderings.less_eq} => SOME (p, i, "<=", q, j)
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changeset | 236 |   | @{const_name HOL.eq}            => SOME (p, i, "=", q, j)
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changeset | 237 | | _ => NONE | 
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changeset | 238 | end handle Rat.DIVZERO => NONE; | 
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changeset | 239 | |
| 24271 | 240 | fun of_lin_arith_sort thy U = | 
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changeset | 241 |   Sign.of_sort thy (U, @{sort Rings.linordered_idom});
 | 
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changeset | 242 | |
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changeset | 243 | fun allows_lin_arith thy (discrete : string list) (U as Type (D, [])) : bool * bool = | 
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changeset | 244 | if of_lin_arith_sort thy U then (true, member (op =) discrete D) | 
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changeset | 245 | else if member (op =) discrete D then (true, true) else (false, false) | 
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changeset | 246 | | allows_lin_arith sg discrete U = (of_lin_arith_sort sg U, false); | 
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changeset | 247 | |
| 26942 | 248 | fun decomp_typecheck (thy, discrete, inj_consts) (T : typ, xxx) : decomp option = | 
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changeset | 249 | case T of | 
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changeset | 250 |     Type ("fun", [U, _]) =>
 | 
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changeset | 251 | (case allows_lin_arith thy discrete U of | 
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changeset | 252 | (true, d) => | 
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changeset | 253 | (case decomp0 inj_consts xxx of | 
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changeset | 254 | NONE => NONE | 
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changeset | 255 | | SOME (p, i, rel, q, j) => SOME (p, i, rel, q, j, d)) | 
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changeset | 256 | | (false, _) => | 
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changeset | 257 | NONE) | 
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changeset | 258 | | _ => NONE; | 
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changeset | 259 | |
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changeset | 260 | fun negate (SOME (x, i, rel, y, j, d)) = SOME (x, i, "~" ^ rel, y, j, d) | 
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changeset | 261 | | negate NONE = NONE; | 
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changeset | 262 | |
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changeset | 263 | fun decomp_negation data | 
| 38558 | 264 |   ((Const (@{const_name Trueprop}, _)) $ (Const (rel, T) $ lhs $ rhs)) : decomp option =
 | 
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changeset | 265 | decomp_typecheck data (T, (rel, lhs, rhs)) | 
| 38558 | 266 |   | decomp_negation data ((Const (@{const_name Trueprop}, _)) $
 | 
| 267 |   (Const (@{const_name Not}, _) $ (Const (rel, T) $ lhs $ rhs))) =
 | |
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changeset | 268 | negate (decomp_typecheck data (T, (rel, lhs, rhs))) | 
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changeset | 269 | | decomp_negation data _ = | 
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changeset | 270 | NONE; | 
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changeset | 271 | |
| 26942 | 272 | fun decomp ctxt : term -> decomp option = | 
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changeset | 273 | let | 
| 42361 | 274 | val thy = Proof_Context.theory_of ctxt | 
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changeset | 275 |     val {discrete, inj_consts, ...} = get_arith_data ctxt
 | 
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changeset | 276 | in decomp_negation (thy, discrete, inj_consts) end; | 
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changeset | 277 | |
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changeset | 278 | fun domain_is_nat (_ $ (Const (_, T) $ _ $ _)) = nT T | 
| 38558 | 279 |   | domain_is_nat (_ $ (Const (@{const_name Not}, _) $ (Const (_, T) $ _ $ _))) = nT T
 | 
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changeset | 280 | | domain_is_nat _ = false; | 
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changeset | 281 | |
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changeset | 282 | |
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changeset | 283 | (*---------------------------------------------------------------------------*) | 
| 32369 | 284 | (* the following code performs splitting of certain constants (e.g., min, *) | 
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changeset | 285 | (* max) in a linear arithmetic problem; similar to what split_tac later does *) | 
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changeset | 286 | (* to the proof state *) | 
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changeset | 287 | (*---------------------------------------------------------------------------*) | 
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changeset | 288 | |
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changeset | 289 | (* checks if splitting with 'thm' is implemented *) | 
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changeset | 290 | |
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changeset | 291 | fun is_split_thm ctxt thm = | 
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changeset | 292 | (case concl_of thm of _ $ (_ $ (_ $ lhs) $ _) => | 
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changeset | 293 | (* Trueprop $ ((op =) $ (?P $ lhs) $ rhs) *) | 
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changeset | 294 | (case head_of lhs of | 
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changeset | 295 | Const (a, _) => | 
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changeset | 296 | member (op =) | 
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changeset | 297 |          [@{const_name Orderings.max},
 | 
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changeset | 298 |           @{const_name Orderings.min},
 | 
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changeset | 299 |           @{const_name Groups.abs},
 | 
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changeset | 300 |           @{const_name Groups.minus},
 | 
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changeset | 301 | "Int.nat" (*DYNAMIC BINDING!*), | 
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changeset | 302 | "Divides.div_class.mod" (*DYNAMIC BINDING!*), | 
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changeset | 303 | "Divides.div_class.div" (*DYNAMIC BINDING!*)] a | 
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changeset | 304 | | _ => | 
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changeset | 305 |       (warning ("Lin. Arith.: wrong format for split rule " ^ Display.string_of_thm ctxt thm);
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changeset | 306 | false)) | 
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changeset | 307 | | _ => | 
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changeset | 308 |     (warning ("Lin. Arith.: wrong format for split rule " ^ Display.string_of_thm ctxt thm);
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changeset | 309 | false)); | 
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changeset | 310 | |
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changeset | 311 | (* substitute new for occurrences of old in a term, incrementing bound *) | 
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changeset | 312 | (* variables as needed when substituting inside an abstraction *) | 
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changeset | 313 | |
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changeset | 314 | fun subst_term ([] : (term * term) list) (t : term) = t | 
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changeset | 315 | | subst_term pairs t = | 
| 52131 | 316 | (case AList.lookup Envir.aeconv pairs t of | 
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changeset | 317 | SOME new => | 
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changeset | 318 | new | 
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changeset | 319 | | NONE => | 
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changeset | 320 | (case t of Abs (a, T, body) => | 
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changeset | 321 | let val pairs' = map (pairself (incr_boundvars 1)) pairs | 
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changeset | 322 | in Abs (a, T, subst_term pairs' body) end | 
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changeset | 323 | | t1 $ t2 => | 
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changeset | 324 | subst_term pairs t1 $ subst_term pairs t2 | 
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changeset | 325 | | _ => t)); | 
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changeset | 326 | |
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changeset | 327 | (* approximates the effect of one application of split_tac (followed by NNF *) | 
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changeset | 328 | (* normalization) on the subgoal represented by '(Ts, terms)'; returns a *) | 
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changeset | 329 | (* list of new subgoals (each again represented by a typ list for bound *) | 
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changeset | 330 | (* variables and a term list for premises), or NONE if split_tac would fail *) | 
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changeset | 331 | (* on the subgoal *) | 
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changeset | 332 | |
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changeset | 333 | (* FIXME: currently only the effect of certain split theorems is reproduced *) | 
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changeset | 334 | (* (which is why we need 'is_split_thm'). A more canonical *) | 
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changeset | 335 | (* implementation should analyze the right-hand side of the split *) | 
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changeset | 336 | (* theorem that can be applied, and modify the subgoal accordingly. *) | 
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changeset | 337 | (* Or even better, the splitter should be extended to provide *) | 
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changeset | 338 | (* splitting on terms as well as splitting on theorems (where the *) | 
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changeset | 339 | (* former can have a faster implementation as it does not need to be *) | 
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changeset | 340 | (* proof-producing). *) | 
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changeset | 341 | |
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changeset | 342 | fun split_once_items ctxt (Ts : typ list, terms : term list) : | 
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changeset | 343 | (typ list * term list) list option = | 
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changeset | 344 | let | 
| 42361 | 345 | val thy = Proof_Context.theory_of ctxt | 
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changeset | 346 | (* takes a list [t1, ..., tn] to the term *) | 
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changeset | 347 | (* tn' --> ... --> t1' --> False , *) | 
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changeset | 348 | (* where ti' = HOLogic.dest_Trueprop ti *) | 
| 32369 | 349 | fun REPEAT_DETERM_etac_rev_mp tms = | 
| 350 | fold (curry HOLogic.mk_imp) (map HOLogic.dest_Trueprop tms) | |
| 45740 | 351 |       @{term False}
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changeset | 352 | val split_thms = filter (is_split_thm ctxt) (#splits (get_arith_data ctxt)) | 
| 32369 | 353 | val cmap = Splitter.cmap_of_split_thms split_thms | 
| 354 | val goal_tm = REPEAT_DETERM_etac_rev_mp terms | |
| 355 | val splits = Splitter.split_posns cmap thy Ts goal_tm | |
| 31082 | 356 | val split_limit = Config.get ctxt split_limit | 
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changeset | 357 | in | 
| 32369 | 358 | if length splits > split_limit then ( | 
| 359 |     tracing ("linarith_split_limit exceeded (current value is " ^
 | |
| 360 | string_of_int split_limit ^ ")"); | |
| 361 | NONE | |
| 362 | ) else case splits of | |
| 363 | [] => | |
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changeset | 364 | (* split_tac would fail: no possible split *) | 
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changeset | 365 | NONE | 
| 32369 | 366 | | (_, _::_, _, _, _) :: _ => | 
| 367 | (* disallow a split that involves non-locally bound variables (except *) | |
| 368 | (* when bound by outermost meta-quantifiers) *) | |
| 369 | NONE | |
| 370 | | (_, [], _, split_type, split_term) :: _ => | |
| 371 | (* ignore all but the first possible split *) | |
| 372 | (case strip_comb split_term of | |
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changeset | 373 | (* ?P (max ?i ?j) = ((?i <= ?j --> ?P ?j) & (~ ?i <= ?j --> ?P ?i)) *) | 
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changeset | 374 |       (Const (@{const_name Orderings.max}, _), [t1, t2]) =>
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changeset | 375 | let | 
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changeset | 376 | val rev_terms = rev terms | 
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changeset | 377 | val terms1 = map (subst_term [(split_term, t1)]) rev_terms | 
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changeset | 378 | val terms2 = map (subst_term [(split_term, t2)]) rev_terms | 
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changeset | 379 |         val t1_leq_t2     = Const (@{const_name Orderings.less_eq},
 | 
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changeset | 380 | split_type --> split_type --> HOLogic.boolT) $ t1 $ t2 | 
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changeset | 381 | val not_t1_leq_t2 = HOLogic.Not $ t1_leq_t2 | 
| 45740 | 382 |         val not_false     = HOLogic.mk_Trueprop (HOLogic.Not $ @{term False})
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changeset | 383 | val subgoal1 = (HOLogic.mk_Trueprop t1_leq_t2) :: terms2 @ [not_false] | 
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changeset | 384 | val subgoal2 = (HOLogic.mk_Trueprop not_t1_leq_t2) :: terms1 @ [not_false] | 
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changeset | 385 | in | 
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changeset | 386 | SOME [(Ts, subgoal1), (Ts, subgoal2)] | 
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changeset | 387 | end | 
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changeset | 388 | (* ?P (min ?i ?j) = ((?i <= ?j --> ?P ?i) & (~ ?i <= ?j --> ?P ?j)) *) | 
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changeset | 389 |     | (Const (@{const_name Orderings.min}, _), [t1, t2]) =>
 | 
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changeset | 390 | let | 
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changeset | 391 | val rev_terms = rev terms | 
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changeset | 392 | val terms1 = map (subst_term [(split_term, t1)]) rev_terms | 
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changeset | 393 | val terms2 = map (subst_term [(split_term, t2)]) rev_terms | 
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changeset | 394 |         val t1_leq_t2     = Const (@{const_name Orderings.less_eq},
 | 
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changeset | 395 | split_type --> split_type --> HOLogic.boolT) $ t1 $ t2 | 
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changeset | 396 | val not_t1_leq_t2 = HOLogic.Not $ t1_leq_t2 | 
| 45740 | 397 |         val not_false     = HOLogic.mk_Trueprop (HOLogic.Not $ @{term False})
 | 
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changeset | 398 | val subgoal1 = (HOLogic.mk_Trueprop t1_leq_t2) :: terms1 @ [not_false] | 
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changeset | 399 | val subgoal2 = (HOLogic.mk_Trueprop not_t1_leq_t2) :: terms2 @ [not_false] | 
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changeset | 400 | in | 
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changeset | 401 | SOME [(Ts, subgoal1), (Ts, subgoal2)] | 
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changeset | 402 | end | 
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changeset | 403 | (* ?P (abs ?a) = ((0 <= ?a --> ?P ?a) & (?a < 0 --> ?P (- ?a))) *) | 
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changeset | 404 |     | (Const (@{const_name Groups.abs}, _), [t1]) =>
 | 
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changeset | 405 | let | 
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changeset | 406 | val rev_terms = rev terms | 
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changeset | 407 | val terms1 = map (subst_term [(split_term, t1)]) rev_terms | 
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changeset | 408 |         val terms2      = map (subst_term [(split_term, Const (@{const_name Groups.uminus},
 | 
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changeset | 409 | split_type --> split_type) $ t1)]) rev_terms | 
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changeset | 410 |         val zero        = Const (@{const_name Groups.zero}, split_type)
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changeset | 411 |         val zero_leq_t1 = Const (@{const_name Orderings.less_eq},
 | 
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changeset | 412 | split_type --> split_type --> HOLogic.boolT) $ zero $ t1 | 
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changeset | 413 |         val t1_lt_zero  = Const (@{const_name Orderings.less},
 | 
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changeset | 414 | split_type --> split_type --> HOLogic.boolT) $ t1 $ zero | 
| 45740 | 415 |         val not_false   = HOLogic.mk_Trueprop (HOLogic.Not $ @{term False})
 | 
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changeset | 416 | val subgoal1 = (HOLogic.mk_Trueprop zero_leq_t1) :: terms1 @ [not_false] | 
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changeset | 417 | val subgoal2 = (HOLogic.mk_Trueprop t1_lt_zero) :: terms2 @ [not_false] | 
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changeset | 418 | in | 
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changeset | 419 | SOME [(Ts, subgoal1), (Ts, subgoal2)] | 
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changeset | 420 | end | 
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changeset | 421 | (* ?P (?a - ?b) = ((?a < ?b --> ?P 0) & (ALL d. ?a = ?b + d --> ?P d)) *) | 
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changeset | 422 |     | (Const (@{const_name Groups.minus}, _), [t1, t2]) =>
 | 
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changeset | 423 | let | 
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changeset | 424 | (* "d" in the above theorem becomes a new bound variable after NNF *) | 
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changeset | 425 | (* transformation, therefore some adjustment of indices is necessary *) | 
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changeset | 426 | val rev_terms = rev terms | 
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changeset | 427 |         val zero            = Const (@{const_name Groups.zero}, split_type)
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changeset | 428 | val d = Bound 0 | 
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changeset | 429 | val terms1 = map (subst_term [(split_term, zero)]) rev_terms | 
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changeset | 430 | val terms2 = map (subst_term [(incr_boundvars 1 split_term, d)]) | 
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changeset | 431 | (map (incr_boundvars 1) rev_terms) | 
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changeset | 432 | val t1' = incr_boundvars 1 t1 | 
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changeset | 433 | val t2' = incr_boundvars 1 t2 | 
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changeset | 434 |         val t1_lt_t2        = Const (@{const_name Orderings.less},
 | 
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changeset | 435 | split_type --> split_type --> HOLogic.boolT) $ t1 $ t2 | 
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changeset | 436 |         val t1_eq_t2_plus_d = Const (@{const_name HOL.eq}, split_type --> split_type --> HOLogic.boolT) $ t1' $
 | 
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changeset | 437 |                                 (Const (@{const_name Groups.plus},
 | 
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changeset | 438 | split_type --> split_type --> split_type) $ t2' $ d) | 
| 45740 | 439 |         val not_false       = HOLogic.mk_Trueprop (HOLogic.Not $ @{term False})
 | 
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changeset | 440 | val subgoal1 = (HOLogic.mk_Trueprop t1_lt_t2) :: terms1 @ [not_false] | 
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changeset | 441 | val subgoal2 = (HOLogic.mk_Trueprop t1_eq_t2_plus_d) :: terms2 @ [not_false] | 
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changeset | 442 | in | 
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changeset | 443 | SOME [(Ts, subgoal1), (split_type :: Ts, subgoal2)] | 
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changeset | 444 | end | 
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changeset | 445 | (* ?P (nat ?i) = ((ALL n. ?i = of_nat n --> ?P n) & (?i < 0 --> ?P 0)) *) | 
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changeset | 446 |     | (Const ("Int.nat", _), [t1]) =>
 | 
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changeset | 447 | let | 
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changeset | 448 | val rev_terms = rev terms | 
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changeset | 449 |         val zero_int    = Const (@{const_name Groups.zero}, HOLogic.intT)
 | 
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changeset | 450 |         val zero_nat    = Const (@{const_name Groups.zero}, HOLogic.natT)
 | 
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changeset | 451 | val n = Bound 0 | 
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changeset | 452 | val terms1 = map (subst_term [(incr_boundvars 1 split_term, n)]) | 
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changeset | 453 | (map (incr_boundvars 1) rev_terms) | 
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changeset | 454 | val terms2 = map (subst_term [(split_term, zero_nat)]) rev_terms | 
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changeset | 455 | val t1' = incr_boundvars 1 t1 | 
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changeset | 456 |         val t1_eq_nat_n = Const (@{const_name HOL.eq}, HOLogic.intT --> HOLogic.intT --> HOLogic.boolT) $ t1' $
 | 
| 24196 | 457 |                             (Const (@{const_name of_nat}, HOLogic.natT --> HOLogic.intT) $ n)
 | 
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changeset | 458 |         val t1_lt_zero  = Const (@{const_name Orderings.less},
 | 
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changeset | 459 | HOLogic.intT --> HOLogic.intT --> HOLogic.boolT) $ t1 $ zero_int | 
| 45740 | 460 |         val not_false   = HOLogic.mk_Trueprop (HOLogic.Not $ @{term False})
 | 
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changeset | 461 | val subgoal1 = (HOLogic.mk_Trueprop t1_eq_nat_n) :: terms1 @ [not_false] | 
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changeset | 462 | val subgoal2 = (HOLogic.mk_Trueprop t1_lt_zero) :: terms2 @ [not_false] | 
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changeset | 463 | in | 
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changeset | 464 | SOME [(HOLogic.natT :: Ts, subgoal1), (Ts, subgoal2)] | 
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changeset | 465 | end | 
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changeset | 466 | (* ?P ((?n::nat) mod (numeral ?k)) = | 
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changeset | 467 | ((numeral ?k = 0 --> ?P ?n) & (~ (numeral ?k = 0) --> | 
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changeset | 468 | (ALL i j. j < numeral ?k --> ?n = numeral ?k * i + j --> ?P j))) *) | 
| 37388 | 469 |     | (Const ("Divides.div_class.mod", Type ("fun", [@{typ nat}, _])), [t1, t2]) =>
 | 
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changeset | 470 | let | 
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changeset | 471 | val rev_terms = rev terms | 
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changeset | 472 |         val zero                    = Const (@{const_name Groups.zero}, split_type)
 | 
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changeset | 473 | val i = Bound 1 | 
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changeset | 474 | val j = Bound 0 | 
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changeset | 475 | val terms1 = map (subst_term [(split_term, t1)]) rev_terms | 
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changeset | 476 | val terms2 = map (subst_term [(incr_boundvars 2 split_term, j)]) | 
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changeset | 477 | (map (incr_boundvars 2) rev_terms) | 
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changeset | 478 | val t1' = incr_boundvars 2 t1 | 
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changeset | 479 | val t2' = incr_boundvars 2 t2 | 
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changeset | 480 |         val t2_eq_zero              = Const (@{const_name HOL.eq},
 | 
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changeset | 481 | split_type --> split_type --> HOLogic.boolT) $ t2 $ zero | 
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changeset | 482 |         val t2_neq_zero             = HOLogic.mk_not (Const (@{const_name HOL.eq},
 | 
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changeset | 483 | split_type --> split_type --> HOLogic.boolT) $ t2' $ zero) | 
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changeset | 484 |         val j_lt_t2                 = Const (@{const_name Orderings.less},
 | 
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changeset | 485 | split_type --> split_type--> HOLogic.boolT) $ j $ t2' | 
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changeset | 486 |         val t1_eq_t2_times_i_plus_j = Const (@{const_name HOL.eq}, split_type --> split_type --> HOLogic.boolT) $ t1' $
 | 
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changeset | 487 |                                        (Const (@{const_name Groups.plus}, split_type --> split_type --> split_type) $
 | 
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changeset | 488 |                                          (Const (@{const_name Groups.times},
 | 
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changeset | 489 | split_type --> split_type --> split_type) $ t2' $ i) $ j) | 
| 45740 | 490 |         val not_false               = HOLogic.mk_Trueprop (HOLogic.Not $ @{term False})
 | 
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changeset | 491 | val subgoal1 = (HOLogic.mk_Trueprop t2_eq_zero) :: terms1 @ [not_false] | 
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changeset | 492 | val subgoal2 = (map HOLogic.mk_Trueprop | 
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changeset | 493 | [t2_neq_zero, j_lt_t2, t1_eq_t2_times_i_plus_j]) | 
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changeset | 494 | @ terms2 @ [not_false] | 
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changeset | 495 | in | 
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changeset | 496 | SOME [(Ts, subgoal1), (split_type :: split_type :: Ts, subgoal2)] | 
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changeset | 497 | end | 
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changeset | 498 | (* ?P ((?n::nat) div (numeral ?k)) = | 
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changeset | 499 | ((numeral ?k = 0 --> ?P 0) & (~ (numeral ?k = 0) --> | 
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changeset | 500 | (ALL i j. j < numeral ?k --> ?n = numeral ?k * i + j --> ?P i))) *) | 
| 37388 | 501 |     | (Const ("Divides.div_class.div", Type ("fun", [@{typ nat}, _])), [t1, t2]) =>
 | 
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changeset | 502 | let | 
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changeset | 503 | val rev_terms = rev terms | 
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changeset | 504 |         val zero                    = Const (@{const_name Groups.zero}, split_type)
 | 
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changeset | 505 | val i = Bound 1 | 
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changeset | 506 | val j = Bound 0 | 
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changeset | 507 | val terms1 = map (subst_term [(split_term, zero)]) rev_terms | 
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changeset | 508 | val terms2 = map (subst_term [(incr_boundvars 2 split_term, i)]) | 
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changeset | 509 | (map (incr_boundvars 2) rev_terms) | 
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changeset | 510 | val t1' = incr_boundvars 2 t1 | 
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changeset | 511 | val t2' = incr_boundvars 2 t2 | 
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changeset | 512 |         val t2_eq_zero              = Const (@{const_name HOL.eq},
 | 
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changeset | 513 | split_type --> split_type --> HOLogic.boolT) $ t2 $ zero | 
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changeset | 514 |         val t2_neq_zero             = HOLogic.mk_not (Const (@{const_name HOL.eq},
 | 
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changeset | 515 | split_type --> split_type --> HOLogic.boolT) $ t2' $ zero) | 
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changeset | 516 |         val j_lt_t2                 = Const (@{const_name Orderings.less},
 | 
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changeset | 517 | split_type --> split_type--> HOLogic.boolT) $ j $ t2' | 
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changeset | 518 |         val t1_eq_t2_times_i_plus_j = Const (@{const_name HOL.eq}, split_type --> split_type --> HOLogic.boolT) $ t1' $
 | 
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changeset | 519 |                                        (Const (@{const_name Groups.plus}, split_type --> split_type --> split_type) $
 | 
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changeset | 520 |                                          (Const (@{const_name Groups.times},
 | 
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changeset | 521 | split_type --> split_type --> split_type) $ t2' $ i) $ j) | 
| 45740 | 522 |         val not_false               = HOLogic.mk_Trueprop (HOLogic.Not $ @{term False})
 | 
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changeset | 523 | val subgoal1 = (HOLogic.mk_Trueprop t2_eq_zero) :: terms1 @ [not_false] | 
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changeset | 524 | val subgoal2 = (map HOLogic.mk_Trueprop | 
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changeset | 525 | [t2_neq_zero, j_lt_t2, t1_eq_t2_times_i_plus_j]) | 
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changeset | 526 | @ terms2 @ [not_false] | 
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changeset | 527 | in | 
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changeset | 528 | SOME [(Ts, subgoal1), (split_type :: split_type :: Ts, subgoal2)] | 
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changeset | 529 | end | 
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changeset | 530 | (* ?P ((?n::int) mod (numeral ?k)) = | 
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changeset | 531 | ((numeral ?k = 0 --> ?P ?n) & | 
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changeset | 532 | (0 < numeral ?k --> | 
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changeset | 533 | (ALL i j. | 
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changeset | 534 | 0 <= j & j < numeral ?k & ?n = numeral ?k * i + j --> ?P j)) & | 
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changeset | 535 | (numeral ?k < 0 --> | 
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changeset | 536 | (ALL i j. | 
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changeset | 537 | numeral ?k < j & j <= 0 & ?n = numeral ?k * i + j --> ?P j))) *) | 
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changeset | 538 |     | (Const ("Divides.div_class.mod",
 | 
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changeset | 539 |         Type ("fun", [Type ("Int.int", []), _])), [t1, t2]) =>
 | 
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changeset | 540 | let | 
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changeset | 541 | val rev_terms = rev terms | 
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changeset | 542 |         val zero                    = Const (@{const_name Groups.zero}, split_type)
 | 
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changeset | 543 | val i = Bound 1 | 
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changeset | 544 | val j = Bound 0 | 
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changeset | 545 | val terms1 = map (subst_term [(split_term, t1)]) rev_terms | 
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changeset | 546 | val terms2_3 = map (subst_term [(incr_boundvars 2 split_term, j)]) | 
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changeset | 547 | (map (incr_boundvars 2) rev_terms) | 
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changeset | 548 | val t1' = incr_boundvars 2 t1 | 
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changeset | 549 | val t2' = incr_boundvars 2 t2 | 
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changeset | 550 |         val t2_eq_zero              = Const (@{const_name HOL.eq},
 | 
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changeset | 551 | split_type --> split_type --> HOLogic.boolT) $ t2 $ zero | 
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changeset | 552 |         val zero_lt_t2              = Const (@{const_name Orderings.less},
 | 
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changeset | 553 | split_type --> split_type --> HOLogic.boolT) $ zero $ t2' | 
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changeset | 554 |         val t2_lt_zero              = Const (@{const_name Orderings.less},
 | 
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changeset | 555 | split_type --> split_type --> HOLogic.boolT) $ t2' $ zero | 
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changeset | 556 |         val zero_leq_j              = Const (@{const_name Orderings.less_eq},
 | 
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changeset | 557 | split_type --> split_type --> HOLogic.boolT) $ zero $ j | 
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changeset | 558 |         val j_leq_zero              = Const (@{const_name Orderings.less_eq},
 | 
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changeset | 559 | split_type --> split_type --> HOLogic.boolT) $ j $ zero | 
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changeset | 560 |         val j_lt_t2                 = Const (@{const_name Orderings.less},
 | 
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changeset | 561 | split_type --> split_type--> HOLogic.boolT) $ j $ t2' | 
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changeset | 562 |         val t2_lt_j                 = Const (@{const_name Orderings.less},
 | 
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changeset | 563 | split_type --> split_type--> HOLogic.boolT) $ t2' $ j | 
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changeset | 564 |         val t1_eq_t2_times_i_plus_j = Const (@{const_name HOL.eq}, split_type --> split_type --> HOLogic.boolT) $ t1' $
 | 
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changeset | 565 |                                        (Const (@{const_name Groups.plus}, split_type --> split_type --> split_type) $
 | 
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changeset | 566 |                                          (Const (@{const_name Groups.times},
 | 
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changeset | 567 | split_type --> split_type --> split_type) $ t2' $ i) $ j) | 
| 45740 | 568 |         val not_false               = HOLogic.mk_Trueprop (HOLogic.Not $ @{term False})
 | 
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changeset | 569 | val subgoal1 = (HOLogic.mk_Trueprop t2_eq_zero) :: terms1 @ [not_false] | 
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changeset | 570 | val subgoal2 = (map HOLogic.mk_Trueprop [zero_lt_t2, zero_leq_j]) | 
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changeset | 571 | @ hd terms2_3 | 
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changeset | 572 | :: (if tl terms2_3 = [] then [not_false] else []) | 
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changeset | 573 | @ (map HOLogic.mk_Trueprop [j_lt_t2, t1_eq_t2_times_i_plus_j]) | 
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changeset | 574 | @ (if tl terms2_3 = [] then [] else tl terms2_3 @ [not_false]) | 
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changeset | 575 | val subgoal3 = (map HOLogic.mk_Trueprop [t2_lt_zero, t2_lt_j]) | 
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changeset | 576 | @ hd terms2_3 | 
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changeset | 577 | :: (if tl terms2_3 = [] then [not_false] else []) | 
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changeset | 578 | @ (map HOLogic.mk_Trueprop [j_leq_zero, t1_eq_t2_times_i_plus_j]) | 
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changeset | 579 | @ (if tl terms2_3 = [] then [] else tl terms2_3 @ [not_false]) | 
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changeset | 580 | val Ts' = split_type :: split_type :: Ts | 
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changeset | 581 | in | 
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changeset | 582 | SOME [(Ts, subgoal1), (Ts', subgoal2), (Ts', subgoal3)] | 
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changeset | 583 | end | 
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changeset | 584 | (* ?P ((?n::int) div (numeral ?k)) = | 
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changeset | 585 | ((numeral ?k = 0 --> ?P 0) & | 
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changeset | 586 | (0 < numeral ?k --> | 
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changeset | 587 | (ALL i j. | 
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changeset | 588 | 0 <= j & j < numeral ?k & ?n = numeral ?k * i + j --> ?P i)) & | 
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changeset | 589 | (numeral ?k < 0 --> | 
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changeset | 590 | (ALL i j. | 
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changeset | 591 | numeral ?k < j & j <= 0 & ?n = numeral ?k * i + j --> ?P i))) *) | 
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changeset | 592 |     | (Const ("Divides.div_class.div",
 | 
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changeset | 593 |         Type ("fun", [Type ("Int.int", []), _])), [t1, t2]) =>
 | 
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changeset | 594 | let | 
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changeset | 595 | val rev_terms = rev terms | 
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changeset | 596 |         val zero                    = Const (@{const_name Groups.zero}, split_type)
 | 
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changeset | 597 | val i = Bound 1 | 
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changeset | 598 | val j = Bound 0 | 
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changeset | 599 | val terms1 = map (subst_term [(split_term, zero)]) rev_terms | 
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changeset | 600 | val terms2_3 = map (subst_term [(incr_boundvars 2 split_term, i)]) | 
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changeset | 601 | (map (incr_boundvars 2) rev_terms) | 
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changeset | 602 | val t1' = incr_boundvars 2 t1 | 
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changeset | 603 | val t2' = incr_boundvars 2 t2 | 
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changeset | 604 |         val t2_eq_zero              = Const (@{const_name HOL.eq},
 | 
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changeset | 605 | split_type --> split_type --> HOLogic.boolT) $ t2 $ zero | 
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changeset | 606 |         val zero_lt_t2              = Const (@{const_name Orderings.less},
 | 
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changeset | 607 | split_type --> split_type --> HOLogic.boolT) $ zero $ t2' | 
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changeset | 608 |         val t2_lt_zero              = Const (@{const_name Orderings.less},
 | 
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changeset | 609 | split_type --> split_type --> HOLogic.boolT) $ t2' $ zero | 
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changeset | 610 |         val zero_leq_j              = Const (@{const_name Orderings.less_eq},
 | 
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changeset | 611 | split_type --> split_type --> HOLogic.boolT) $ zero $ j | 
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changeset | 612 |         val j_leq_zero              = Const (@{const_name Orderings.less_eq},
 | 
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changeset | 613 | split_type --> split_type --> HOLogic.boolT) $ j $ zero | 
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changeset | 614 |         val j_lt_t2                 = Const (@{const_name Orderings.less},
 | 
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changeset | 615 | split_type --> split_type--> HOLogic.boolT) $ j $ t2' | 
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changeset | 616 |         val t2_lt_j                 = Const (@{const_name Orderings.less},
 | 
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changeset | 618 |         val t1_eq_t2_times_i_plus_j = Const (@{const_name HOL.eq}, split_type --> split_type --> HOLogic.boolT) $ t1' $
 | 
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changeset | 619 |                                        (Const (@{const_name Groups.plus}, split_type --> split_type --> split_type) $
 | 
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changeset | 620 |                                          (Const (@{const_name Groups.times},
 | 
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changeset | 621 | split_type --> split_type --> split_type) $ t2' $ i) $ j) | 
| 45740 | 622 |         val not_false               = HOLogic.mk_Trueprop (HOLogic.Not $ @{term False})
 | 
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changeset | 623 | val subgoal1 = (HOLogic.mk_Trueprop t2_eq_zero) :: terms1 @ [not_false] | 
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changeset | 624 | val subgoal2 = (map HOLogic.mk_Trueprop [zero_lt_t2, zero_leq_j]) | 
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changeset | 625 | @ hd terms2_3 | 
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changeset | 626 | :: (if tl terms2_3 = [] then [not_false] else []) | 
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changeset | 627 | @ (map HOLogic.mk_Trueprop [j_lt_t2, t1_eq_t2_times_i_plus_j]) | 
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changeset | 628 | @ (if tl terms2_3 = [] then [] else tl terms2_3 @ [not_false]) | 
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changeset | 629 | val subgoal3 = (map HOLogic.mk_Trueprop [t2_lt_zero, t2_lt_j]) | 
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changeset | 630 | @ hd terms2_3 | 
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changeset | 631 | :: (if tl terms2_3 = [] then [not_false] else []) | 
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changeset | 632 | @ (map HOLogic.mk_Trueprop [j_leq_zero, t1_eq_t2_times_i_plus_j]) | 
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changeset | 633 | @ (if tl terms2_3 = [] then [] else tl terms2_3 @ [not_false]) | 
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changeset | 634 | val Ts' = split_type :: split_type :: Ts | 
| 
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changeset | 635 | in | 
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changeset | 636 | SOME [(Ts, subgoal1), (Ts', subgoal2), (Ts', subgoal3)] | 
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changeset | 637 | end | 
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changeset | 638 | (* this will only happen if a split theorem can be applied for which no *) | 
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changeset | 639 | (* code exists above -- in which case either the split theorem should be *) | 
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changeset | 640 | (* implemented above, or 'is_split_thm' should be modified to filter it *) | 
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changeset | 641 | (* out *) | 
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changeset | 642 | | (t, ts) => ( | 
| 24920 | 643 |       warning ("Lin. Arith.: split rule for " ^ Syntax.string_of_term ctxt t ^
 | 
| 32369 | 644 | " (with " ^ string_of_int (length ts) ^ | 
| 645 | " argument(s)) not implemented; proof reconstruction is likely to fail"); | |
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changeset | 646 | NONE | 
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changeset | 647 | )) | 
| 32369 | 648 | end; (* split_once_items *) | 
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changeset | 649 | |
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changeset | 650 | (* remove terms that do not satisfy 'p'; change the order of the remaining *) | 
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changeset | 651 | (* terms in the same way as filter_prems_tac does *) | 
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changeset | 652 | |
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changeset | 653 | fun filter_prems_tac_items (p : term -> bool) (terms : term list) : term list = | 
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changeset | 654 | let | 
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changeset | 655 | fun filter_prems t (left, right) = | 
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changeset | 656 | if p t then (left, right @ [t]) else (left @ right, []) | 
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changeset | 657 | val (left, right) = fold filter_prems terms ([], []) | 
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changeset | 658 | in | 
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changeset | 659 | right @ left | 
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changeset | 660 | end; | 
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changeset | 661 | |
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changeset | 662 | (* return true iff TRY (etac notE) THEN eq_assume_tac would succeed on a *) | 
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changeset | 663 | (* subgoal that has 'terms' as premises *) | 
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changeset | 664 | |
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changeset | 665 | fun negated_term_occurs_positively (terms : term list) : bool = | 
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changeset | 666 | List.exists | 
| 38558 | 667 |     (fn (Trueprop $ (Const (@{const_name Not}, _) $ t)) =>
 | 
| 52131 | 668 | member Envir.aeconv terms (Trueprop $ t) | 
| 32369 | 669 | | _ => false) | 
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changeset | 670 | terms; | 
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changeset | 671 | |
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changeset | 672 | fun pre_decomp ctxt (Ts : typ list, terms : term list) : (typ list * term list) list = | 
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changeset | 673 | let | 
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changeset | 674 | (* repeatedly split (including newly emerging subgoals) until no further *) | 
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changeset | 675 | (* splitting is possible *) | 
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changeset | 676 | fun split_loop ([] : (typ list * term list) list) = ([] : (typ list * term list) list) | 
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changeset | 677 | | split_loop (subgoal::subgoals) = | 
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changeset | 678 | (case split_once_items ctxt subgoal of | 
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changeset | 679 | SOME new_subgoals => split_loop (new_subgoals @ subgoals) | 
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changeset | 680 | | NONE => subgoal :: split_loop subgoals) | 
| 
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changeset | 681 | fun is_relevant t = is_some (decomp ctxt t) | 
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changeset | 682 | (* filter_prems_tac is_relevant: *) | 
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changeset | 683 | val relevant_terms = filter_prems_tac_items is_relevant terms | 
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changeset | 684 | (* split_tac, NNF normalization: *) | 
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changeset | 685 | val split_goals = split_loop [(Ts, relevant_terms)] | 
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changeset | 686 | (* necessary because split_once_tac may normalize terms: *) | 
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changeset | 687 | val beta_eta_norm = map (apsnd (map (Envir.eta_contract o Envir.beta_norm))) | 
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changeset | 688 | split_goals | 
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changeset | 689 | (* TRY (etac notE) THEN eq_assume_tac: *) | 
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changeset | 690 | val result = filter_out (negated_term_occurs_positively o snd) beta_eta_norm | 
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changeset | 691 | in | 
| 
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changeset | 692 | result | 
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changeset | 693 | end; | 
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changeset | 694 | |
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changeset | 695 | (* takes the i-th subgoal [| A1; ...; An |] ==> B to *) | 
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changeset | 696 | (* An --> ... --> A1 --> B, performs splitting with the given 'split_thms' *) | 
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changeset | 697 | (* (resulting in a different subgoal P), takes P to ~P ==> False, *) | 
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changeset | 698 | (* performs NNF-normalization of ~P, and eliminates conjunctions, *) | 
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changeset | 699 | (* disjunctions and existential quantifiers from the premises, possibly (in *) | 
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changeset | 700 | (* the case of disjunctions) resulting in several new subgoals, each of the *) | 
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changeset | 701 | (* general form [| Q1; ...; Qm |] ==> False. Fails if more than *) | 
| 31082 | 702 | (* !split_limit splits are possible. *) | 
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changeset | 703 | |
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changeset | 704 | local | 
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changeset | 705 | fun nnf_simpset ctxt = | 
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changeset | 706 | (empty_simpset ctxt | 
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changeset | 707 | |> Simplifier.set_mkeqTrue mk_eq_True | 
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changeset | 708 | |> Simplifier.set_mksimps (mksimps mksimps_pairs)) | 
| 35410 | 709 |     addsimps [@{thm imp_conv_disj}, @{thm iff_conv_conj_imp}, @{thm de_Morgan_disj},
 | 
| 710 |       @{thm de_Morgan_conj}, not_all, not_ex, not_not]
 | |
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changeset | 711 | fun prem_nnf_tac ctxt = full_simp_tac (nnf_simpset ctxt) | 
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changeset | 712 | in | 
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changeset | 713 | |
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changeset | 714 | fun split_once_tac ctxt split_thms = | 
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changeset | 715 | let | 
| 42361 | 716 | val thy = Proof_Context.theory_of ctxt | 
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changeset | 717 | val cond_split_tac = SUBGOAL (fn (subgoal, i) => | 
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changeset | 718 | let | 
| 
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changeset | 719 | val Ts = rev (map snd (Logic.strip_params subgoal)) | 
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changeset | 720 | val concl = HOLogic.dest_Trueprop (Logic.strip_assums_concl subgoal) | 
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changeset | 721 | val cmap = Splitter.cmap_of_split_thms split_thms | 
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changeset | 722 | val splits = Splitter.split_posns cmap thy Ts concl | 
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changeset | 723 | in | 
| 32369 | 724 | if null splits orelse length splits > Config.get ctxt split_limit then | 
| 725 | no_tac | |
| 726 | else if null (#2 (hd splits)) then | |
| 727 | split_tac split_thms i | |
| 728 | else | |
| 729 | (* disallow a split that involves non-locally bound variables *) | |
| 730 | (* (except when bound by outermost meta-quantifiers) *) | |
| 731 | no_tac | |
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changeset | 732 | end) | 
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changeset | 733 | in | 
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changeset | 734 | EVERY' [ | 
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changeset | 735 | REPEAT_DETERM o etac rev_mp, | 
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changeset | 736 | cond_split_tac, | 
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changeset | 737 | rtac ccontr, | 
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changeset | 738 | prem_nnf_tac ctxt, | 
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changeset | 739 | TRY o REPEAT_ALL_NEW (DETERM o (eresolve_tac [conjE, exE] ORELSE' etac disjE)) | 
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changeset | 740 | ] | 
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changeset | 741 | end; | 
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changeset | 742 | |
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changeset | 743 | end; (* local *) | 
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changeset | 744 | |
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changeset | 745 | (* remove irrelevant premises, then split the i-th subgoal (and all new *) | 
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changeset | 746 | (* subgoals) by using 'split_once_tac' repeatedly. Beta-eta-normalize new *) | 
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changeset | 747 | (* subgoals and finally attempt to solve them by finding an immediate *) | 
| 32369 | 748 | (* contradiction (i.e., a term and its negation) in their premises. *) | 
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changeset | 749 | |
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changeset | 750 | fun pre_tac ctxt i = | 
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changeset | 751 | let | 
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changeset | 752 | val split_thms = filter (is_split_thm ctxt) (#splits (get_arith_data ctxt)) | 
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changeset | 753 | fun is_relevant t = is_some (decomp ctxt t) | 
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changeset | 754 | in | 
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changeset | 755 | DETERM ( | 
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changeset | 756 | TRY (filter_prems_tac is_relevant i) | 
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changeset | 757 | THEN ( | 
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changeset | 758 | (TRY o REPEAT_ALL_NEW (split_once_tac ctxt split_thms)) | 
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changeset | 759 | THEN_ALL_NEW | 
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changeset | 760 | (CONVERSION Drule.beta_eta_conversion | 
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changeset | 761 | THEN' | 
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changeset | 762 | (TRY o (etac notE THEN' eq_assume_tac))) | 
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changeset | 763 | ) i | 
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changeset | 764 | ) | 
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changeset | 765 | end; | 
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changeset | 766 | |
| 31100 | 767 | end; (* LA_Data *) | 
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changeset | 768 | |
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changeset | 769 | |
| 31100 | 770 | val pre_tac = LA_Data.pre_tac; | 
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changeset | 771 | |
| 31100 | 772 | structure Fast_Arith = Fast_Lin_Arith(structure LA_Logic = LA_Logic and LA_Data = LA_Data); | 
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changeset | 773 | |
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changeset | 774 | val add_inj_thms = Fast_Arith.add_inj_thms; | 
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changeset | 775 | val add_lessD = Fast_Arith.add_lessD; | 
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changeset | 776 | val add_simps = Fast_Arith.add_simps; | 
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changeset | 777 | val add_simprocs = Fast_Arith.add_simprocs; | 
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changeset | 778 | val set_number_of = Fast_Arith.set_number_of; | 
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changeset | 779 | |
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changeset | 780 | fun simple_tac ctxt = Fast_Arith.lin_arith_tac ctxt false; | 
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changeset | 781 | val lin_arith_tac = Fast_Arith.lin_arith_tac; | 
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changeset | 782 | |
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changeset | 783 | (* reduce contradictory <= to False. | 
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changeset | 784 | Most of the work is done by the cancel tactics. *) | 
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changeset | 785 | |
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changeset | 786 | val init_arith_data = | 
| 54249 | 787 |   Fast_Arith.map_data (fn {add_mono_thms, mult_mono_thms, inj_thms, lessD, neqE, number_of, ...} =>
 | 
| 788 |    {add_mono_thms = @{thms add_mono_thms_linordered_semiring}
 | |
| 789 |       @ @{thms add_mono_thms_linordered_field} @ add_mono_thms,
 | |
| 790 |     mult_mono_thms = @{thm mult_strict_left_mono} :: @{thm mult_left_mono}
 | |
| 791 |       :: @{lemma "a = b ==> c * a = c * b" by (rule arg_cong)} :: mult_mono_thms,
 | |
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changeset | 792 | inj_thms = inj_thms, | 
| 54249 | 793 | lessD = lessD, | 
| 794 |     neqE = @{thm linorder_neqE_nat} :: @{thm linorder_neqE_linordered_idom} :: neqE,
 | |
| 795 |     simpset = put_simpset HOL_basic_ss @{context} |> Simplifier.add_cong @{thm if_weak_cong} |> simpset_of,
 | |
| 796 | number_of = number_of}); | |
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changeset | 797 | |
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changeset | 798 | (* FIXME !?? *) | 
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changeset | 799 | fun add_arith_facts ctxt = | 
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changeset | 800 | Simplifier.add_prems (Arith_Data.get_arith_facts ctxt) ctxt; | 
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changeset | 801 | |
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changeset | 802 | val simproc = add_arith_facts #> Fast_Arith.lin_arith_simproc; | 
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changeset | 803 | |
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changeset | 804 | |
| 26110 | 805 | (* generic refutation procedure *) | 
| 806 | ||
| 807 | (* parameters: | |
| 808 | ||
| 809 | test: term -> bool | |
| 810 | tests if a term is at all relevant to the refutation proof; | |
| 811 | if not, then it can be discarded. Can improve performance, | |
| 812 | esp. if disjunctions can be discarded (no case distinction needed!). | |
| 813 | ||
| 814 | prep_tac: int -> tactic | |
| 815 | A preparation tactic to be applied to the goal once all relevant premises | |
| 816 | have been moved to the conclusion. | |
| 817 | ||
| 818 | ref_tac: int -> tactic | |
| 819 | the actual refutation tactic. Should be able to deal with goals | |
| 820 | [| A1; ...; An |] ==> False | |
| 821 | where the Ai are atomic, i.e. no top-level &, | or EX | |
| 822 | *) | |
| 823 | ||
| 824 | local | |
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changeset | 825 | fun nnf_simpset ctxt = | 
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changeset | 826 | (empty_simpset ctxt | 
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changeset | 827 | |> Simplifier.set_mkeqTrue mk_eq_True | 
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changeset | 828 | |> Simplifier.set_mksimps (mksimps mksimps_pairs)) | 
| 26110 | 829 |     addsimps [@{thm imp_conv_disj}, @{thm iff_conv_conj_imp}, @{thm de_Morgan_disj},
 | 
| 830 |       @{thm de_Morgan_conj}, @{thm not_all}, @{thm not_ex}, @{thm not_not}];
 | |
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changeset | 831 | fun prem_nnf_tac ctxt = full_simp_tac (nnf_simpset ctxt); | 
| 26110 | 832 | in | 
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changeset | 833 | |
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changeset | 834 | fun refute_tac ctxt test prep_tac ref_tac = | 
| 26110 | 835 | let val refute_prems_tac = | 
| 836 | REPEAT_DETERM | |
| 837 |               (eresolve_tac [@{thm conjE}, @{thm exE}] 1 ORELSE
 | |
| 838 | filter_prems_tac test 1 ORELSE | |
| 839 |                etac @{thm disjE} 1) THEN
 | |
| 840 |         (DETERM (etac @{thm notE} 1 THEN eq_assume_tac 1) ORELSE
 | |
| 841 | ref_tac 1); | |
| 842 | in EVERY'[TRY o filter_prems_tac test, | |
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changeset | 843 |             REPEAT_DETERM o etac @{thm rev_mp}, prep_tac, rtac @{thm ccontr}, prem_nnf_tac ctxt,
 | 
| 26110 | 844 | SELECT_GOAL (DEPTH_SOLVE refute_prems_tac)] | 
| 845 | end; | |
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changeset | 846 | |
| 26110 | 847 | end; | 
| 848 | ||
| 849 | ||
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changeset | 850 | (* arith proof method *) | 
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changeset | 851 | |
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changeset | 852 | local | 
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changeset | 853 | |
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changeset | 854 | fun raw_tac ctxt ex = | 
| 33035 | 855 | (* FIXME: K true should be replaced by a sensible test (perhaps "is_some o | 
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changeset | 856 | decomp sg"? -- but note that the test is applied to terms already before | 
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changeset | 857 | they are split/normalized) to speed things up in case there are lots of | 
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changeset | 858 | irrelevant terms involved; elimination of min/max can be optimized: | 
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changeset | 859 | (max m n + k <= r) = (m+k <= r & n+k <= r) | 
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changeset | 860 | (l <= min m n + k) = (l <= m+k & l <= n+k) | 
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changeset | 861 | *) | 
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changeset | 862 | refute_tac ctxt (K true) | 
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changeset | 863 | (* Splitting is also done inside simple_tac, but not completely -- *) | 
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changeset | 864 | (* split_tac may use split theorems that have not been implemented in *) | 
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changeset | 865 | (* simple_tac (cf. pre_decomp and split_once_items above), and *) | 
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changeset | 866 | (* split_limit may trigger. *) | 
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changeset | 867 | (* Therefore splitting outside of simple_tac may allow us to prove *) | 
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changeset | 868 | (* some goals that simple_tac alone would fail on. *) | 
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changeset | 869 | (REPEAT_DETERM o split_tac (#splits (get_arith_data ctxt))) | 
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changeset | 870 | (lin_arith_tac ctxt ex); | 
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changeset | 871 | |
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changeset | 872 | in | 
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changeset | 873 | |
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changeset | 874 | fun gen_tac ex ctxt = | 
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changeset | 875 | FIRST' [simple_tac ctxt, | 
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changeset | 876 | Object_Logic.full_atomize_tac ctxt THEN' (REPEAT_DETERM o rtac impI) THEN' raw_tac ctxt ex]; | 
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changeset | 877 | |
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changeset | 878 | val tac = gen_tac true; | 
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changeset | 879 | |
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changeset | 880 | end; | 
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changeset | 881 | |
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changeset | 882 | |
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changeset | 883 | (* context setup *) | 
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changeset | 884 | |
| 31100 | 885 | val global_setup = | 
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changeset | 886 | map_theory_simpset (fn ctxt => ctxt | 
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changeset | 887 | addSolver (mk_solver "lin_arith" (add_arith_facts #> Fast_Arith.prems_lin_arith_tac))) #> | 
| 31100 | 888 |   Attrib.setup @{binding arith_split} (Scan.succeed (Thm.declaration_attribute add_split))
 | 
| 889 | "declaration of split rules for arithmetic procedure" #> | |
| 890 |   Method.setup @{binding linarith}
 | |
| 33554 | 891 | (Scan.succeed (fn ctxt => | 
| 31100 | 892 | METHOD (fn facts => | 
| 33554 | 893 | HEADGOAL (Method.insert_tac (Arith_Data.get_arith_facts ctxt @ facts) | 
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changeset | 894 | THEN' tac ctxt)))) "linear arithmetic" #> | 
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changeset | 895 | Arith_Data.add_tactic "linear arithmetic" gen_tac; | 
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changeset | 896 | |
| 54249 | 897 | val setup = | 
| 898 | init_arith_data | |
| 899 |   #> add_discrete_type @{type_name nat}
 | |
| 900 |   #> add_lessD @{thm Suc_leI}
 | |
| 901 |   #> add_simps (@{thms simp_thms} @ @{thms ring_distribs} @ [@{thm if_True}, @{thm if_False},
 | |
| 902 |       @{thm add_0_left}, @{thm add_0_right}, @{thm order_less_irrefl},
 | |
| 903 |       @{thm zero_neq_one}, @{thm zero_less_one}, @{thm zero_le_one},
 | |
| 904 |       @{thm zero_neq_one} RS not_sym, @{thm not_one_le_zero}, @{thm not_one_less_zero}])
 | |
| 905 |   #> add_simps [@{thm add_Suc}, @{thm add_Suc_right}, @{thm nat.inject},
 | |
| 906 |       @{thm Suc_le_mono}, @{thm Suc_less_eq}, @{thm Zero_not_Suc},
 | |
| 907 |       @{thm Suc_not_Zero}, @{thm le_0_eq}, @{thm One_nat_def}]
 | |
| 908 |   #> add_simprocs [@{simproc group_cancel_add}, @{simproc group_cancel_diff},
 | |
| 909 |       @{simproc group_cancel_eq}, @{simproc group_cancel_le},
 | |
| 910 |       @{simproc group_cancel_less}]
 | |
| 911 | (*abel_cancel helps it work in abstract algebraic domains*) | |
| 912 |   #> add_simprocs [@{simproc nateq_cancel_sums},@{simproc natless_cancel_sums},
 | |
| 913 |       @{simproc natle_cancel_sums}];
 | |
| 914 | ||
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changeset | 915 | end; |