| author | wenzelm | 
| Sun, 05 Sep 2010 19:47:40 +0200 | |
| changeset 39133 | 70d3915c92f0 | 
| parent 38864 | 4abe644fcea5 | 
| child 40718 | 4d7211968607 | 
| permissions | -rw-r--r-- | 
| 37744 | 1 | (* Title: HOL/Tools/groebner.ML | 
| 23252 | 2 | Author: Amine Chaieb, TU Muenchen | 
| 3 | *) | |
| 4 | ||
| 5 | signature GROEBNER = | |
| 6 | sig | |
| 7 | val ring_and_ideal_conv : | |
| 30866 | 8 |     {idom: thm list, ring: cterm list * thm list, field: cterm list * thm list,
 | 
| 9 | vars: cterm list, semiring: cterm list * thm list, ideal : thm list} -> | |
| 23487 | 10 | (cterm -> Rat.rat) -> (Rat.rat -> cterm) -> | 
| 11 | conv -> conv -> | |
| 36723 | 12 |      {ring_conv : conv, 
 | 
| 13 | simple_ideal: (cterm list -> cterm -> (cterm * cterm -> order) -> cterm list), | |
| 14 | multi_ideal: cterm list -> cterm list -> cterm list -> (cterm * cterm) list, | |
| 15 | poly_eq_ss: simpset, unwind_conv : conv} | |
| 16 | val ring_tac: thm list -> thm list -> Proof.context -> int -> tactic | |
| 17 | val ideal_tac: thm list -> thm list -> Proof.context -> int -> tactic | |
| 18 | val algebra_tac: thm list -> thm list -> Proof.context -> int -> tactic | |
| 19 | val algebra_method: (Proof.context -> Method.method) context_parser | |
| 23252 | 20 | end | 
| 21 | ||
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changeset | 22 | structure Groebner : GROEBNER = | 
| 23252 | 23 | struct | 
| 24 | ||
| 36713 | 25 | open Conv Drule Thm; | 
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changeset | 26 | |
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changeset | 27 | fun is_comb ct = | 
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changeset | 28 | (case Thm.term_of ct of | 
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changeset | 29 | _ $ _ => true | 
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changeset | 30 | | _ => false); | 
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changeset | 31 | |
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changeset | 32 | val concl = Thm.cprop_of #> Thm.dest_arg; | 
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changeset | 33 | |
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changeset | 34 | fun is_binop ct ct' = | 
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changeset | 35 | (case Thm.term_of ct' of | 
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changeset | 36 | c $ _ $ _ => term_of ct aconv c | 
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changeset | 37 | | _ => false); | 
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changeset | 38 | |
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changeset | 39 | fun dest_binary ct ct' = | 
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changeset | 40 | if is_binop ct ct' then Thm.dest_binop ct' | 
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changeset | 41 |   else raise CTERM ("dest_binary: bad binop", [ct, ct'])
 | 
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changeset | 42 | |
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changeset | 43 | fun inst_thm inst = Thm.instantiate ([], inst); | 
| 23557 | 44 | |
| 23252 | 45 | val rat_0 = Rat.zero; | 
| 46 | val rat_1 = Rat.one; | |
| 47 | val minus_rat = Rat.neg; | |
| 48 | val denominator_rat = Rat.quotient_of_rat #> snd #> Rat.rat_of_int; | |
| 49 | fun int_of_rat a = | |
| 50 | case Rat.quotient_of_rat a of (i,1) => i | _ => error "int_of_rat: not an int"; | |
| 23514 | 51 | val lcm_rat = fn x => fn y => Rat.rat_of_int (Integer.lcm (int_of_rat x) (int_of_rat y)); | 
| 23252 | 52 | |
| 53 | val (eqF_intr, eqF_elim) = | |
| 36713 | 54 |   let val [th1,th2] = @{thms PFalse}
 | 
| 23252 | 55 | in (fn th => th COMP th2, fn th => th COMP th1) end; | 
| 56 | ||
| 57 | val (PFalse, PFalse') = | |
| 36713 | 58 |  let val PFalse_eq = nth @{thms simp_thms} 13
 | 
| 23252 | 59 | in (PFalse_eq RS iffD1, PFalse_eq RS iffD2) end; | 
| 60 | ||
| 61 | ||
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changeset | 62 | (* Type for recording history, i.e. how a polynomial was obtained. *) | 
| 23252 | 63 | |
| 64 | datatype history = | |
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changeset | 65 | Start of int | 
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changeset | 66 | | Mmul of (Rat.rat * int list) * history | 
| 23252 | 67 | | Add of history * history; | 
| 68 | ||
| 69 | ||
| 70 | (* Monomial ordering. *) | |
| 71 | ||
| 72 | fun morder_lt m1 m2= | |
| 73 | let fun lexorder l1 l2 = | |
| 74 | case (l1,l2) of | |
| 75 | ([],[]) => false | |
| 76 | | (x1::o1,x2::o2) => x1 > x2 orelse x1 = x2 andalso lexorder o1 o2 | |
| 77 | | _ => error "morder: inconsistent monomial lengths" | |
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changeset | 78 | val n1 = Integer.sum m1 | 
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changeset | 79 | val n2 = Integer.sum m2 in | 
| 23252 | 80 | n1 < n2 orelse n1 = n2 andalso lexorder m1 m2 | 
| 81 | end; | |
| 82 | ||
| 83 | fun morder_le m1 m2 = morder_lt m1 m2 orelse (m1 = m2); | |
| 84 | ||
| 85 | fun morder_gt m1 m2 = morder_lt m2 m1; | |
| 86 | ||
| 87 | (* Arithmetic on canonical polynomials. *) | |
| 88 | ||
| 89 | fun grob_neg l = map (fn (c,m) => (minus_rat c,m)) l; | |
| 90 | ||
| 91 | fun grob_add l1 l2 = | |
| 92 | case (l1,l2) of | |
| 93 | ([],l2) => l2 | |
| 94 | | (l1,[]) => l1 | |
| 95 | | ((c1,m1)::o1,(c2,m2)::o2) => | |
| 96 | if m1 = m2 then | |
| 97 | let val c = c1+/c2 val rest = grob_add o1 o2 in | |
| 98 | if c =/ rat_0 then rest else (c,m1)::rest end | |
| 99 | else if morder_lt m2 m1 then (c1,m1)::(grob_add o1 l2) | |
| 100 | else (c2,m2)::(grob_add l1 o2); | |
| 101 | ||
| 102 | fun grob_sub l1 l2 = grob_add l1 (grob_neg l2); | |
| 103 | ||
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changeset | 104 | fun grob_mmul (c1,m1) (c2,m2) = (c1*/c2, ListPair.map (op +) (m1, m2)); | 
| 23252 | 105 | |
| 106 | fun grob_cmul cm pol = map (grob_mmul cm) pol; | |
| 107 | ||
| 108 | fun grob_mul l1 l2 = | |
| 109 | case l1 of | |
| 110 | [] => [] | |
| 111 | | (h1::t1) => grob_add (grob_cmul h1 l2) (grob_mul t1 l2); | |
| 112 | ||
| 113 | fun grob_inv l = | |
| 114 | case l of | |
| 115 | [(c,vs)] => if (forall (fn x => x = 0) vs) then | |
| 116 | if (c =/ rat_0) then error "grob_inv: division by zero" | |
| 117 | else [(rat_1 // c,vs)] | |
| 118 | else error "grob_inv: non-constant divisor polynomial" | |
| 119 | | _ => error "grob_inv: non-constant divisor polynomial"; | |
| 120 | ||
| 121 | fun grob_div l1 l2 = | |
| 122 | case l2 of | |
| 123 | [(c,l)] => if (forall (fn x => x = 0) l) then | |
| 124 | if c =/ rat_0 then error "grob_div: division by zero" | |
| 125 | else grob_cmul (rat_1 // c,l) l1 | |
| 126 | else error "grob_div: non-constant divisor polynomial" | |
| 127 | | _ => error "grob_div: non-constant divisor polynomial"; | |
| 128 | ||
| 129 | fun grob_pow vars l n = | |
| 130 | if n < 0 then error "grob_pow: negative power" | |
| 131 | else if n = 0 then [(rat_1,map (fn v => 0) vars)] | |
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changeset | 132 | else grob_mul l (grob_pow vars l (n - 1)); | 
| 23252 | 133 | |
| 134 | fun degree vn p = | |
| 135 | case p of | |
| 136 | [] => error "Zero polynomial" | |
| 137 | | [(c,ns)] => nth ns vn | |
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changeset | 138 | | (c,ns)::p' => Int.max (nth ns vn, degree vn p'); | 
| 23252 | 139 | |
| 140 | fun head_deg vn p = let val d = degree vn p in | |
| 141 | (d,fold (fn (c,r) => fn q => grob_add q [(c, map_index (fn (i,n) => if i = vn then 0 else n) r)]) (filter (fn (c,ns) => c <>/ rat_0 andalso nth ns vn = d) p) []) end; | |
| 142 | ||
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changeset | 143 | val is_zerop = forall (fn (c,ns) => c =/ rat_0 andalso forall (curry (op =) 0) ns); | 
| 23252 | 144 | val grob_pdiv = | 
| 145 | let fun pdiv_aux vn (n,a) p k s = | |
| 146 | if is_zerop s then (k,s) else | |
| 147 | let val (m,b) = head_deg vn s | |
| 148 | in if m < n then (k,s) else | |
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changeset | 149 | let val p' = grob_mul p [(rat_1, map_index (fn (i,v) => if i = vn then m - n else 0) | 
| 23252 | 150 | (snd (hd s)))] | 
| 151 | in if a = b then pdiv_aux vn (n,a) p k (grob_sub s p') | |
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changeset | 152 | else pdiv_aux vn (n,a) p (k + 1) (grob_sub (grob_mul a s) (grob_mul b p')) | 
| 23252 | 153 | end | 
| 154 | end | |
| 155 | in fn vn => fn s => fn p => pdiv_aux vn (head_deg vn p) p 0 s | |
| 156 | end; | |
| 157 | ||
| 158 | (* Monomial division operation. *) | |
| 159 | ||
| 160 | fun mdiv (c1,m1) (c2,m2) = | |
| 161 | (c1//c2, | |
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changeset | 162 | map2 (fn n1 => fn n2 => if n1 < n2 then error "mdiv" else n1 - n2) m1 m2); | 
| 23252 | 163 | |
| 164 | (* Lowest common multiple of two monomials. *) | |
| 165 | ||
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changeset | 166 | fun mlcm (c1,m1) (c2,m2) = (rat_1, ListPair.map Int.max (m1, m2)); | 
| 23252 | 167 | |
| 168 | (* Reduce monomial cm by polynomial pol, returning replacement for cm. *) | |
| 169 | ||
| 170 | fun reduce1 cm (pol,hpol) = | |
| 171 | case pol of | |
| 172 | [] => error "reduce1" | |
| 173 | | cm1::cms => ((let val (c,m) = mdiv cm cm1 in | |
| 174 | (grob_cmul (minus_rat c,m) cms, | |
| 175 | Mmul((minus_rat c,m),hpol)) end) | |
| 176 | handle ERROR _ => error "reduce1"); | |
| 177 | ||
| 178 | (* Try this for all polynomials in a basis. *) | |
| 179 | fun tryfind f l = | |
| 180 | case l of | |
| 181 | [] => error "tryfind" | |
| 182 | | (h::t) => ((f h) handle ERROR _ => tryfind f t); | |
| 183 | ||
| 184 | fun reduceb cm basis = tryfind (fn p => reduce1 cm p) basis; | |
| 185 | ||
| 186 | (* Reduction of a polynomial (always picking largest monomial possible). *) | |
| 187 | ||
| 188 | fun reduce basis (pol,hist) = | |
| 189 | case pol of | |
| 190 | [] => (pol,hist) | |
| 191 | | cm::ptl => ((let val (q,hnew) = reduceb cm basis in | |
| 192 | reduce basis (grob_add q ptl,Add(hnew,hist)) end) | |
| 193 | handle (ERROR _) => | |
| 194 | (let val (q,hist') = reduce basis (ptl,hist) in | |
| 195 | (cm::q,hist') end)); | |
| 196 | ||
| 197 | (* Check for orthogonality w.r.t. LCM. *) | |
| 198 | ||
| 199 | fun orthogonal l p1 p2 = | |
| 200 | snd l = snd(grob_mmul (hd p1) (hd p2)); | |
| 201 | ||
| 202 | (* Compute S-polynomial of two polynomials. *) | |
| 203 | ||
| 204 | fun spoly cm ph1 ph2 = | |
| 205 | case (ph1,ph2) of | |
| 206 | (([],h),p) => ([],h) | |
| 207 | | (p,([],h)) => ([],h) | |
| 208 | | ((cm1::ptl1,his1),(cm2::ptl2,his2)) => | |
| 209 | (grob_sub (grob_cmul (mdiv cm cm1) ptl1) | |
| 210 | (grob_cmul (mdiv cm cm2) ptl2), | |
| 211 | Add(Mmul(mdiv cm cm1,his1), | |
| 212 | Mmul(mdiv (minus_rat(fst cm),snd cm) cm2,his2))); | |
| 213 | ||
| 214 | (* Make a polynomial monic. *) | |
| 215 | ||
| 216 | fun monic (pol,hist) = | |
| 23579 | 217 | if null pol then (pol,hist) else | 
| 23252 | 218 | let val (c',m') = hd pol in | 
| 219 | (map (fn (c,m) => (c//c',m)) pol, | |
| 220 | Mmul((rat_1 // c',map (K 0) m'),hist)) end; | |
| 221 | ||
| 222 | (* The most popular heuristic is to order critical pairs by LCM monomial. *) | |
| 223 | ||
| 224 | fun forder ((c1,m1),_) ((c2,m2),_) = morder_lt m1 m2; | |
| 225 | ||
| 226 | fun poly_lt p q = | |
| 227 | case (p,q) of | |
| 228 | (p,[]) => false | |
| 229 | | ([],q) => true | |
| 230 | | ((c1,m1)::o1,(c2,m2)::o2) => | |
| 231 | c1 </ c2 orelse | |
| 232 | c1 =/ c2 andalso ((morder_lt m1 m2) orelse m1 = m2 andalso poly_lt o1 o2); | |
| 233 | ||
| 234 | fun align ((p,hp),(q,hq)) = | |
| 235 | if poly_lt p q then ((p,hp),(q,hq)) else ((q,hq),(p,hp)); | |
| 236 | fun forall2 p l1 l2 = | |
| 237 | case (l1,l2) of | |
| 238 | ([],[]) => true | |
| 239 | | (h1::t1,h2::t2) => p h1 h2 andalso forall2 p t1 t2 | |
| 240 | | _ => false; | |
| 241 | ||
| 242 | fun poly_eq p1 p2 = | |
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changeset | 243 | forall2 (fn (c1,m1) => fn (c2,m2) => c1 =/ c2 andalso (m1: int list) = m2) p1 p2; | 
| 23252 | 244 | |
| 245 | fun memx ((p1,h1),(p2,h2)) ppairs = | |
| 246 | not (exists (fn ((q1,_),(q2,_)) => poly_eq p1 q1 andalso poly_eq p2 q2) ppairs); | |
| 247 | ||
| 248 | (* Buchberger's second criterion. *) | |
| 249 | ||
| 250 | fun criterion2 basis (lcm,((p1,h1),(p2,h2))) opairs = | |
| 251 | exists (fn g => not(poly_eq (fst g) p1) andalso not(poly_eq (fst g) p2) andalso | |
| 252 | can (mdiv lcm) (hd(fst g)) andalso | |
| 253 | not(memx (align (g,(p1,h1))) (map snd opairs)) andalso | |
| 254 | not(memx (align (g,(p2,h2))) (map snd opairs))) basis; | |
| 255 | ||
| 256 | (* Test for hitting constant polynomial. *) | |
| 257 | ||
| 258 | fun constant_poly p = | |
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changeset | 259 | length p = 1 andalso forall (fn x => x = 0) (snd(hd p)); | 
| 23252 | 260 | |
| 261 | (* Grobner basis algorithm. *) | |
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changeset | 262 | |
| 23252 | 263 | (* FIXME: try to get rid of mergesort? *) | 
| 264 | fun merge ord l1 l2 = | |
| 265 | case l1 of | |
| 266 | [] => l2 | |
| 267 | | h1::t1 => | |
| 268 | case l2 of | |
| 269 | [] => l1 | |
| 270 | | h2::t2 => if ord h1 h2 then h1::(merge ord t1 l2) | |
| 271 | else h2::(merge ord l1 t2); | |
| 272 | fun mergesort ord l = | |
| 273 | let | |
| 274 | fun mergepairs l1 l2 = | |
| 275 | case (l1,l2) of | |
| 276 | ([s],[]) => s | |
| 277 | | (l,[]) => mergepairs [] l | |
| 278 | | (l,[s1]) => mergepairs (s1::l) [] | |
| 279 | | (l,(s1::s2::ss)) => mergepairs ((merge ord s1 s2)::l) ss | |
| 23579 | 280 | in if null l then [] else mergepairs [] (map (fn x => [x]) l) | 
| 23252 | 281 | end; | 
| 282 | ||
| 283 | ||
| 284 | fun grobner_basis basis pairs = | |
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changeset | 285 | case pairs of | 
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changeset | 286 | [] => basis | 
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changeset | 287 | | (l,(p1,p2))::opairs => | 
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changeset | 288 | let val (sph as (sp,hist)) = monic (reduce basis (spoly l p1 p2)) | 
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changeset | 289 | in | 
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changeset | 290 | if null sp orelse criterion2 basis (l,(p1,p2)) opairs | 
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changeset | 291 | then grobner_basis basis opairs | 
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changeset | 292 | else if constant_poly sp then grobner_basis (sph::basis) [] | 
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changeset | 293 | else | 
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changeset | 294 | let | 
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changeset | 295 | val rawcps = map (fn p => (mlcm (hd(fst p)) (hd sp),align(p,sph))) | 
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changeset | 296 | basis | 
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changeset | 297 | val newcps = filter (fn (l,(p,q)) => not(orthogonal l (fst p) (fst q))) | 
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changeset | 298 | rawcps | 
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changeset | 299 | in grobner_basis (sph::basis) | 
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changeset | 300 | (merge forder opairs (mergesort forder newcps)) | 
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changeset | 301 | end | 
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changeset | 302 | end; | 
| 23252 | 303 | |
| 304 | (* Interreduce initial polynomials. *) | |
| 305 | ||
| 306 | fun grobner_interreduce rpols ipols = | |
| 307 | case ipols of | |
| 308 | [] => map monic (rev rpols) | |
| 309 | | p::ps => let val p' = reduce (rpols @ ps) p in | |
| 23579 | 310 | if null (fst p') then grobner_interreduce rpols ps | 
| 23252 | 311 | else grobner_interreduce (p'::rpols) ps end; | 
| 312 | ||
| 313 | (* Overall function. *) | |
| 314 | ||
| 315 | fun grobner pols = | |
| 33063 | 316 | let val npols = map_index (fn (n, p) => (p, Start n)) pols | 
| 23579 | 317 | val phists = filter (fn (p,_) => not (null p)) npols | 
| 23252 | 318 | val bas = grobner_interreduce [] (map monic phists) | 
| 25538 | 319 | val prs0 = map_product pair bas bas | 
| 23252 | 320 | val prs1 = filter (fn ((x,_),(y,_)) => poly_lt x y) prs0 | 
| 321 | val prs2 = map (fn (p,q) => (mlcm (hd(fst p)) (hd(fst q)),(p,q))) prs1 | |
| 322 | val prs3 = | |
| 323 | filter (fn (l,(p,q)) => not(orthogonal l (fst p) (fst q))) prs2 in | |
| 324 | grobner_basis bas (mergesort forder prs3) end; | |
| 325 | ||
| 326 | (* Get proof of contradiction from Grobner basis. *) | |
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changeset | 327 | |
| 23252 | 328 | fun find p l = | 
| 329 | case l of | |
| 330 | [] => error "find" | |
| 331 | | (h::t) => if p(h) then h else find p t; | |
| 332 | ||
| 333 | fun grobner_refute pols = | |
| 334 | let val gb = grobner pols in | |
| 335 | snd(find (fn (p,h) => length p = 1 andalso forall (fn x=> x=0) (snd(hd p))) gb) | |
| 336 | end; | |
| 337 | ||
| 338 | (* Turn proof into a certificate as sum of multipliers. *) | |
| 339 | (* In principle this is very inefficient: in a heavily shared proof it may *) | |
| 340 | (* make the same calculation many times. Could put in a cache or something. *) | |
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changeset | 341 | |
| 23252 | 342 | fun resolve_proof vars prf = | 
| 343 | case prf of | |
| 344 | Start(~1) => [] | |
| 345 | | Start m => [(m,[(rat_1,map (K 0) vars)])] | |
| 346 | | Mmul(pol,lin) => | |
| 347 | let val lis = resolve_proof vars lin in | |
| 348 | map (fn (n,p) => (n,grob_cmul pol p)) lis end | |
| 349 | | Add(lin1,lin2) => | |
| 350 | let val lis1 = resolve_proof vars lin1 | |
| 351 | val lis2 = resolve_proof vars lin2 | |
| 33042 | 352 | val dom = distinct (op =) (union (op =) (map fst lis1) (map fst lis2)) | 
| 23252 | 353 | in | 
| 23557 | 354 | map (fn n => let val a = these (AList.lookup (op =) lis1 n) | 
| 355 | val b = these (AList.lookup (op =) lis2 n) | |
| 356 | in (n,grob_add a b) end) dom end; | |
| 23252 | 357 | |
| 358 | (* Run the procedure and produce Weak Nullstellensatz certificate. *) | |
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changeset | 359 | |
| 23252 | 360 | fun grobner_weak vars pols = | 
| 361 | let val cert = resolve_proof vars (grobner_refute pols) | |
| 362 | val l = | |
| 363 | fold_rev (fold_rev (lcm_rat o denominator_rat o fst) o snd) cert (rat_1) in | |
| 364 | (l,map (fn (i,p) => (i,map (fn (d,m) => (l*/d,m)) p)) cert) end; | |
| 365 | ||
| 366 | (* Prove a polynomial is in ideal generated by others, using Grobner basis. *) | |
| 367 | ||
| 368 | fun grobner_ideal vars pols pol = | |
| 369 | let val (pol',h) = reduce (grobner pols) (grob_neg pol,Start(~1)) in | |
| 24913 | 370 | if not (null pol') then error "grobner_ideal: not in the ideal" else | 
| 23252 | 371 | resolve_proof vars h end; | 
| 372 | ||
| 373 | (* Produce Strong Nullstellensatz certificate for a power of pol. *) | |
| 374 | ||
| 375 | fun grobner_strong vars pols pol = | |
| 376 |     let val vars' = @{cterm "True"}::vars
 | |
| 377 | val grob_z = [(rat_1,1::(map (fn x => 0) vars))] | |
| 378 | val grob_1 = [(rat_1,(map (fn x => 0) vars'))] | |
| 379 | fun augment p= map (fn (c,m) => (c,0::m)) p | |
| 380 | val pols' = map augment pols | |
| 381 | val pol' = augment pol | |
| 382 | val allpols = (grob_sub (grob_mul grob_z pol') grob_1)::pols' | |
| 383 | val (l,cert) = grobner_weak vars' allpols | |
| 33029 | 384 | val d = fold (fold (Integer.max o hd o snd) o snd) cert 0 | 
| 23252 | 385 | fun transform_monomial (c,m) = | 
| 386 | grob_cmul (c,tl m) (grob_pow vars pol (d - hd m)) | |
| 387 | fun transform_polynomial q = fold_rev (grob_add o transform_monomial) q [] | |
| 388 | val cert' = map (fn (c,q) => (c-1,transform_polynomial q)) | |
| 389 | (filter (fn (k,_) => k <> 0) cert) in | |
| 390 | (d,l,cert') end; | |
| 391 | ||
| 392 | ||
| 393 | (* Overall parametrized universal procedure for (semi)rings. *) | |
| 394 | (* We return an ideal_conv and the actual ring prover. *) | |
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changeset | 395 | |
| 23252 | 396 | fun refute_disj rfn tm = | 
| 397 | case term_of tm of | |
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changeset | 398 |   Const(@{const_name HOL.disj},_)$l$r =>
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changeset | 399 | compose_single(refute_disj rfn (dest_arg tm),2,compose_single(refute_disj rfn (dest_arg1 tm),2,disjE)) | 
| 23252 | 400 | | _ => rfn tm ; | 
| 401 | ||
| 36713 | 402 | val notnotD = @{thm notnotD};
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changeset | 403 | fun mk_binop ct x y = capply (capply ct x) y | 
| 23252 | 404 | |
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changeset | 405 | val mk_comb = capply; | 
| 23252 | 406 | fun is_neg t = | 
| 407 | case term_of t of | |
| 38558 | 408 |       (Const(@{const_name Not},_)$p) => true
 | 
| 23252 | 409 | | _ => false; | 
| 410 | fun is_eq t = | |
| 411 | case term_of t of | |
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changeset | 412 |  (Const(@{const_name HOL.eq},_)$_$_) => true
 | 
| 23252 | 413 | | _ => false; | 
| 414 | ||
| 415 | fun end_itlist f l = | |
| 416 | case l of | |
| 417 | [] => error "end_itlist" | |
| 418 | | [x] => x | |
| 419 | | (h::t) => f h (end_itlist f t); | |
| 420 | ||
| 421 | val list_mk_binop = fn b => end_itlist (mk_binop b); | |
| 422 | ||
| 423 | val list_dest_binop = fn b => | |
| 424 | let fun h acc t = | |
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changeset | 425 | ((let val (l,r) = dest_binary b t in h (h acc r) l end) | 
| 23252 | 426 | handle CTERM _ => (t::acc)) (* Why had I handle _ => ? *) | 
| 427 | in h [] | |
| 428 | end; | |
| 429 | ||
| 430 | val strip_exists = | |
| 431 | let fun h (acc, t) = | |
| 432 | case (term_of t) of | |
| 38558 | 433 |        Const(@{const_name Ex},_)$Abs(x,T,p) => h (dest_abs NONE (dest_arg t) |>> (fn v => v::acc))
 | 
| 23252 | 434 | | _ => (acc,t) | 
| 435 | in fn t => h ([],t) | |
| 436 | end; | |
| 437 | ||
| 438 | fun is_forall t = | |
| 439 | case term_of t of | |
| 38558 | 440 |   (Const(@{const_name All},_)$Abs(_,_,_)) => true
 | 
| 23252 | 441 | | _ => false; | 
| 442 | ||
| 443 | val mk_object_eq = fn th => th COMP meta_eq_to_obj_eq; | |
| 36713 | 444 | val bool_simps = @{thms bool_simps};
 | 
| 445 | val nnf_simps = @{thms nnf_simps};
 | |
| 23252 | 446 | val nnf_conv = Simplifier.rewrite (HOL_basic_ss addsimps bool_simps addsimps nnf_simps) | 
| 36713 | 447 | val weak_dnf_conv = Simplifier.rewrite (HOL_basic_ss addsimps @{thms weak_dnf_simps});
 | 
| 23252 | 448 | val initial_conv = | 
| 449 | Simplifier.rewrite | |
| 450 | (HOL_basic_ss addsimps nnf_simps | |
| 35410 | 451 | addsimps [not_all, not_ex] | 
| 452 |        addsimps map (fn th => th RS sym) (@{thms ex_simps} @ @{thms all_simps}));
 | |
| 23252 | 453 | |
| 454 | val specl = fold_rev (fn x => fn th => instantiate' [] [SOME x] (th RS spec)); | |
| 455 | ||
| 456 | val cTrp = @{cterm "Trueprop"};
 | |
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changeset | 457 | val cConj = @{cterm HOL.conj};
 | 
| 23252 | 458 | val (cNot,false_tm) = (@{cterm "Not"}, @{cterm "False"});
 | 
| 23557 | 459 | val assume_Trueprop = mk_comb cTrp #> assume; | 
| 23252 | 460 | val list_mk_conj = list_mk_binop cConj; | 
| 461 | val conjs = list_dest_binop cConj; | |
| 462 | val mk_neg = mk_comb cNot; | |
| 463 | ||
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changeset | 464 | fun striplist dest = | 
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changeset | 465 | let | 
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changeset | 466 | fun h acc x = case try dest x of | 
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changeset | 467 | SOME (a,b) => h (h acc b) a | 
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changeset | 468 | | NONE => x::acc | 
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changeset | 469 | in h [] end; | 
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changeset | 470 | fun list_mk_binop b = foldr1 (fn (s,t) => Thm.capply (Thm.capply b s) t); | 
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changeset | 471 | |
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changeset | 472 | val eq_commute = mk_meta_eq @{thm eq_commute};
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changeset | 473 | |
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changeset | 474 | fun sym_conv eq = | 
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changeset | 475 | let val (l,r) = Thm.dest_binop eq | 
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changeset | 476 | in instantiate' [SOME (ctyp_of_term l)] [SOME l, SOME r] eq_commute | 
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changeset | 477 | end; | 
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changeset | 478 | |
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changeset | 479 | (* FIXME : copied from cqe.ML -- complex QE*) | 
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changeset | 480 | fun conjuncts ct = | 
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changeset | 481 | case term_of ct of | 
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changeset | 482 |   @{term HOL.conj}$_$_ => (Thm.dest_arg1 ct)::(conjuncts (Thm.dest_arg ct))
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changeset | 483 | | _ => [ct]; | 
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changeset | 484 | |
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changeset | 485 | fun fold1 f = foldr1 (uncurry f); | 
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changeset | 486 | |
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changeset | 487 | val list_conj = fold1 (fn c => fn c' => Thm.capply (Thm.capply @{cterm HOL.conj} c) c') ;
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changeset | 488 | |
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changeset | 489 | fun mk_conj_tab th = | 
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changeset | 490 | let fun h acc th = | 
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changeset | 491 | case prop_of th of | 
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changeset | 492 |    @{term "Trueprop"}$(@{term HOL.conj}$p$q) => 
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changeset | 493 | h (h acc (th RS conjunct2)) (th RS conjunct1) | 
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changeset | 494 |   | @{term "Trueprop"}$p => (p,th)::acc
 | 
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changeset | 495 | in fold (Termtab.insert Thm.eq_thm) (h [] th) Termtab.empty end; | 
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changeset | 496 | |
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changeset | 497 | fun is_conj (@{term HOL.conj}$_$_) = true
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changeset | 498 | | is_conj _ = false; | 
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changeset | 499 | |
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changeset | 500 | fun prove_conj tab cjs = | 
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changeset | 501 | case cjs of | 
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changeset | 502 | [c] => if is_conj (term_of c) then prove_conj tab (conjuncts c) else tab c | 
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changeset | 503 | | c::cs => conjI OF [prove_conj tab [c], prove_conj tab cs]; | 
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changeset | 504 | |
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changeset | 505 | fun conj_ac_rule eq = | 
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changeset | 506 | let | 
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changeset | 507 | val (l,r) = Thm.dest_equals eq | 
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changeset | 508 |   val ctabl = mk_conj_tab (assume (Thm.capply @{cterm Trueprop} l))
 | 
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changeset | 509 |   val ctabr = mk_conj_tab (assume (Thm.capply @{cterm Trueprop} r))
 | 
| 33035 | 510 | fun tabl c = the (Termtab.lookup ctabl (term_of c)) | 
| 511 | fun tabr c = the (Termtab.lookup ctabr (term_of c)) | |
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changeset | 512 | val thl = prove_conj tabl (conjuncts r) |> implies_intr_hyps | 
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changeset | 513 | val thr = prove_conj tabr (conjuncts l) |> implies_intr_hyps | 
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changeset | 514 |   val eqI = instantiate' [] [SOME l, SOME r] @{thm iffI}
 | 
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changeset | 515 | in implies_elim (implies_elim eqI thl) thr |> mk_meta_eq end; | 
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changeset | 516 | |
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changeset | 517 | (* END FIXME.*) | 
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changeset | 518 | |
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changeset | 519 | (* Conversion for the equivalence of existential statements where | 
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changeset | 520 | EX quantifiers are rearranged differently *) | 
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changeset | 521 |  fun ext T = cterm_rule (instantiate' [SOME T] []) @{cpat Ex}
 | 
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changeset | 522 | fun mk_ex v t = Thm.capply (ext (ctyp_of_term v)) (Thm.cabs v t) | 
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changeset | 523 | |
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changeset | 524 | fun choose v th th' = case concl_of th of | 
| 38558 | 525 |   @{term Trueprop} $ (Const(@{const_name Ex},_)$_) => 
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changeset | 526 | let | 
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changeset | 527 | val p = (funpow 2 Thm.dest_arg o cprop_of) th | 
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changeset | 528 | val T = (hd o Thm.dest_ctyp o ctyp_of_term) p | 
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changeset | 529 | val th0 = fconv_rule (Thm.beta_conversion true) | 
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changeset | 530 | (instantiate' [SOME T] [SOME p, (SOME o Thm.dest_arg o cprop_of) th'] exE) | 
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changeset | 531 | val pv = (Thm.rhs_of o Thm.beta_conversion true) | 
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changeset | 532 |           (Thm.capply @{cterm Trueprop} (Thm.capply p v))
 | 
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changeset | 533 | val th1 = forall_intr v (implies_intr pv th') | 
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changeset | 534 | in implies_elim (implies_elim th0 th) th1 end | 
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changeset | 535 | | _ => error "" | 
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changeset | 536 | |
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changeset | 537 | fun simple_choose v th = | 
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changeset | 538 |    choose v (assume ((Thm.capply @{cterm Trueprop} o mk_ex v) ((Thm.dest_arg o hd o #hyps o Thm.crep_thm) th))) th
 | 
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changeset | 539 | |
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changeset | 540 | |
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changeset | 541 | fun mkexi v th = | 
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changeset | 542 | let | 
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changeset | 543 | val p = Thm.cabs v (Thm.dest_arg (Thm.cprop_of th)) | 
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changeset | 544 | in implies_elim | 
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changeset | 545 |     (fconv_rule (Thm.beta_conversion true) (instantiate' [SOME (ctyp_of_term v)] [SOME p, SOME v] @{thm exI}))
 | 
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changeset | 546 | th | 
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changeset | 547 | end | 
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changeset | 548 | fun ex_eq_conv t = | 
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changeset | 549 | let | 
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changeset | 550 | val (p0,q0) = Thm.dest_binop t | 
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changeset | 551 | val (vs',P) = strip_exists p0 | 
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changeset | 552 | val (vs,_) = strip_exists q0 | 
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changeset | 553 |    val th = assume (Thm.capply @{cterm Trueprop} P)
 | 
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changeset | 554 | val th1 = implies_intr_hyps (fold simple_choose vs' (fold mkexi vs th)) | 
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changeset | 555 | val th2 = implies_intr_hyps (fold simple_choose vs (fold mkexi vs' th)) | 
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changeset | 556 | val p = (Thm.dest_arg o Thm.dest_arg1 o cprop_of) th1 | 
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changeset | 557 | val q = (Thm.dest_arg o Thm.dest_arg o cprop_of) th1 | 
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changeset | 558 | in implies_elim (implies_elim (instantiate' [] [SOME p, SOME q] iffI) th1) th2 | 
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changeset | 559 | |> mk_meta_eq | 
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changeset | 560 | end; | 
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changeset | 561 | |
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changeset | 562 | |
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changeset | 563 | fun getname v = case term_of v of | 
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changeset | 564 | Free(s,_) => s | 
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changeset | 565 | | Var ((s,_),_) => s | 
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changeset | 566 | | _ => "x" | 
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changeset | 567 |  fun mk_eq s t = Thm.capply (Thm.capply @{cterm "op == :: bool => _"} s) t
 | 
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changeset | 568 |  fun mkeq s t = Thm.capply @{cterm Trueprop} (Thm.capply (Thm.capply @{cterm "op = :: bool => _"} s) t)
 | 
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changeset | 569 | fun mk_exists v th = arg_cong_rule (ext (ctyp_of_term v)) | 
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changeset | 570 | (Thm.abstract_rule (getname v) v th) | 
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changeset | 571 | val simp_ex_conv = | 
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changeset | 572 |      Simplifier.rewrite (HOL_basic_ss addsimps @{thms simp_thms(39)})
 | 
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changeset | 573 | |
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changeset | 574 | fun frees t = Thm.add_cterm_frees t []; | 
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changeset | 575 | fun free_in v t = member op aconvc (frees t) v; | 
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changeset | 576 | |
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changeset | 577 | val vsubst = let | 
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changeset | 578 | fun vsubst (t,v) tm = | 
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changeset | 579 | (Thm.rhs_of o Thm.beta_conversion false) (Thm.capply (Thm.cabs v tm) t) | 
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changeset | 580 | in fold vsubst end; | 
| 23252 | 581 | |
| 582 | ||
| 583 | (** main **) | |
| 584 | ||
| 585 | fun ring_and_ideal_conv | |
| 30866 | 586 |   {vars, semiring = (sr_ops, sr_rules), ring = (r_ops, r_rules), 
 | 
| 587 | field = (f_ops, f_rules), idom, ideal} | |
| 23252 | 588 | dest_const mk_const ring_eq_conv ring_normalize_conv = | 
| 589 | let | |
| 590 | val [add_pat, mul_pat, pow_pat, zero_tm, one_tm] = sr_ops; | |
| 591 | val [ring_add_tm, ring_mul_tm, ring_pow_tm] = | |
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changeset | 592 | map dest_fun2 [add_pat, mul_pat, pow_pat]; | 
| 23252 | 593 | |
| 594 | val (ring_sub_tm, ring_neg_tm) = | |
| 595 | (case r_ops of | |
| 30866 | 596 | [sub_pat, neg_pat] => (dest_fun2 sub_pat, dest_fun neg_pat) | 
| 597 |     |_  => (@{cterm "True"}, @{cterm "True"}));
 | |
| 598 | ||
| 599 | val (field_div_tm, field_inv_tm) = | |
| 600 | (case f_ops of | |
| 601 | [div_pat, inv_pat] => (dest_fun2 div_pat, dest_fun inv_pat) | |
| 602 |      | _ => (@{cterm "True"}, @{cterm "True"}));
 | |
| 23252 | 603 | |
| 604 | val [idom_thm, neq_thm] = idom; | |
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changeset | 605 | val [idl_sub, idl_add0] = | 
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changeset | 606 | if length ideal = 2 then ideal else [eq_commute, eq_commute] | 
| 30866 | 607 | fun ring_dest_neg t = | 
| 608 | let val (l,r) = dest_comb t | |
| 609 | in if Term.could_unify(term_of l,term_of ring_neg_tm) then r | |
| 610 |        else raise CTERM ("ring_dest_neg", [t])
 | |
| 611 | end | |
| 23252 | 612 | |
| 613 | val ring_mk_neg = fn tm => mk_comb (ring_neg_tm) (tm); | |
| 30866 | 614 | fun field_dest_inv t = | 
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changeset | 615 | let val (l,r) = dest_comb t in | 
| 30866 | 616 | if Term.could_unify(term_of l, term_of field_inv_tm) then r | 
| 617 |         else raise CTERM ("field_dest_inv", [t])
 | |
| 23252 | 618 | end | 
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changeset | 619 | val ring_dest_add = dest_binary ring_add_tm; | 
| 23252 | 620 | val ring_mk_add = mk_binop ring_add_tm; | 
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changeset | 621 | val ring_dest_sub = dest_binary ring_sub_tm; | 
| 23252 | 622 | val ring_mk_sub = mk_binop ring_sub_tm; | 
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changeset | 623 | val ring_dest_mul = dest_binary ring_mul_tm; | 
| 23252 | 624 | val ring_mk_mul = mk_binop ring_mul_tm; | 
| 30866 | 625 | val field_dest_div = dest_binary field_div_tm; | 
| 626 | val field_mk_div = mk_binop field_div_tm; | |
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changeset | 627 | val ring_dest_pow = dest_binary ring_pow_tm; | 
| 23252 | 628 | val ring_mk_pow = mk_binop ring_pow_tm ; | 
| 629 | fun grobvars tm acc = | |
| 630 | if can dest_const tm then acc | |
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changeset | 631 | else if can ring_dest_neg tm then grobvars (dest_arg tm) acc | 
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changeset | 632 | else if can ring_dest_pow tm then grobvars (dest_arg1 tm) acc | 
| 23252 | 633 | else if can ring_dest_add tm orelse can ring_dest_sub tm | 
| 634 | orelse can ring_dest_mul tm | |
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changeset | 635 | then grobvars (dest_arg1 tm) (grobvars (dest_arg tm) acc) | 
| 30866 | 636 | else if can field_dest_inv tm | 
| 637 | then | |
| 638 | let val gvs = grobvars (dest_arg tm) [] | |
| 639 | in if null gvs then acc else tm::acc | |
| 640 | end | |
| 641 | else if can field_dest_div tm then | |
| 642 | let val lvs = grobvars (dest_arg1 tm) acc | |
| 643 | val gvs = grobvars (dest_arg tm) [] | |
| 644 | in if null gvs then lvs else tm::acc | |
| 645 | end | |
| 23252 | 646 | else tm::acc ; | 
| 647 | ||
| 648 | fun grobify_term vars tm = | |
| 649 | ((if not (member (op aconvc) vars tm) then raise CTERM ("Not a variable", [tm]) else
 | |
| 650 | [(rat_1,map (fn i => if i aconvc tm then 1 else 0) vars)]) | |
| 651 | handle CTERM _ => | |
| 652 | ((let val x = dest_const tm | |
| 653 | in if x =/ rat_0 then [] else [(x,map (fn v => 0) vars)] | |
| 654 | end) | |
| 655 | handle ERROR _ => | |
| 656 | ((grob_neg(grobify_term vars (ring_dest_neg tm))) | |
| 657 | handle CTERM _ => | |
| 658 | ( | |
| 30866 | 659 | (grob_inv(grobify_term vars (field_dest_inv tm))) | 
| 660 | handle CTERM _ => | |
| 23252 | 661 | ((let val (l,r) = ring_dest_add tm | 
| 662 | in grob_add (grobify_term vars l) (grobify_term vars r) | |
| 663 | end) | |
| 664 | handle CTERM _ => | |
| 665 | ((let val (l,r) = ring_dest_sub tm | |
| 666 | in grob_sub (grobify_term vars l) (grobify_term vars r) | |
| 667 | end) | |
| 668 | handle CTERM _ => | |
| 669 | ((let val (l,r) = ring_dest_mul tm | |
| 670 | in grob_mul (grobify_term vars l) (grobify_term vars r) | |
| 671 | end) | |
| 672 | handle CTERM _ => | |
| 30866 | 673 | ( (let val (l,r) = field_dest_div tm | 
| 23252 | 674 | in grob_div (grobify_term vars l) (grobify_term vars r) | 
| 675 | end) | |
| 30866 | 676 | handle CTERM _ => | 
| 23252 | 677 | ((let val (l,r) = ring_dest_pow tm | 
| 678 | in grob_pow vars (grobify_term vars l) ((term_of #> HOLogic.dest_number #> snd) r) | |
| 679 | end) | |
| 680 | handle CTERM _ => error "grobify_term: unknown or invalid term"))))))))); | |
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changeset | 681 | val eq_tm = idom_thm |> concl |> dest_arg |> dest_arg |> dest_fun2; | 
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changeset | 682 | val dest_eq = dest_binary eq_tm; | 
| 23252 | 683 | |
| 684 | fun grobify_equation vars tm = | |
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changeset | 685 | let val (l,r) = dest_binary eq_tm tm | 
| 23252 | 686 | in grob_sub (grobify_term vars l) (grobify_term vars r) | 
| 687 | end; | |
| 688 | ||
| 689 | fun grobify_equations tm = | |
| 690 | let | |
| 691 | val cjs = conjs tm | |
| 692 | val rawvars = fold_rev (fn eq => fn a => | |
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changeset | 693 | grobvars (dest_arg1 eq) (grobvars (dest_arg eq) a)) cjs [] | 
| 35408 | 694 | val vars = sort (fn (x, y) => Term_Ord.term_ord(term_of x,term_of y)) | 
| 23252 | 695 | (distinct (op aconvc) rawvars) | 
| 696 | in (vars,map (grobify_equation vars) cjs) | |
| 697 | end; | |
| 698 | ||
| 699 | val holify_polynomial = | |
| 700 | let fun holify_varpow (v,n) = | |
| 37388 | 701 |   if n = 1 then v else ring_mk_pow v (Numeral.mk_cnumber @{ctyp nat} n)  (* FIXME *)
 | 
| 23252 | 702 | fun holify_monomial vars (c,m) = | 
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changeset | 703 | let val xps = map holify_varpow (filter (fn (_,n) => n <> 0) (vars ~~ m)) | 
| 23252 | 704 | in end_itlist ring_mk_mul (mk_const c :: xps) | 
| 705 | end | |
| 706 | fun holify_polynomial vars p = | |
| 23579 | 707 | if null p then mk_const (rat_0) | 
| 23252 | 708 | else end_itlist ring_mk_add (map (holify_monomial vars) p) | 
| 709 | in holify_polynomial | |
| 710 | end ; | |
| 711 | val idom_rule = simplify (HOL_basic_ss addsimps [idom_thm]); | |
| 712 | fun prove_nz n = eqF_elim | |
| 713 | (ring_eq_conv(mk_binop eq_tm (mk_const n) (mk_const(rat_0)))); | |
| 714 | val neq_01 = prove_nz (rat_1); | |
| 715 | fun neq_rule n th = [prove_nz n, th] MRS neq_thm; | |
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changeset | 716 | fun mk_add th1 = combination(arg_cong_rule ring_add_tm th1); | 
| 23252 | 717 | |
| 718 | fun refute tm = | |
| 23557 | 719 | if tm aconvc false_tm then assume_Trueprop tm else | 
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changeset | 720 | ((let | 
| 23557 | 721 | val (nths0,eths0) = List.partition (is_neg o concl) (HOLogic.conj_elims (assume_Trueprop tm)) | 
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changeset | 722 | val nths = filter (is_eq o dest_arg o concl) nths0 | 
| 23252 | 723 | val eths = filter (is_eq o concl) eths0 | 
| 724 | in | |
| 725 | if null eths then | |
| 726 | let | |
| 23557 | 727 | val th1 = end_itlist (fn th1 => fn th2 => idom_rule(HOLogic.conj_intr th1 th2)) nths | 
| 23252 | 728 | val th2 = Conv.fconv_rule | 
| 729 | ((arg_conv #> arg_conv) | |
| 730 | (binop_conv ring_normalize_conv)) th1 | |
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changeset | 731 | val conc = th2 |> concl |> dest_arg | 
| 23252 | 732 | val (l,r) = conc |> dest_eq | 
| 733 | in implies_intr (mk_comb cTrp tm) | |
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changeset | 734 | (equal_elim (arg_cong_rule cTrp (eqF_intr th2)) | 
| 23252 | 735 | (reflexive l |> mk_object_eq)) | 
| 736 | end | |
| 737 | else | |
| 738 | let | |
| 739 | val (vars,l,cert,noteqth) =( | |
| 740 | if null nths then | |
| 741 | let val (vars,pols) = grobify_equations(list_mk_conj(map concl eths)) | |
| 742 | val (l,cert) = grobner_weak vars pols | |
| 743 | in (vars,l,cert,neq_01) | |
| 744 | end | |
| 745 | else | |
| 746 | let | |
| 23557 | 747 | val nth = end_itlist (fn th1 => fn th2 => idom_rule(HOLogic.conj_intr th1 th2)) nths | 
| 23252 | 748 | val (vars,pol::pols) = | 
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changeset | 749 | grobify_equations(list_mk_conj(dest_arg(concl nth)::map concl eths)) | 
| 23252 | 750 | val (deg,l,cert) = grobner_strong vars pols pol | 
| 751 | val th1 = Conv.fconv_rule((arg_conv o arg_conv)(binop_conv ring_normalize_conv)) nth | |
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changeset | 752 | val th2 = funpow deg (idom_rule o HOLogic.conj_intr th1) neq_01 | 
| 23252 | 753 | in (vars,l,cert,th2) | 
| 754 | end) | |
| 755 | val cert_pos = map (fn (i,p) => (i,filter (fn (c,m) => c >/ rat_0) p)) cert | |
| 756 | val cert_neg = map (fn (i,p) => (i,map (fn (c,m) => (minus_rat c,m)) | |
| 757 | (filter (fn (c,m) => c </ rat_0) p))) cert | |
| 758 | val herts_pos = map (fn (i,p) => (i,holify_polynomial vars p)) cert_pos | |
| 759 | val herts_neg = map (fn (i,p) => (i,holify_polynomial vars p)) cert_neg | |
| 760 | fun thm_fn pols = | |
| 761 | if null pols then reflexive(mk_const rat_0) else | |
| 762 | end_itlist mk_add | |
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changeset | 763 | (map (fn (i,p) => arg_cong_rule (mk_comb ring_mul_tm p) | 
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changeset | 764 | (nth eths i |> mk_meta_eq)) pols) | 
| 23252 | 765 | val th1 = thm_fn herts_pos | 
| 766 | val th2 = thm_fn herts_neg | |
| 23557 | 767 | val th3 = HOLogic.conj_intr(mk_add (symmetric th1) th2 |> mk_object_eq) noteqth | 
| 23252 | 768 | val th4 = Conv.fconv_rule ((arg_conv o arg_conv o binop_conv) ring_normalize_conv) | 
| 769 | (neq_rule l th3) | |
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changeset | 770 | val (l,r) = dest_eq(dest_arg(concl th4)) | 
| 23252 | 771 | in implies_intr (mk_comb cTrp tm) | 
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changeset | 772 | (equal_elim (arg_cong_rule cTrp (eqF_intr th4)) | 
| 23252 | 773 | (reflexive l |> mk_object_eq)) | 
| 774 | end | |
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changeset | 775 |   end) handle ERROR _ => raise CTERM ("Gorbner-refute: unable to refute",[tm]))
 | 
| 23252 | 776 | |
| 777 | fun ring tm = | |
| 778 | let | |
| 779 | fun mk_forall x p = | |
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changeset | 780 |       mk_comb (cterm_rule (instantiate' [SOME (ctyp_of_term x)] []) @{cpat "All:: (?'a => bool) => _"}) (cabs x p)
 | 
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changeset | 781 | val avs = add_cterm_frees tm [] | 
| 23252 | 782 | val P' = fold mk_forall avs tm | 
| 783 | val th1 = initial_conv(mk_neg P') | |
| 784 | val (evs,bod) = strip_exists(concl th1) in | |
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changeset | 785 |    if is_forall bod then raise CTERM("ring: non-universal formula",[tm])
 | 
| 23252 | 786 | else | 
| 787 | let | |
| 788 | val th1a = weak_dnf_conv bod | |
| 789 | val boda = concl th1a | |
| 790 | val th2a = refute_disj refute boda | |
| 791 | val th2b = [mk_object_eq th1a, (th2a COMP notI) COMP PFalse'] MRS trans | |
| 792 | val th2 = fold (fn v => fn th => (forall_intr v th) COMP allI) evs (th2b RS PFalse) | |
| 793 | val th3 = equal_elim | |
| 794 | (Simplifier.rewrite (HOL_basic_ss addsimps [not_ex RS sym]) | |
| 795 | (th2 |> cprop_of)) th2 | |
| 796 | in specl avs | |
| 797 | ([[[mk_object_eq th1, th3 RS PFalse'] MRS trans] MRS PFalse] MRS notnotD) | |
| 798 | end | |
| 799 | end | |
| 800 | fun ideal tms tm ord = | |
| 801 | let | |
| 802 | val rawvars = fold_rev grobvars (tm::tms) [] | |
| 803 | val vars = sort ord (distinct (fn (x,y) => (term_of x) aconv (term_of y)) rawvars) | |
| 804 | val pols = map (grobify_term vars) tms | |
| 805 | val pol = grobify_term vars tm | |
| 806 | val cert = grobner_ideal vars pols pol | |
| 33063 | 807 | in map_range (fn n => these (AList.lookup (op =) cert n) |> holify_polynomial vars) | 
| 808 | (length pols) | |
| 23252 | 809 | end | 
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changeset | 810 | |
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changeset | 811 | fun poly_eq_conv t = | 
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changeset | 812 | let val (a,b) = Thm.dest_binop t | 
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changeset | 813 | in fconv_rule (arg_conv (arg1_conv ring_normalize_conv)) | 
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changeset | 814 | (instantiate' [] [SOME a, SOME b] idl_sub) | 
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changeset | 815 | end | 
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changeset | 816 | val poly_eq_simproc = | 
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changeset | 817 | let | 
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changeset | 818 | fun proc phi ss t = | 
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changeset | 819 | let val th = poly_eq_conv t | 
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changeset | 820 | in if Thm.is_reflexive th then NONE else SOME th | 
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changeset | 821 | end | 
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changeset | 822 |    in make_simproc {lhss = [Thm.lhs_of idl_sub], 
 | 
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changeset | 823 | name = "poly_eq_simproc", proc = proc, identifier = []} | 
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changeset | 824 | end; | 
| 35410 | 825 |   val poly_eq_ss = HOL_basic_ss addsimps @{thms simp_thms}
 | 
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changeset | 826 | addsimprocs [poly_eq_simproc] | 
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changeset | 827 | |
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changeset | 828 | local | 
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changeset | 829 | fun is_defined v t = | 
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changeset | 830 | let | 
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changeset | 831 | val mons = striplist(dest_binary ring_add_tm) t | 
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changeset | 832 | in member (op aconvc) mons v andalso | 
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changeset | 833 | forall (fn m => v aconvc m | 
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changeset | 834 | orelse not(member (op aconvc) (Thm.add_cterm_frees m []) v)) mons | 
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changeset | 835 | end | 
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changeset | 836 | |
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changeset | 837 | fun isolate_variable vars tm = | 
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changeset | 838 | let | 
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changeset | 839 | val th = poly_eq_conv tm | 
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changeset | 840 | val th' = (sym_conv then_conv poly_eq_conv) tm | 
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changeset | 841 | val (v,th1) = | 
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changeset | 842 | case find_first(fn v=> is_defined v (Thm.dest_arg1 (Thm.rhs_of th))) vars of | 
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changeset | 843 | SOME v => (v,th') | 
| 33035 | 844 | | NONE => (the (find_first | 
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changeset | 845 | (fn v => is_defined v (Thm.dest_arg1 (Thm.rhs_of th'))) vars) ,th) | 
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changeset | 846 | val th2 = transitive th1 | 
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changeset | 847 | (instantiate' [] [(SOME o Thm.dest_arg1 o Thm.rhs_of) th1, SOME v] | 
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changeset | 848 | idl_add0) | 
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changeset | 849 | in fconv_rule(funpow 2 arg_conv ring_normalize_conv) th2 | 
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changeset | 850 | end | 
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changeset | 851 | in | 
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changeset | 852 | fun unwind_polys_conv tm = | 
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changeset | 853 | let | 
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changeset | 854 | val (vars,bod) = strip_exists tm | 
| 38795 
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changeset | 855 |   val cjs = striplist (dest_binary @{cterm HOL.conj}) bod
 | 
| 33035 | 856 | val th1 = (the (get_first (try (isolate_variable vars)) cjs) | 
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changeset | 857 |              handle Option => raise CTERM ("unwind_polys_conv",[tm]))
 | 
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changeset | 858 | val eq = Thm.lhs_of th1 | 
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changeset | 859 |   val bod' = list_mk_binop @{cterm HOL.conj} (eq::(remove op aconvc eq cjs))
 | 
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changeset | 860 | val th2 = conj_ac_rule (mk_eq bod bod') | 
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changeset | 861 | val th3 = transitive th2 | 
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changeset | 862 |          (Drule.binop_cong_rule @{cterm HOL.conj} th1 
 | 
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changeset | 863 | (reflexive (Thm.dest_arg (Thm.rhs_of th2)))) | 
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changeset | 864 | val v = Thm.dest_arg1(Thm.dest_arg1(Thm.rhs_of th3)) | 
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changeset | 865 | val vars' = (remove op aconvc v vars) @ [v] | 
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changeset | 866 | val th4 = fconv_rule (arg_conv simp_ex_conv) (mk_exists v th3) | 
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changeset | 867 | val th5 = ex_eq_conv (mk_eq tm (fold mk_ex (remove op aconvc v vars) (Thm.lhs_of th4))) | 
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changeset | 868 | in transitive th5 (fold mk_exists (remove op aconvc v vars) th4) | 
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changeset | 869 | end; | 
| 
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changeset | 870 | end | 
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changeset | 871 | |
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changeset | 872 | local | 
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changeset | 873 | fun scrub_var v m = | 
| 
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changeset | 874 | let | 
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changeset | 875 | val ps = striplist ring_dest_mul m | 
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changeset | 876 | val ps' = remove op aconvc v ps | 
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changeset | 877 | in if null ps' then one_tm else fold1 ring_mk_mul ps' | 
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changeset | 878 | end | 
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changeset | 879 | fun find_multipliers v mons = | 
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changeset | 880 | let | 
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changeset | 881 | val mons1 = filter (fn m => free_in v m) mons | 
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changeset | 882 | val mons2 = map (scrub_var v) mons1 | 
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changeset | 883 | in if null mons2 then zero_tm else fold1 ring_mk_add mons2 | 
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changeset | 884 | end | 
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changeset | 885 | |
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changeset | 886 | fun isolate_monomials vars tm = | 
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changeset | 887 | let | 
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changeset | 888 | val (cmons,vmons) = | 
| 33049 
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changeset | 889 | List.partition (fn m => null (inter (op aconvc) vars (frees m))) | 
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changeset | 890 | (striplist ring_dest_add tm) | 
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changeset | 891 | val cofactors = map (fn v => find_multipliers v vmons) vars | 
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changeset | 892 | val cnc = if null cmons then zero_tm | 
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changeset | 893 | else Thm.capply ring_neg_tm | 
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changeset | 894 | (list_mk_binop ring_add_tm cmons) | 
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changeset | 895 | in (cofactors,cnc) | 
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changeset | 896 | end; | 
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changeset | 897 | |
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changeset | 898 | fun isolate_variables evs ps eq = | 
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changeset | 899 | let | 
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changeset | 900 | val vars = filter (fn v => free_in v eq) evs | 
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changeset | 901 | val (qs,p) = isolate_monomials vars eq | 
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changeset | 902 | val rs = ideal (qs @ ps) p | 
| 35408 | 903 | (fn (s,t) => Term_Ord.term_ord (term_of s, term_of t)) | 
| 33957 | 904 | in (eq, take (length qs) rs ~~ vars) | 
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changeset | 905 | end; | 
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changeset | 906 | fun subst_in_poly i p = Thm.rhs_of (ring_normalize_conv (vsubst i p)); | 
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changeset | 907 | in | 
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changeset | 908 | fun solve_idealism evs ps eqs = | 
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changeset | 909 | if null evs then [] else | 
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changeset | 910 | let | 
| 33035 | 911 | val (eq,cfs) = get_first (try (isolate_variables evs ps)) eqs |> the | 
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changeset | 912 | val evs' = subtract op aconvc evs (map snd cfs) | 
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changeset | 913 | val eqs' = map (subst_in_poly cfs) (remove op aconvc eq eqs) | 
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changeset | 914 | in cfs @ solve_idealism evs' ps eqs' | 
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changeset | 915 | end; | 
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changeset | 916 | end; | 
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changeset | 917 | |
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changeset | 918 | |
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changeset | 919 | in {ring_conv = ring, simple_ideal = ideal, multi_ideal = solve_idealism, 
 | 
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changeset | 920 | poly_eq_ss = poly_eq_ss, unwind_conv = unwind_polys_conv} | 
| 23252 | 921 | end; | 
| 922 | ||
| 923 | ||
| 924 | fun find_term bounds tm = | |
| 925 | (case term_of tm of | |
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changeset | 926 |     Const (@{const_name HOL.eq}, T) $ _ $ _ =>
 | 
| 23252 | 927 | if domain_type T = HOLogic.boolT then find_args bounds tm | 
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changeset | 928 | else dest_arg tm | 
| 38558 | 929 |   | Const (@{const_name Not}, _) $ _ => find_term bounds (dest_arg tm)
 | 
| 930 |   | Const (@{const_name All}, _) $ _ => find_body bounds (dest_arg tm)
 | |
| 931 |   | Const (@{const_name Ex}, _) $ _ => find_body bounds (dest_arg tm)
 | |
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changeset | 932 |   | Const (@{const_name HOL.conj}, _) $ _ $ _ => find_args bounds tm
 | 
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changeset | 933 |   | Const (@{const_name HOL.disj}, _) $ _ $ _ => find_args bounds tm
 | 
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changeset | 934 |   | Const (@{const_name HOL.implies}, _) $ _ $ _ => find_args bounds tm
 | 
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changeset | 935 |   | @{term "op ==>"} $_$_ => find_args bounds tm
 | 
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changeset | 936 |   | Const("op ==",_)$_$_ => find_args bounds tm
 | 
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changeset | 937 |   | @{term Trueprop}$_ => find_term bounds (dest_arg tm)
 | 
| 23252 | 938 |   | _ => raise TERM ("find_term", []))
 | 
| 939 | and find_args bounds tm = | |
| 940 | let val (t, u) = Thm.dest_binop tm | |
| 941 | in (find_term bounds t handle TERM _ => find_term bounds u) end | |
| 942 | and find_body bounds b = | |
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changeset | 943 | let val (_, b') = dest_abs (SOME (Name.bound bounds)) b | 
| 23252 | 944 | in find_term (bounds + 1) b' end; | 
| 945 | ||
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changeset | 946 | |
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changeset | 947 | fun get_ring_ideal_convs ctxt form = | 
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changeset | 948 | case try (find_term 0) form of | 
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changeset | 949 | NONE => NONE | 
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changeset | 950 | | SOME tm => | 
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changeset | 951 | (case Semiring_Normalizer.match ctxt tm of | 
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changeset | 952 | NONE => NONE | 
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changeset | 953 |   | SOME (res as (theory, {is_const, dest_const, 
 | 
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changeset | 954 | mk_const, conv = ring_eq_conv})) => | 
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changeset | 955 | SOME (ring_and_ideal_conv theory | 
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changeset | 956 | dest_const (mk_const (ctyp_of_term tm)) (ring_eq_conv ctxt) | 
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changeset | 957 | (Semiring_Normalizer.semiring_normalize_wrapper ctxt res))) | 
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changeset | 958 | |
| 23579 | 959 | fun ring_solve ctxt form = | 
| 23252 | 960 | (case try (find_term 0 (* FIXME !? *)) form of | 
| 961 | NONE => reflexive form | |
| 962 | | SOME tm => | |
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changeset | 963 | (case Semiring_Normalizer.match ctxt tm of | 
| 23252 | 964 | NONE => reflexive form | 
| 965 |       | SOME (res as (theory, {is_const, dest_const, mk_const, conv = ring_eq_conv})) =>
 | |
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changeset | 966 | #ring_conv (ring_and_ideal_conv theory | 
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changeset | 967 | dest_const (mk_const (ctyp_of_term tm)) (ring_eq_conv ctxt) | 
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changeset | 968 | (Semiring_Normalizer.semiring_normalize_wrapper ctxt res)) form)); | 
| 23252 | 969 | |
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changeset | 970 | fun presimplify ctxt add_thms del_thms = asm_full_simp_tac (Simplifier.context ctxt | 
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changeset | 971 | (HOL_basic_ss addsimps (Algebra_Simplification.get ctxt) delsimps del_thms addsimps add_thms)); | 
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changeset | 972 | |
| 23579 | 973 | fun ring_tac add_ths del_ths ctxt = | 
| 35625 | 974 | Object_Logic.full_atomize_tac | 
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changeset | 975 | THEN' presimplify ctxt add_ths del_ths | 
| 23579 | 976 | THEN' CSUBGOAL (fn (p, i) => | 
| 35625 | 977 | rtac (let val form = Object_Logic.dest_judgment p | 
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changeset | 978 | in case get_ring_ideal_convs ctxt form of | 
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changeset | 979 | NONE => reflexive form | 
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changeset | 980 | | SOME thy => #ring_conv thy form | 
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changeset | 981 | end) i | 
| 23579 | 982 | handle TERM _ => no_tac | 
| 983 | | CTERM _ => no_tac | |
| 984 | | THM _ => no_tac); | |
| 23334 | 985 | |
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changeset | 986 | local | 
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changeset | 987 | fun lhs t = case term_of t of | 
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changeset | 988 |   Const(@{const_name HOL.eq},_)$_$_ => Thm.dest_arg1 t
 | 
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changeset | 989 |  | _=> raise CTERM ("ideal_tac - lhs",[t])
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changeset | 990 | fun exitac NONE = no_tac | 
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changeset | 991 | | exitac (SOME y) = rtac (instantiate' [SOME (ctyp_of_term y)] [NONE,SOME y] exI) 1 | 
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changeset | 992 | in | 
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changeset | 993 | fun ideal_tac add_ths del_ths ctxt = | 
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changeset | 994 | presimplify ctxt add_ths del_ths | 
| 27671 | 995 | THEN' | 
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changeset | 996 | CSUBGOAL (fn (p, i) => | 
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changeset | 997 | case get_ring_ideal_convs ctxt p of | 
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changeset | 998 | NONE => no_tac | 
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changeset | 999 | | SOME thy => | 
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changeset | 1000 | let | 
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changeset | 1001 |    fun poly_exists_tac {asms = asms, concl = concl, prems = prems,
 | 
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changeset | 1002 | params = params, context = ctxt, schematics = scs} = | 
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changeset | 1003 | let | 
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changeset | 1004 | val (evs,bod) = strip_exists (Thm.dest_arg concl) | 
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changeset | 1005 | val ps = map_filter (try (lhs o Thm.dest_arg)) asms | 
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changeset | 1006 | val cfs = (map swap o #multi_ideal thy evs ps) | 
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changeset | 1007 | (map Thm.dest_arg1 (conjuncts bod)) | 
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changeset | 1008 | val ws = map (exitac o AList.lookup op aconvc cfs) evs | 
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changeset | 1009 | in EVERY (rev ws) THEN Method.insert_tac prems 1 | 
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changeset | 1010 | THEN ring_tac add_ths del_ths ctxt 1 | 
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changeset | 1011 | end | 
| 27671 | 1012 | in | 
| 1013 |      clarify_tac @{claset} i 
 | |
| 35625 | 1014 | THEN Object_Logic.full_atomize_tac i | 
| 27671 | 1015 | THEN asm_full_simp_tac (Simplifier.context ctxt (#poly_eq_ss thy)) i | 
| 1016 |      THEN clarify_tac @{claset} i 
 | |
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changeset | 1017 | THEN (REPEAT (CONVERSION (#unwind_conv thy) i)) | 
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changeset | 1018 | THEN SUBPROOF poly_exists_tac ctxt i | 
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changeset | 1019 | end | 
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changeset | 1020 | handle TERM _ => no_tac | 
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changeset | 1021 | | CTERM _ => no_tac | 
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changeset | 1022 | | THM _ => no_tac); | 
| 23252 | 1023 | end; | 
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changeset | 1024 | |
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changeset | 1025 | fun algebra_tac add_ths del_ths ctxt i = | 
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changeset | 1026 | ring_tac add_ths del_ths ctxt i ORELSE ideal_tac add_ths del_ths ctxt i | 
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changeset | 1027 | |
| 36723 | 1028 | local | 
| 1029 | ||
| 1030 | fun keyword k = Scan.lift (Args.$$$ k -- Args.colon) >> K () | |
| 1031 | val addN = "add" | |
| 1032 | val delN = "del" | |
| 1033 | val any_keyword = keyword addN || keyword delN | |
| 1034 | val thms = Scan.repeat (Scan.unless any_keyword Attrib.multi_thm) >> flat; | |
| 1035 | ||
| 1036 | in | |
| 1037 | ||
| 1038 | val algebra_method = ((Scan.optional (keyword addN |-- thms) []) -- | |
| 1039 | (Scan.optional (keyword delN |-- thms) [])) >> | |
| 1040 | (fn (add_ths, del_ths) => fn ctxt => | |
| 1041 | SIMPLE_METHOD' (algebra_tac add_ths del_ths ctxt)) | |
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changeset | 1042 | |
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changeset | 1043 | end; | 
| 36723 | 1044 | |
| 1045 | end; |