Quot/Examples/IntEx2.thy
author Christian Urban <urbanc@in.tum.de>
Wed, 09 Dec 2009 22:05:11 +0100
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slightly more on IntEx2
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theory IntEx2
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imports "../QuotMain" Nat Presburger
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(*uses
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  ("Tools/numeral.ML")
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  ("Tools/numeral_syntax.ML")
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  ("Tools/int_arith.ML")*)
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begin
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fun
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  intrel :: "(nat \<times> nat) \<Rightarrow> (nat \<times> nat) \<Rightarrow> bool" (infix "\<approx>" 50)
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where
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  "intrel (x, y) (u, v) = (x + v = u + y)"
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quotient int = "nat \<times> nat" / intrel
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  apply(unfold equivp_def)
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  apply(auto simp add: mem_def expand_fun_eq)
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  done
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instantiation int :: "{zero, one, plus, minus, uminus, times, ord, abs, sgn}"
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begin
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quotient_def
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  zero_int::"0 :: int"
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where
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  "(0::nat, 0::nat)"
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quotient_def
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  one_int::"1 :: int"
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where
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  "(1::nat, 0::nat)"
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fun
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  plus_raw :: "(nat \<times> nat) \<Rightarrow> (nat \<times> nat) \<Rightarrow> (nat \<times> nat)"
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where
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  "plus_raw (x, y) (u, v) = (x + u, y + v)"
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quotient_def
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  plus_int::"(op +) :: (int \<Rightarrow> int \<Rightarrow> int)"
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where
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  "plus_raw"
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fun
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  minus_raw :: "(nat \<times> nat) \<Rightarrow> (nat \<times> nat)"
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where
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  "minus_raw (x, y) = (y, x)"
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quotient_def
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  uminus_int::"(uminus :: (int \<Rightarrow> int))"
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where
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  "minus_raw"
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definition
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  minus_int_def [code del]:  "z - w = z + (-w::int)"
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fun
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  times_raw :: "(nat \<times> nat) \<Rightarrow> (nat \<times> nat) \<Rightarrow> (nat \<times> nat)"
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where
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  "times_raw (x, y) (u, v) = (x*u + y*v, x*v + y*u)"
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quotient_def
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  times_int::"(op *) :: (int \<Rightarrow> int \<Rightarrow> int)"
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where
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  "times_raw"
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fun
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  less_eq_raw :: "(nat \<times> nat) \<Rightarrow> (nat \<times> nat) \<Rightarrow> bool"
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where
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  "less_eq_raw (x, y) (u, v) = (x+v \<le> u+y)"
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quotient_def
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  less_eq_int :: "(op \<le>) :: int \<Rightarrow> int \<Rightarrow> bool"
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where
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  "less_eq_raw"
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definition
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  less_int_def [code del]: "(z\<Colon>int) < w = (z \<le> w \<and> z \<noteq> w)"
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definition
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  abs_int_def: "\<bar>i\<Colon>int\<bar> = (if i < 0 then - i else i)"
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definition
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  sgn_int_def: "sgn (i\<Colon>int) = (if i = 0 then 0 else if 0 < i then 1 else - 1)"
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instance ..
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end
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lemma plus_raw_rsp[quot_respect]:
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  shows "(op \<approx> ===> op \<approx> ===> op \<approx>) plus_raw plus_raw"
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by auto
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lemma minus_raw_rsp[quot_respect]:
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  shows "(op \<approx> ===> op \<approx>) minus_raw minus_raw"
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  by auto
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lemma times_raw_fst:
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  assumes a: "x \<approx> z"
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  shows "times_raw x y \<approx> times_raw z y"
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using a
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apply(cases x, cases y, cases z)
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apply(auto simp add: times_raw.simps intrel.simps)
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apply(rename_tac u v w x y z)
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apply(subgoal_tac "u*w + z*w = y*w + v*w  &  u*x + z*x = y*x + v*x")
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apply(simp add: mult_ac)
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apply(simp add: add_mult_distrib [symmetric])
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done
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lemma times_raw_snd:
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  assumes a: "x \<approx> z"
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  shows "times_raw y x \<approx> times_raw y z"
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using a
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apply(cases x, cases y, cases z)
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apply(auto simp add: times_raw.simps intrel.simps)
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apply(rename_tac u v w x y z)
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apply(subgoal_tac "u*w + z*w = y*w + v*w  &  u*x + z*x = y*x + v*x")
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apply(simp add: mult_ac)
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apply(simp add: add_mult_distrib [symmetric])
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done
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lemma mult_raw_rsp[quot_respect]:
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  shows "(op \<approx> ===> op \<approx> ===> op \<approx>) times_raw times_raw"
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apply(simp only: fun_rel.simps)
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apply(rule allI | rule impI)+
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apply(rule equivp_transp[OF int_equivp])
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apply(rule times_raw_fst)
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apply(assumption)
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apply(rule times_raw_snd)
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apply(assumption)
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done
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663
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lemma less_eq_raw_rsp[quot_respect]:
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  shows "(op \<approx> ===> op \<approx> ===> op =) less_eq_raw less_eq_raw"
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by auto
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568
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lemma plus_assoc_raw:
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  shows "plus_raw (plus_raw i j) k \<approx> plus_raw i (plus_raw j k)"
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by (cases i, cases j, cases k) (simp)
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lemma plus_sym_raw:
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  shows "plus_raw i j \<approx> plus_raw j i"
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by (cases i, cases j) (simp)
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lemma plus_zero_raw:
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  shows "plus_raw  (0, 0) i \<approx> i"
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by (cases i) (simp)
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lemma plus_minus_zero_raw:
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  shows "plus_raw (minus_raw i) i \<approx> (0, 0)"
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by (cases i) (simp)
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663
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lemma times_assoc_raw:
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  shows "times_raw (times_raw i j) k \<approx> times_raw i (times_raw j k)"
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by (cases i, cases j, cases k) 
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   (simp add: algebra_simps)
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663
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lemma times_sym_raw:
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  shows "times_raw i j \<approx> times_raw j i"
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by (cases i, cases j) (simp add: algebra_simps)
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663
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lemma times_one_raw:
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  shows "times_raw  (1, 0) i \<approx> i"
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by (cases i) (simp)
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663
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lemma times_plus_comm_raw:
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  shows "times_raw (plus_raw i j) k \<approx> plus_raw (times_raw i k) (times_raw j k)"
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by (cases i, cases j, cases k) 
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   (simp add: algebra_simps)
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lemma one_zero_distinct:
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  shows "\<not> (0, 0) \<approx> ((1::nat), (0::nat))"
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  by simp
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673
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text{* The integers form a @{text comm_ring_1}*}
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ML {* qconsts_lookup @{theory} @{term "op + :: int \<Rightarrow> int \<Rightarrow> int"} *}
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ML {* dest_Type (snd (dest_Const @{term "0 :: int"})) *}
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ML {* @{term "0 :: int"} *}
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instance int :: comm_ring_1
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proof
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  fix i j k :: int
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  show "(i + j) + k = i + (j + k)"
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     by (lifting plus_assoc_raw)
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  show "i + j = j + i" 
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    by (lifting plus_sym_raw)
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  show "0 + i = (i::int)"
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    by (lifting plus_zero_raw)
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  show "- i + i = 0"
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    by (lifting plus_minus_zero_raw)
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  show "i - j = i + - j"
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    by (simp add: minus_int_def)
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  show "(i * j) * k = i * (j * k)"
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    by (lifting times_assoc_raw)
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  show "i * j = j * i"
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    by (lifting times_sym_raw)
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  show "1 * i = i"
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    by (lifting times_one_raw)
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  show "(i + j) * k = i * k + j * k"
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    by (lifting times_plus_comm_raw)
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  show "0 \<noteq> (1::int)"
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    by (lifting one_zero_distinct)
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qed
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673
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lemma add:
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     "(ABS_int (x,y)) + (ABS_int (u,v)) =
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      (ABS_int (x+u, y+v))"
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apply(simp add: plus_int_def)
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sorry
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lemma int_def: "of_nat m = ABS_int (m, 0)"
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apply(induct m)
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apply(simp add: zero_int_def)
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apply(simp add: one_int_def add)
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done
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lemma le_antisym_raw:
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  shows "less_eq_raw i j \<Longrightarrow> less_eq_raw j i \<Longrightarrow> i \<approx> j"
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by (cases i, cases j) (simp)
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lemma le_refl_raw:
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  shows "less_eq_raw i i"
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by (cases i) (simp)
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lemma le_trans_raw:
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  shows "less_eq_raw i j \<Longrightarrow> less_eq_raw j k \<Longrightarrow> less_eq_raw i k"
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by (cases i, cases j, cases k) (simp)
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lemma le_cases_raw:
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  shows "less_eq_raw i j \<or> less_eq_raw j i"
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by (cases i, cases j) 
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   (simp add: linorder_linear)
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instance int :: linorder
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proof
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  fix i j k :: int
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  show antisym: "i \<le> j \<Longrightarrow> j \<le> i \<Longrightarrow> i = j"
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    by (lifting le_antisym_raw)
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  show "(i < j) = (i \<le> j \<and> \<not> j \<le> i)"
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    by (auto simp add: less_int_def dest: antisym) 
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  show "i \<le> i"
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    by (lifting le_refl_raw)
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  show "i \<le> j \<Longrightarrow> j \<le> k \<Longrightarrow> i \<le> k"
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    by (lifting le_trans_raw)
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  show "i \<le> j \<or> j \<le> i"
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    by (lifting le_cases_raw)
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qed
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instantiation int :: distrib_lattice
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begin
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definition
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  "(inf \<Colon> int \<Rightarrow> int \<Rightarrow> int) = min"
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definition
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  "(sup \<Colon> int \<Rightarrow> int \<Rightarrow> int) = max"
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instance
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  by intro_classes
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    (auto simp add: inf_int_def sup_int_def min_max.sup_inf_distrib1)
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end
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lemma le_plus_raw:
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  shows "less_eq_raw i j \<Longrightarrow> less_eq_raw (plus_raw k i) (plus_raw k j)"
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by (cases i, cases j, cases k) (simp)
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instance int :: pordered_cancel_ab_semigroup_add
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proof
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  fix i j k :: int
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  show "i \<le> j \<Longrightarrow> k + i \<le> k + j"
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    by (lifting le_plus_raw)
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qed
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673
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abbreviation
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  "less_raw i j \<equiv> less_eq_raw i j \<and> \<not>(i \<approx> j)"
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lemma test:
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  "\<lbrakk>less_raw i j; less_raw (0, 0) k\<rbrakk>
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    \<Longrightarrow> less_raw (times_raw k i) (times_raw k j)"
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apply(cases i, cases j, cases k)
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apply(simp only: less_eq_raw.simps times_raw.simps)
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apply(simp)
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apply(rename_tac u v w x y z)
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apply(rule conjI)
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apply(subgoal_tac "y*u + y*x \<le> y*w + y*v  &  z*v \<le> y*v")
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apply(simp add: )
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sorry
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text{*The integers form an ordered integral domain*}
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instance int :: ordered_idom
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proof
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  fix i j k :: int
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  show "i < j \<Longrightarrow> 0 < k \<Longrightarrow> k * i < k * j"
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    unfolding less_int_def by (lifting test)
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  show "\<bar>i\<bar> = (if i < 0 then -i else i)"
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    by (simp only: abs_int_def)
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  show "sgn (i\<Colon>int) = (if i=0 then 0 else if 0<i then 1 else - 1)"
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    by (simp only: sgn_int_def)
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qed
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instance int :: lordered_ring
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proof  
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  fix k :: int
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  show "abs k = sup k (- k)"
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    by (auto simp add: sup_int_def abs_int_def less_minus_self_iff [symmetric])
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qed
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lemmas int_distrib =
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  left_distrib [of "z1::int" "z2" "w", standard]
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  right_distrib [of "w::int" "z1" "z2", standard]
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  left_diff_distrib [of "z1::int" "z2" "w", standard]
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  right_diff_distrib [of "w::int" "z1" "z2", standard]
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subsection {* Embedding of the Integers into any @{text ring_1}: @{text of_int}*}
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(*
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context ring_1
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begin
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definition 
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  of_int :: "int \<Rightarrow> 'a" 
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where
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  "of_int 
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*)
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subsection {* Binary representation *}
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text {*
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  This formalization defines binary arithmetic in terms of the integers
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  rather than using a datatype. This avoids multiple representations (leading
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  zeroes, etc.)  See @{text "ZF/Tools/twos-compl.ML"}, function @{text
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  int_of_binary}, for the numerical interpretation.
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  The representation expects that @{text "(m mod 2)"} is 0 or 1,
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  even if m is negative;
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  For instance, @{text "-5 div 2 = -3"} and @{text "-5 mod 2 = 1"}; thus
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  @{text "-5 = (-3)*2 + 1"}.
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  This two's complement binary representation derives from the paper 
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  "An Efficient Representation of Arithmetic for Term Rewriting" by
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  Dave Cohen and Phil Watson, Rewriting Techniques and Applications,
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  Springer LNCS 488 (240-251), 1991.
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*}
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subsubsection {* The constructors @{term Bit0}, @{term Bit1}, @{term Pls} and @{term Min} *}
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definition
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  Pls :: int where
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  [code del]: "Pls = 0"
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definition
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  Min :: int where
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  [code del]: "Min = - 1"
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definition
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  Bit0 :: "int \<Rightarrow> int" where
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  [code del]: "Bit0 k = k + k"
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   365
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definition
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  Bit1 :: "int \<Rightarrow> int" where
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  [code del]: "Bit1 k = 1 + k + k"
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class number = -- {* for numeric types: nat, int, real, \dots *}
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  fixes number_of :: "int \<Rightarrow> 'a"
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   372
600
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(*use "~~/src/HOL/Tools/numeral.ML"
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syntax
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  "_Numeral" :: "num_const \<Rightarrow> 'a"    ("_")
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use "~~/src/HOL/Tools/numeral_syntax.ML"
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setup NumeralSyntax.setup
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   381
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abbreviation
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  "Numeral0 \<equiv> number_of Pls"
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   384
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abbreviation
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   386
  "Numeral1 \<equiv> number_of (Bit1 Pls)"
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   387
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lemma Let_number_of [simp]: "Let (number_of v) f = f (number_of v)"
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  -- {* Unfold all @{text let}s involving constants *}
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  unfolding Let_def ..
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   391
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definition
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   393
  succ :: "int \<Rightarrow> int" where
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  [code del]: "succ k = k + 1"
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   395
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   396
definition
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   397
  pred :: "int \<Rightarrow> int" where
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   398
  [code del]: "pred k = k - 1"
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   399
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   400
lemmas
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   401
  max_number_of [simp] = max_def
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   402
    [of "number_of u" "number_of v", standard, simp]
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diff changeset
   403
and
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diff changeset
   404
  min_number_of [simp] = min_def 
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diff changeset
   405
    [of "number_of u" "number_of v", standard, simp]
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   406
  -- {* unfolding @{text minx} and @{text max} on numerals *}
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diff changeset
   407
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   408
lemmas numeral_simps = 
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   409
  succ_def pred_def Pls_def Min_def Bit0_def Bit1_def
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diff changeset
   410
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   411
text {* Removal of leading zeroes *}
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diff changeset
   412
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   413
lemma Bit0_Pls [simp, code_post]:
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   414
  "Bit0 Pls = Pls"
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diff changeset
   415
  unfolding numeral_simps by simp
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diff changeset
   416
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   417
lemma Bit1_Min [simp, code_post]:
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  "Bit1 Min = Min"
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diff changeset
   419
  unfolding numeral_simps by simp
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diff changeset
   420
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   421
lemmas normalize_bin_simps =
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   422
  Bit0_Pls Bit1_Min
600
5d932e7a856c List moved after QuotMain
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   423
*)
601
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   424
663
0dd10a900cae Different syntax for definitions that allows overloading and retrieving of definitions by matching whole constants.
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   425
end