| author | kuncar | 
| Mon, 26 Mar 2012 15:32:54 +0200 | |
| changeset 47116 | 529d2a949bd4 | 
| parent 46950 | d0181abdbdac | 
| child 47108 | 2a1953f0d20d | 
| permissions | -rw-r--r-- | 
| 41905 | 1 | (* Author: Lukas Bulwahn, TU Muenchen *) | 
| 2 | ||
| 43356 | 3 | header {* Counterexample generator performing narrowing-based testing *}
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| 41905 | 4 | |
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changeset | 5 | theory Quickcheck_Narrowing | 
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changeset | 6 | imports Quickcheck_Exhaustive | 
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changeset | 7 | keywords "find_unused_assms" :: diag | 
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changeset | 8 | uses | 
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changeset | 9 |   ("Tools/Quickcheck/PNF_Narrowing_Engine.hs")
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changeset | 10 |   ("Tools/Quickcheck/Narrowing_Engine.hs")
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changeset | 11 |   ("Tools/Quickcheck/narrowing_generators.ML")
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| 46589 | 12 |   ("Tools/Quickcheck/find_unused_assms.ML")
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| 41905 | 13 | begin | 
| 14 | ||
| 15 | subsection {* Counterexample generator *}
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| 16 | ||
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changeset | 17 | text {* We create a new target for the necessary code generation setup. *}
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changeset | 18 | |
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changeset | 19 | setup {* Code_Target.extend_target ("Haskell_Quickcheck", (Code_Haskell.target, K I)) *}
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changeset | 20 | |
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changeset | 21 | subsubsection {* Code generation setup *}
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changeset | 22 | |
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changeset | 23 | code_type typerep | 
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changeset | 24 | (Haskell_Quickcheck "Typerep") | 
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changeset | 25 | |
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changeset | 26 | code_const Typerep.Typerep | 
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changeset | 27 | (Haskell_Quickcheck "Typerep") | 
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changeset | 28 | |
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changeset | 29 | code_reserved Haskell_Quickcheck Typerep | 
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changeset | 30 | |
| 43341 | 31 | subsubsection {* Type @{text "code_int"} for Haskell Quickcheck's Int type *}
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changeset | 32 | |
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changeset | 33 | typedef (open) code_int = "UNIV \<Colon> int set" | 
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changeset | 34 | morphisms int_of of_int by rule | 
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changeset | 35 | |
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changeset | 36 | lemma of_int_int_of [simp]: | 
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changeset | 37 | "of_int (int_of k) = k" | 
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changeset | 38 | by (rule int_of_inverse) | 
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changeset | 39 | |
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changeset | 40 | lemma int_of_of_int [simp]: | 
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changeset | 41 | "int_of (of_int n) = n" | 
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changeset | 42 | by (rule of_int_inverse) (rule UNIV_I) | 
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changeset | 43 | |
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changeset | 44 | lemma code_int: | 
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changeset | 45 | "(\<And>n\<Colon>code_int. PROP P n) \<equiv> (\<And>n\<Colon>int. PROP P (of_int n))" | 
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changeset | 46 | proof | 
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changeset | 47 | fix n :: int | 
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changeset | 48 | assume "\<And>n\<Colon>code_int. PROP P n" | 
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changeset | 49 | then show "PROP P (of_int n)" . | 
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changeset | 50 | next | 
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changeset | 51 | fix n :: code_int | 
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changeset | 52 | assume "\<And>n\<Colon>int. PROP P (of_int n)" | 
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changeset | 53 | then have "PROP P (of_int (int_of n))" . | 
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changeset | 54 | then show "PROP P n" by simp | 
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changeset | 55 | qed | 
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changeset | 56 | |
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changeset | 57 | |
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changeset | 58 | lemma int_of_inject [simp]: | 
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changeset | 59 | "int_of k = int_of l \<longleftrightarrow> k = l" | 
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changeset | 60 | by (rule int_of_inject) | 
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changeset | 61 | |
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changeset | 62 | lemma of_int_inject [simp]: | 
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changeset | 63 | "of_int n = of_int m \<longleftrightarrow> n = m" | 
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changeset | 64 | by (rule of_int_inject) (rule UNIV_I)+ | 
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changeset | 65 | |
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changeset | 66 | instantiation code_int :: equal | 
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changeset | 67 | begin | 
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changeset | 68 | |
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changeset | 69 | definition | 
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changeset | 70 | "HOL.equal k l \<longleftrightarrow> HOL.equal (int_of k) (int_of l)" | 
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changeset | 71 | |
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changeset | 72 | instance proof | 
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changeset | 73 | qed (auto simp add: equal_code_int_def equal_int_def eq_int_refl) | 
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changeset | 74 | |
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changeset | 75 | end | 
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changeset | 76 | |
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changeset | 77 | instantiation code_int :: number | 
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changeset | 78 | begin | 
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changeset | 79 | |
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changeset | 80 | definition | 
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changeset | 81 | "number_of = of_int" | 
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changeset | 82 | |
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changeset | 83 | instance .. | 
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changeset | 84 | |
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changeset | 85 | end | 
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changeset | 86 | |
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changeset | 87 | lemma int_of_number [simp]: | 
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changeset | 88 | "int_of (number_of k) = number_of k" | 
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changeset | 89 | by (simp add: number_of_code_int_def number_of_is_id) | 
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changeset | 90 | |
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changeset | 91 | |
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changeset | 92 | definition nat_of :: "code_int => nat" | 
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changeset | 93 | where | 
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changeset | 94 | "nat_of i = nat (int_of i)" | 
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changeset | 95 | |
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changeset | 96 | |
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changeset | 97 | code_datatype "number_of \<Colon> int \<Rightarrow> code_int" | 
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changeset | 98 | |
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changeset | 99 | |
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changeset | 100 | instantiation code_int :: "{minus, linordered_semidom, semiring_div, linorder}"
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changeset | 101 | begin | 
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changeset | 102 | |
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changeset | 103 | definition [simp, code del]: | 
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changeset | 104 | "0 = of_int 0" | 
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changeset | 105 | |
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changeset | 106 | definition [simp, code del]: | 
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changeset | 107 | "1 = of_int 1" | 
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changeset | 108 | |
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changeset | 109 | definition [simp, code del]: | 
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changeset | 110 | "n + m = of_int (int_of n + int_of m)" | 
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changeset | 111 | |
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changeset | 112 | definition [simp, code del]: | 
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changeset | 113 | "n - m = of_int (int_of n - int_of m)" | 
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changeset | 114 | |
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changeset | 115 | definition [simp, code del]: | 
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changeset | 116 | "n * m = of_int (int_of n * int_of m)" | 
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changeset | 117 | |
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changeset | 118 | definition [simp, code del]: | 
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changeset | 119 | "n div m = of_int (int_of n div int_of m)" | 
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changeset | 120 | |
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changeset | 121 | definition [simp, code del]: | 
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changeset | 122 | "n mod m = of_int (int_of n mod int_of m)" | 
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changeset | 123 | |
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changeset | 124 | definition [simp, code del]: | 
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changeset | 125 | "n \<le> m \<longleftrightarrow> int_of n \<le> int_of m" | 
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changeset | 126 | |
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changeset | 127 | definition [simp, code del]: | 
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changeset | 128 | "n < m \<longleftrightarrow> int_of n < int_of m" | 
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changeset | 129 | |
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changeset | 130 | |
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changeset | 131 | instance proof | 
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changeset | 132 | qed (auto simp add: code_int left_distrib zmult_zless_mono2) | 
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changeset | 133 | |
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changeset | 134 | end | 
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changeset | 135 | |
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changeset | 136 | lemma zero_code_int_code [code, code_unfold]: | 
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changeset | 137 | "(0\<Colon>code_int) = Numeral0" | 
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changeset | 138 | by (simp add: number_of_code_int_def Pls_def) | 
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changeset | 139 | |
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changeset | 140 | lemma one_code_int_code [code, code_unfold]: | 
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changeset | 141 | "(1\<Colon>code_int) = Numeral1" | 
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changeset | 142 | by (simp add: number_of_code_int_def Pls_def Bit1_def) | 
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changeset | 143 | |
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changeset | 144 | definition div_mod_code_int :: "code_int \<Rightarrow> code_int \<Rightarrow> code_int \<times> code_int" where | 
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changeset | 145 | [code del]: "div_mod_code_int n m = (n div m, n mod m)" | 
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changeset | 146 | |
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changeset | 147 | lemma [code]: | 
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changeset | 148 | "div_mod_code_int n m = (if m = 0 then (0, n) else (n div m, n mod m))" | 
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changeset | 149 | unfolding div_mod_code_int_def by auto | 
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changeset | 150 | |
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changeset | 151 | lemma [code]: | 
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changeset | 152 | "n div m = fst (div_mod_code_int n m)" | 
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changeset | 153 | unfolding div_mod_code_int_def by simp | 
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changeset | 154 | |
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changeset | 155 | lemma [code]: | 
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changeset | 156 | "n mod m = snd (div_mod_code_int n m)" | 
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changeset | 157 | unfolding div_mod_code_int_def by simp | 
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changeset | 158 | |
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changeset | 159 | lemma int_of_code [code]: | 
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changeset | 160 | "int_of k = (if k = 0 then 0 | 
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changeset | 161 | else (if k mod 2 = 0 then 2 * int_of (k div 2) else 2 * int_of (k div 2) + 1))" | 
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changeset | 162 | proof - | 
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changeset | 163 | have 1: "(int_of k div 2) * 2 + int_of k mod 2 = int_of k" | 
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changeset | 164 | by (rule mod_div_equality) | 
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changeset | 165 | have "int_of k mod 2 = 0 \<or> int_of k mod 2 = 1" by auto | 
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changeset | 166 | from this show ?thesis | 
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changeset | 167 | apply auto | 
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changeset | 168 | apply (insert 1) by (auto simp add: mult_ac) | 
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changeset | 169 | qed | 
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changeset | 170 | |
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changeset | 171 | |
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changeset | 172 | code_instance code_numeral :: equal | 
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changeset | 173 | (Haskell_Quickcheck -) | 
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changeset | 174 | |
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changeset | 175 | setup {* fold (Numeral.add_code @{const_name number_code_int_inst.number_of_code_int}
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changeset | 176 | false Code_Printer.literal_numeral) ["Haskell_Quickcheck"] *} | 
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changeset | 177 | |
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changeset | 178 | code_const "0 \<Colon> code_int" | 
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changeset | 179 | (Haskell_Quickcheck "0") | 
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changeset | 180 | |
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changeset | 181 | code_const "1 \<Colon> code_int" | 
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changeset | 182 | (Haskell_Quickcheck "1") | 
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changeset | 183 | |
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changeset | 184 | code_const "minus \<Colon> code_int \<Rightarrow> code_int \<Rightarrow> code_int" | 
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changeset | 185 | (Haskell_Quickcheck "(_/ -/ _)") | 
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changeset | 186 | |
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changeset | 187 | code_const div_mod_code_int | 
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changeset | 188 | (Haskell_Quickcheck "divMod") | 
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changeset | 189 | |
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changeset | 190 | code_const "HOL.equal \<Colon> code_int \<Rightarrow> code_int \<Rightarrow> bool" | 
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changeset | 191 | (Haskell_Quickcheck infix 4 "==") | 
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changeset | 192 | |
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changeset | 193 | code_const "op \<le> \<Colon> code_int \<Rightarrow> code_int \<Rightarrow> bool" | 
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changeset | 194 | (Haskell_Quickcheck infix 4 "<=") | 
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changeset | 195 | |
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changeset | 196 | code_const "op < \<Colon> code_int \<Rightarrow> code_int \<Rightarrow> bool" | 
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changeset | 197 | (Haskell_Quickcheck infix 4 "<") | 
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changeset | 198 | |
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changeset | 199 | code_type code_int | 
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changeset | 200 | (Haskell_Quickcheck "Int") | 
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changeset | 201 | |
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changeset | 202 | code_abort of_int | 
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changeset | 203 | |
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changeset | 204 | subsubsection {* Narrowing's deep representation of types and terms *}
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| 41905 | 205 | |
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changeset | 206 | datatype narrowing_type = Narrowing_sum_of_products "narrowing_type list list" | 
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changeset | 207 | datatype narrowing_term = Narrowing_variable "code_int list" narrowing_type | Narrowing_constructor code_int "narrowing_term list" | 
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changeset | 208 | datatype 'a narrowing_cons = Narrowing_cons narrowing_type "(narrowing_term list => 'a) list" | 
| 41905 | 209 | |
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changeset | 210 | primrec map_cons :: "('a => 'b) => 'a narrowing_cons => 'b narrowing_cons"
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| 43356 | 211 | where | 
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changeset | 212 | "map_cons f (Narrowing_cons ty cs) = Narrowing_cons ty (map (%c. f o c) cs)" | 
| 43356 | 213 | |
| 43341 | 214 | subsubsection {* From narrowing's deep representation of terms to @{theory Code_Evaluation}'s terms *}
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changeset | 215 | |
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changeset | 216 | class partial_term_of = typerep + | 
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changeset | 217 | fixes partial_term_of :: "'a itself => narrowing_term => Code_Evaluation.term" | 
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changeset | 218 | |
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changeset | 219 | lemma partial_term_of_anything: "partial_term_of x nt \<equiv> t" | 
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changeset | 220 | by (rule eq_reflection) (cases "partial_term_of x nt", cases t, simp) | 
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changeset | 222 | subsubsection {* Auxilary functions for Narrowing *}
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| 41905 | 223 | |
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changeset | 224 | consts nth :: "'a list => code_int => 'a" | 
| 41905 | 225 | |
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changeset | 226 | code_const nth (Haskell_Quickcheck infixl 9 "!!") | 
| 41905 | 227 | |
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changeset | 228 | consts error :: "char list => 'a" | 
| 41905 | 229 | |
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changeset | 230 | code_const error (Haskell_Quickcheck "error") | 
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changeset | 232 | consts toEnum :: "code_int => char" | 
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changeset | 233 | |
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changeset | 234 | code_const toEnum (Haskell_Quickcheck "toEnum") | 
| 41905 | 235 | |
| 43316 | 236 | consts marker :: "char" | 
| 41905 | 237 | |
| 43316 | 238 | code_const marker (Haskell_Quickcheck "''\\0'") | 
| 239 | ||
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changeset | 240 | subsubsection {* Narrowing's basic operations *}
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| 41905 | 241 | |
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changeset | 242 | type_synonym 'a narrowing = "code_int => 'a narrowing_cons" | 
| 41905 | 243 | |
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changeset | 244 | definition empty :: "'a narrowing" | 
| 41905 | 245 | where | 
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changeset | 246 | "empty d = Narrowing_cons (Narrowing_sum_of_products []) []" | 
| 41905 | 247 | |
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changeset | 248 | definition cons :: "'a => 'a narrowing" | 
| 41905 | 249 | where | 
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changeset | 250 | "cons a d = (Narrowing_cons (Narrowing_sum_of_products [[]]) [(%_. a)])" | 
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changeset | 252 | fun conv :: "(narrowing_term list => 'a) list => narrowing_term => 'a" | 
| 41905 | 253 | where | 
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changeset | 254 | "conv cs (Narrowing_variable p _) = error (marker # map toEnum p)" | 
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changeset | 255 | | "conv cs (Narrowing_constructor i xs) = (nth cs i) xs" | 
| 41905 | 256 | |
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changeset | 257 | fun non_empty :: "narrowing_type => bool" | 
| 41905 | 258 | where | 
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changeset | 259 | "non_empty (Narrowing_sum_of_products ps) = (\<not> (List.null ps))" | 
| 41905 | 260 | |
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changeset | 261 | definition "apply" :: "('a => 'b) narrowing => 'a narrowing => 'b narrowing"
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| 41905 | 262 | where | 
| 263 | "apply f a d = | |
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changeset | 264 | (case f d of Narrowing_cons (Narrowing_sum_of_products ps) cfs => | 
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changeset | 265 | case a (d - 1) of Narrowing_cons ta cas => | 
| 41905 | 266 | let | 
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changeset | 267 | shallow = (d > 0 \<and> non_empty ta); | 
| 41905 | 268 | cs = [(%xs'. (case xs' of [] => undefined | x # xs => cf xs (conv cas x))). shallow, cf <- cfs] | 
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changeset | 269 | in Narrowing_cons (Narrowing_sum_of_products [ta # p. shallow, p <- ps]) cs)" | 
| 41905 | 270 | |
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changeset | 271 | definition sum :: "'a narrowing => 'a narrowing => 'a narrowing" | 
| 41905 | 272 | where | 
| 273 | "sum a b d = | |
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changeset | 274 | (case a d of Narrowing_cons (Narrowing_sum_of_products ssa) ca => | 
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changeset | 275 | case b d of Narrowing_cons (Narrowing_sum_of_products ssb) cb => | 
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changeset | 276 | Narrowing_cons (Narrowing_sum_of_products (ssa @ ssb)) (ca @ cb))" | 
| 41905 | 277 | |
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changeset | 278 | lemma [fundef_cong]: | 
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changeset | 279 | assumes "a d = a' d" "b d = b' d" "d = d'" | 
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changeset | 280 | shows "sum a b d = sum a' b' d'" | 
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changeset | 281 | using assms unfolding sum_def by (auto split: narrowing_cons.split narrowing_type.split) | 
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changeset | 282 | |
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changeset | 283 | lemma [fundef_cong]: | 
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changeset | 284 | assumes "f d = f' d" "(\<And>d'. 0 <= d' & d' < d ==> a d' = a' d')" | 
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changeset | 285 | assumes "d = d'" | 
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changeset | 286 | shows "apply f a d = apply f' a' d'" | 
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changeset | 287 | proof - | 
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changeset | 288 | note assms moreover | 
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changeset | 289 | have "int_of (of_int 0) < int_of d' ==> int_of (of_int 0) <= int_of (of_int (int_of d' - int_of (of_int 1)))" | 
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changeset | 290 | by (simp add: of_int_inverse) | 
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changeset | 291 | moreover | 
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changeset | 292 | have "int_of (of_int (int_of d' - int_of (of_int 1))) < int_of d'" | 
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changeset | 293 | by (simp add: of_int_inverse) | 
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changeset | 294 | ultimately show ?thesis | 
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changeset | 295 | unfolding apply_def by (auto split: narrowing_cons.split narrowing_type.split simp add: Let_def) | 
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changeset | 296 | qed | 
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changeset | 297 | |
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changeset | 298 | subsubsection {* Narrowing generator type class *}
 | 
| 41905 | 299 | |
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changeset | 300 | class narrowing = | 
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changeset | 301 | fixes narrowing :: "code_int => 'a narrowing_cons" | 
| 41905 | 302 | |
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changeset | 303 | datatype property = Universal narrowing_type "(narrowing_term => property)" "narrowing_term => Code_Evaluation.term" | Existential narrowing_type "(narrowing_term => property)" "narrowing_term => Code_Evaluation.term" | Property bool | 
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changeset | 304 | |
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changeset | 305 | (* FIXME: hard-wired maximal depth of 100 here *) | 
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changeset | 306 | definition exists :: "('a :: {narrowing, partial_term_of} => property) => property"
 | 
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changeset | 307 | where | 
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changeset | 308 |   "exists f = (case narrowing (100 :: code_int) of Narrowing_cons ty cs => Existential ty (\<lambda> t. f (conv cs t)) (partial_term_of (TYPE('a))))"
 | 
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changeset | 309 | |
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changeset | 310 | definition "all" :: "('a :: {narrowing, partial_term_of} => property) => property"
 | 
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changeset | 311 | where | 
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changeset | 312 |   "all f = (case narrowing (100 :: code_int) of Narrowing_cons ty cs => Universal ty (\<lambda>t. f (conv cs t)) (partial_term_of (TYPE('a))))"
 | 
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changeset | 313 | |
| 41943 | 314 | subsubsection {* class @{text is_testable} *}
 | 
| 41905 | 315 | |
| 41943 | 316 | text {* The class @{text is_testable} ensures that all necessary type instances are generated. *}
 | 
| 41905 | 317 | |
| 318 | class is_testable | |
| 319 | ||
| 320 | instance bool :: is_testable .. | |
| 321 | ||
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changeset | 322 | instance "fun" :: ("{term_of, narrowing, partial_term_of}", is_testable) is_testable ..
 | 
| 41905 | 323 | |
| 324 | definition ensure_testable :: "'a :: is_testable => 'a :: is_testable" | |
| 325 | where | |
| 326 | "ensure_testable f = f" | |
| 327 | ||
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changeset | 328 | |
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changeset | 329 | subsubsection {* Defining a simple datatype to represent functions in an incomplete and redundant way *}
 | 
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changeset | 330 | |
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changeset | 331 | datatype ('a, 'b) ffun = Constant 'b | Update 'a 'b "('a, 'b) ffun"
 | 
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changeset | 332 | |
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changeset | 333 | primrec eval_ffun :: "('a, 'b) ffun => 'a => 'b"
 | 
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changeset | 334 | where | 
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changeset | 335 | "eval_ffun (Constant c) x = c" | 
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changeset | 336 | | "eval_ffun (Update x' y f) x = (if x = x' then y else eval_ffun f x)" | 
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changeset | 337 | |
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changeset | 338 | hide_type (open) ffun | 
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changeset | 339 | hide_const (open) Constant Update eval_ffun | 
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changeset | 340 | |
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changeset | 341 | datatype 'b cfun = Constant 'b | 
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changeset | 342 | |
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changeset | 343 | primrec eval_cfun :: "'b cfun => 'a => 'b" | 
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changeset | 344 | where | 
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changeset | 345 | "eval_cfun (Constant c) y = c" | 
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changeset | 346 | |
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changeset | 347 | hide_type (open) cfun | 
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changeset | 348 | hide_const (open) Constant eval_cfun Abs_cfun Rep_cfun | 
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changeset | 349 | |
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changeset | 350 | subsubsection {* Setting up the counterexample generator *}
 | 
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changeset | 351 | |
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changeset | 352 | use "Tools/Quickcheck/narrowing_generators.ML" | 
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changeset | 353 | |
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changeset | 354 | setup {* Narrowing_Generators.setup *}
 | 
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changeset | 355 | |
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changeset | 356 | definition narrowing_dummy_partial_term_of :: "('a :: partial_term_of) itself => narrowing_term => term"
 | 
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changeset | 357 | where | 
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changeset | 358 | "narrowing_dummy_partial_term_of = partial_term_of" | 
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changeset | 359 | |
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changeset | 360 | definition narrowing_dummy_narrowing :: "code_int => ('a :: narrowing) narrowing_cons"
 | 
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changeset | 361 | where | 
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changeset | 362 | "narrowing_dummy_narrowing = narrowing" | 
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changeset | 363 | |
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changeset | 364 | lemma [code]: | 
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changeset | 365 | "ensure_testable f = | 
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changeset | 366 | (let | 
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changeset | 367 | x = narrowing_dummy_narrowing :: code_int => bool narrowing_cons; | 
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changeset | 368 | y = narrowing_dummy_partial_term_of :: bool itself => narrowing_term => term; | 
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changeset | 369 | z = (conv :: _ => _ => unit) in f)" | 
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changeset | 370 | unfolding Let_def ensure_testable_def .. | 
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changeset | 371 | |
| 46308 | 372 | subsection {* Narrowing for sets *}
 | 
| 373 | ||
| 374 | instantiation set :: (narrowing) narrowing | |
| 375 | begin | |
| 376 | ||
| 377 | definition "narrowing_set = Quickcheck_Narrowing.apply (Quickcheck_Narrowing.cons set) narrowing" | |
| 378 | ||
| 379 | instance .. | |
| 380 | ||
| 381 | end | |
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changeset | 382 | |
| 43356 | 383 | subsection {* Narrowing for integers *}
 | 
| 384 | ||
| 385 | ||
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changeset | 386 | definition drawn_from :: "'a list => 'a narrowing_cons" | 
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changeset | 387 | where "drawn_from xs = Narrowing_cons (Narrowing_sum_of_products (map (%_. []) xs)) (map (%x y. x) xs)" | 
| 43356 | 388 | |
| 389 | function around_zero :: "int => int list" | |
| 390 | where | |
| 391 | "around_zero i = (if i < 0 then [] else (if i = 0 then [0] else around_zero (i - 1) @ [i, -i]))" | |
| 392 | by pat_completeness auto | |
| 393 | termination by (relation "measure nat") auto | |
| 394 | ||
| 395 | declare around_zero.simps[simp del] | |
| 396 | ||
| 397 | lemma length_around_zero: | |
| 398 | assumes "i >= 0" | |
| 399 | shows "length (around_zero i) = 2 * nat i + 1" | |
| 400 | proof (induct rule: int_ge_induct[OF assms]) | |
| 401 | case 1 | |
| 402 | from 1 show ?case by (simp add: around_zero.simps) | |
| 403 | next | |
| 404 | case (2 i) | |
| 405 | from 2 show ?case | |
| 406 | by (simp add: around_zero.simps[of "i + 1"]) | |
| 407 | qed | |
| 408 | ||
| 409 | instantiation int :: narrowing | |
| 410 | begin | |
| 411 | ||
| 412 | definition | |
| 413 | "narrowing_int d = (let (u :: _ => _ => unit) = conv; i = Quickcheck_Narrowing.int_of d in drawn_from (around_zero i))" | |
| 414 | ||
| 415 | instance .. | |
| 416 | ||
| 417 | end | |
| 418 | ||
| 419 | lemma [code, code del]: "partial_term_of (ty :: int itself) t == undefined" | |
| 420 | by (rule partial_term_of_anything)+ | |
| 421 | ||
| 422 | lemma [code]: | |
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changeset | 423 | "partial_term_of (ty :: int itself) (Narrowing_variable p t) == Code_Evaluation.Free (STR ''_'') (Typerep.Typerep (STR ''Int.int'') [])" | 
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changeset | 424 | "partial_term_of (ty :: int itself) (Narrowing_constructor i []) == (if i mod 2 = 0 then | 
| 43356 | 425 | Code_Evaluation.term_of (- (int_of i) div 2) else Code_Evaluation.term_of ((int_of i + 1) div 2))" | 
| 426 | by (rule partial_term_of_anything)+ | |
| 427 | ||
| 428 | text {* Defining integers by positive and negative copy of naturals *}
 | |
| 429 | (* | |
| 430 | datatype simple_int = Positive nat | Negative nat | |
| 431 | ||
| 432 | primrec int_of_simple_int :: "simple_int => int" | |
| 433 | where | |
| 434 | "int_of_simple_int (Positive n) = int n" | |
| 435 | | "int_of_simple_int (Negative n) = (-1 - int n)" | |
| 436 | ||
| 437 | instantiation int :: narrowing | |
| 438 | begin | |
| 439 | ||
| 440 | definition narrowing_int :: "code_int => int cons" | |
| 441 | where | |
| 442 | "narrowing_int d = map_cons int_of_simple_int ((narrowing :: simple_int narrowing) d)" | |
| 443 | ||
| 444 | instance .. | |
| 445 | ||
| 446 | end | |
| 447 | ||
| 448 | text {* printing the partial terms *}
 | |
| 449 | ||
| 450 | lemma [code]: | |
| 451 | "partial_term_of (ty :: int itself) t == Code_Evaluation.App (Code_Evaluation.Const (STR ''Quickcheck_Narrowing.int_of_simple_int'') | |
| 452 | (Typerep.Typerep (STR ''fun'') [Typerep.Typerep (STR ''Quickcheck_Narrowing.simple_int'') [], Typerep.Typerep (STR ''Int.int'') []])) (partial_term_of (TYPE(simple_int)) t)" | |
| 453 | by (rule partial_term_of_anything) | |
| 454 | ||
| 455 | *) | |
| 456 | ||
| 46589 | 457 | subsection {* The @{text find_unused_assms} command *}
 | 
| 458 | ||
| 459 | use "Tools/Quickcheck/find_unused_assms.ML" | |
| 460 | ||
| 461 | subsection {* Closing up *}
 | |
| 462 | ||
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changeset | 463 | hide_type code_int narrowing_type narrowing_term narrowing_cons property | 
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changeset | 464 | hide_const int_of of_int nat_of map_cons nth error toEnum marker empty Narrowing_cons conv non_empty ensure_testable all exists drawn_from around_zero | 
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changeset | 465 | hide_const (open) Narrowing_variable Narrowing_constructor "apply" sum cons | 
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changeset | 466 | hide_fact empty_def cons_def conv.simps non_empty.simps apply_def sum_def ensure_testable_def all_def exists_def | 
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changeset | 467 | |
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ensuring that some constants are generated in the source code by adding calls in ensure_testable
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changeset | 468 | end |