| author | wenzelm | 
| Sat, 09 Jan 2010 16:31:19 +0100 | |
| changeset 34296 | 5f454603228b | 
| parent 34228 | bc0cea4cae52 | 
| child 36521 | 73ed9f18fdd3 | 
| permissions | -rw-r--r-- | 
| 20324 | 1  | 
(* Title: HOL/FunDef.thy  | 
2  | 
Author: Alexander Krauss, TU Muenchen  | 
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| 22816 | 3  | 
*)  | 
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5  | 
header {* Function Definitions and Termination Proofs *}
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7  | 
theory FunDef  | 
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8  | 
imports Wellfounded  | 
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uses  | 
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10  | 
"Tools/prop_logic.ML"  | 
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"Tools/sat_solver.ML"  | 
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  ("Tools/Function/function_lib.ML")
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  ("Tools/Function/function_common.ML")
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  ("Tools/Function/context_tree.ML")
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  ("Tools/Function/function_core.ML")
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  ("Tools/Function/sum_tree.ML")
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  ("Tools/Function/mutual.ML")
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  ("Tools/Function/pattern_split.ML")
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  ("Tools/Function/function.ML")
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  ("Tools/Function/relation.ML")
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  ("Tools/Function/measure_functions.ML")
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22  | 
  ("Tools/Function/lexicographic_order.ML")
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  ("Tools/Function/pat_completeness.ML")
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  ("Tools/Function/fun.ML")
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  ("Tools/Function/induction_schema.ML")
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  ("Tools/Function/termination.ML")
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27  | 
  ("Tools/Function/scnp_solve.ML")
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28  | 
  ("Tools/Function/scnp_reconstruct.ML")
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29  | 
begin  | 
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First usable version of the new function definition package (HOL/function_packake/...).
 
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30  | 
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31  | 
subsection {* Definitions with default value. *}
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32  | 
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33  | 
definition  | 
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34  | 
  THE_default :: "'a \<Rightarrow> ('a \<Rightarrow> bool) \<Rightarrow> 'a" where
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35  | 
"THE_default d P = (if (\<exists>!x. P x) then (THE x. P x) else d)"  | 
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36  | 
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37  | 
lemma THE_defaultI': "\<exists>!x. P x \<Longrightarrow> P (THE_default d P)"  | 
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by (simp add: theI' THE_default_def)  | 
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39  | 
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lemma THE_default1_equality:  | 
41  | 
"\<lbrakk>\<exists>!x. P x; P a\<rbrakk> \<Longrightarrow> THE_default d P = a"  | 
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42  | 
by (simp add: the1_equality THE_default_def)  | 
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43  | 
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44  | 
lemma THE_default_none:  | 
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"\<not>(\<exists>!x. P x) \<Longrightarrow> THE_default d P = d"  | 
46  | 
by (simp add:THE_default_def)  | 
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47  | 
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48  | 
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First usable version of the new function definition package (HOL/function_packake/...).
 
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49  | 
lemma fundef_ex1_existence:  | 
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assumes f_def: "f == (\<lambda>x::'a. THE_default (d x) (\<lambda>y. G x y))"  | 
51  | 
assumes ex1: "\<exists>!y. G x y"  | 
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52  | 
shows "G x (f x)"  | 
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53  | 
apply (simp only: f_def)  | 
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54  | 
apply (rule THE_defaultI')  | 
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55  | 
apply (rule ex1)  | 
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56  | 
done  | 
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57  | 
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58  | 
lemma fundef_ex1_uniqueness:  | 
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assumes f_def: "f == (\<lambda>x::'a. THE_default (d x) (\<lambda>y. G x y))"  | 
60  | 
assumes ex1: "\<exists>!y. G x y"  | 
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61  | 
assumes elm: "G x (h x)"  | 
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62  | 
shows "h x = f x"  | 
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63  | 
apply (simp only: f_def)  | 
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64  | 
apply (rule THE_default1_equality [symmetric])  | 
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apply (rule ex1)  | 
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66  | 
apply (rule elm)  | 
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67  | 
done  | 
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19564
 
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First usable version of the new function definition package (HOL/function_packake/...).
 
krauss 
parents:  
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68  | 
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First usable version of the new function definition package (HOL/function_packake/...).
 
krauss 
parents:  
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69  | 
lemma fundef_ex1_iff:  | 
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assumes f_def: "f == (\<lambda>x::'a. THE_default (d x) (\<lambda>y. G x y))"  | 
71  | 
assumes ex1: "\<exists>!y. G x y"  | 
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72  | 
shows "(G x y) = (f x = y)"  | 
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parents: 
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73  | 
apply (auto simp:ex1 f_def THE_default1_equality)  | 
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apply (rule THE_defaultI')  | 
75  | 
apply (rule ex1)  | 
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76  | 
done  | 
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First usable version of the new function definition package (HOL/function_packake/...).
 
krauss 
parents:  
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77  | 
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78  | 
lemma fundef_default_value:  | 
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assumes f_def: "f == (\<lambda>x::'a. THE_default (d x) (\<lambda>y. G x y))"  | 
80  | 
assumes graph: "\<And>x y. G x y \<Longrightarrow> D x"  | 
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81  | 
assumes "\<not> D x"  | 
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82  | 
shows "f x = d x"  | 
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83  | 
proof -  | 
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84  | 
have "\<not>(\<exists>y. G x y)"  | 
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85  | 
proof  | 
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Lemma "fundef_default_value" uses predicate instead of set.
 
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86  | 
assume "\<exists>y. G x y"  | 
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Lemma "fundef_default_value" uses predicate instead of set.
 
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87  | 
hence "D x" using graph ..  | 
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88  | 
with `\<not> D x` show False ..  | 
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89  | 
qed  | 
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90  | 
hence "\<not>(\<exists>!y. G x y)" by blast  | 
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92  | 
thus ?thesis  | 
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93  | 
unfolding f_def  | 
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94  | 
by (rule THE_default_none)  | 
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95  | 
qed  | 
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96  | 
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97  | 
definition in_rel_def[simp]:  | 
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98  | 
"in_rel R x y == (x, y) \<in> R"  | 
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99  | 
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100  | 
lemma wf_in_rel:  | 
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101  | 
"wf R \<Longrightarrow> wfP (in_rel R)"  | 
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102  | 
by (simp add: wfP_def)  | 
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103  | 
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104  | 
use "Tools/Function/function_lib.ML"  | 
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105  | 
use "Tools/Function/function_common.ML"  | 
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use "Tools/Function/context_tree.ML"  | 
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107  | 
use "Tools/Function/function_core.ML"  | 
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use "Tools/Function/sum_tree.ML"  | 
109  | 
use "Tools/Function/mutual.ML"  | 
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110  | 
use "Tools/Function/pattern_split.ML"  | 
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use "Tools/Function/relation.ML"  | 
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112  | 
use "Tools/Function/function.ML"  | 
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use "Tools/Function/pat_completeness.ML"  | 
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use "Tools/Function/fun.ML"  | 
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use "Tools/Function/induction_schema.ML"  | 
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116  | 
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experimental version of automated induction scheme generator (cf. HOL/ex/Induction_Scheme.thy)
 
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117  | 
setup {* 
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118  | 
Function.setup  | 
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#> Pat_Completeness.setup  | 
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#> Function_Fun.setup  | 
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#> Induction_Schema.setup  | 
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122  | 
*}  | 
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123  | 
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124  | 
subsection {* Measure Functions *}
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125  | 
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126  | 
inductive is_measure :: "('a \<Rightarrow> nat) \<Rightarrow> bool"
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127  | 
where is_measure_trivial: "is_measure f"  | 
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128  | 
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use "Tools/Function/measure_functions.ML"  | 
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130  | 
setup MeasureFunctions.setup  | 
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131  | 
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132  | 
lemma measure_size[measure_function]: "is_measure size"  | 
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133  | 
by (rule is_measure_trivial)  | 
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134  | 
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135  | 
lemma measure_fst[measure_function]: "is_measure f \<Longrightarrow> is_measure (\<lambda>p. f (fst p))"  | 
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136  | 
by (rule is_measure_trivial)  | 
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137  | 
lemma measure_snd[measure_function]: "is_measure f \<Longrightarrow> is_measure (\<lambda>p. f (snd p))"  | 
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138  | 
by (rule is_measure_trivial)  | 
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139  | 
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use "Tools/Function/lexicographic_order.ML"  | 
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141  | 
setup Lexicographic_Order.setup  | 
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142  | 
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143  | 
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144  | 
subsection {* Congruence Rules *}
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145  | 
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lemma let_cong [fundef_cong]:  | 
147  | 
"M = N \<Longrightarrow> (\<And>x. x = N \<Longrightarrow> f x = g x) \<Longrightarrow> Let M f = Let N g"  | 
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unfolding Let_def by blast  | 
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149  | 
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| 22816 | 150  | 
lemmas [fundef_cong] =  | 
| 22838 | 151  | 
if_cong image_cong INT_cong UN_cong  | 
152  | 
bex_cong ball_cong imp_cong  | 
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153  | 
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lemma split_cong [fundef_cong]:  | 
| 22838 | 155  | 
"(\<And>x y. (x, y) = q \<Longrightarrow> f x y = g x y) \<Longrightarrow> p = q  | 
| 22816 | 156  | 
\<Longrightarrow> split f p = split g q"  | 
157  | 
by (auto simp: split_def)  | 
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| 19934 | 158  | 
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lemma comp_cong [fundef_cong]:  | 
| 22838 | 160  | 
"f (g x) = f' (g' x') \<Longrightarrow> (f o g) x = (f' o g') x'"  | 
| 22816 | 161  | 
unfolding o_apply .  | 
| 19934 | 162  | 
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163  | 
subsection {* Simp rules for termination proofs *}
 | 
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164  | 
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165  | 
lemma termination_basic_simps[termination_simp]:  | 
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166  | 
"x < (y::nat) \<Longrightarrow> x < y + z"  | 
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167  | 
"x < z \<Longrightarrow> x < y + z"  | 
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"x \<le> y \<Longrightarrow> x \<le> y + (z::nat)"  | 
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"x \<le> z \<Longrightarrow> x \<le> y + (z::nat)"  | 
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"x < y \<Longrightarrow> x \<le> (y::nat)"  | 
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171  | 
by arith+  | 
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172  | 
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declare le_imp_less_Suc[termination_simp]  | 
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174  | 
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175  | 
lemma prod_size_simp[termination_simp]:  | 
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176  | 
"prod_size f g p = f (fst p) + g (snd p) + Suc 0"  | 
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177  | 
by (induct p) auto  | 
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178  | 
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179  | 
subsection {* Decomposition *}
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180  | 
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181  | 
lemma less_by_empty:  | 
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182  | 
  "A = {} \<Longrightarrow> A \<subseteq> B"
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183  | 
and union_comp_emptyL:  | 
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184  | 
  "\<lbrakk> A O C = {}; B O C = {} \<rbrakk> \<Longrightarrow> (A \<union> B) O C = {}"
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185  | 
and union_comp_emptyR:  | 
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186  | 
  "\<lbrakk> A O B = {}; A O C = {} \<rbrakk> \<Longrightarrow> A O (B \<union> C) = {}"
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187  | 
and wf_no_loop:  | 
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188  | 
  "R O R = {} \<Longrightarrow> wf R"
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189  | 
by (auto simp add: wf_comp_self[of R])  | 
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190  | 
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191  | 
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192  | 
subsection {* Reduction Pairs *}
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193  | 
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194  | 
definition  | 
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195  | 
"reduction_pair P = (wf (fst P) \<and> fst P O snd P \<subseteq> fst P)"  | 
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196  | 
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197  | 
lemma reduction_pairI[intro]: "wf R \<Longrightarrow> R O S \<subseteq> R \<Longrightarrow> reduction_pair (R, S)"  | 
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198  | 
unfolding reduction_pair_def by auto  | 
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199  | 
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200  | 
lemma reduction_pair_lemma:  | 
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201  | 
assumes rp: "reduction_pair P"  | 
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202  | 
assumes "R \<subseteq> fst P"  | 
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203  | 
assumes "S \<subseteq> snd P"  | 
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204  | 
assumes "wf S"  | 
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205  | 
shows "wf (R \<union> S)"  | 
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206  | 
proof -  | 
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207  | 
from rp `S \<subseteq> snd P` have "wf (fst P)" "fst P O S \<subseteq> fst P"  | 
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208  | 
unfolding reduction_pair_def by auto  | 
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209  | 
with `wf S` have "wf (fst P \<union> S)"  | 
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210  | 
by (auto intro: wf_union_compatible)  | 
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211  | 
moreover from `R \<subseteq> fst P` have "R \<union> S \<subseteq> fst P \<union> S" by auto  | 
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212  | 
ultimately show ?thesis by (rule wf_subset)  | 
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213  | 
qed  | 
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214  | 
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215  | 
definition  | 
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216  | 
"rp_inv_image = (\<lambda>(R,S) f. (inv_image R f, inv_image S f))"  | 
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217  | 
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218  | 
lemma rp_inv_image_rp:  | 
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219  | 
"reduction_pair P \<Longrightarrow> reduction_pair (rp_inv_image P f)"  | 
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220  | 
unfolding reduction_pair_def rp_inv_image_def split_def  | 
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221  | 
by force  | 
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222  | 
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223  | 
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224  | 
subsection {* Concrete orders for SCNP termination proofs *}
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225  | 
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226  | 
definition "pair_less = less_than <*lex*> less_than"  | 
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definition [code del]: "pair_leq = pair_less^="  | 
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228  | 
definition "max_strict = max_ext pair_less"  | 
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definition [code del]: "max_weak = max_ext pair_leq \<union> {({}, {})}"
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230  | 
definition [code del]: "min_strict = min_ext pair_less"  | 
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definition [code del]: "min_weak = min_ext pair_leq \<union> {({}, {})}"
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232  | 
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233  | 
lemma wf_pair_less[simp]: "wf pair_less"  | 
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234  | 
by (auto simp: pair_less_def)  | 
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235  | 
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text {* Introduction rules for @{text pair_less}/@{text pair_leq} *}
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237  | 
lemma pair_leqI1: "a < b \<Longrightarrow> ((a, s), (b, t)) \<in> pair_leq"  | 
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238  | 
and pair_leqI2: "a \<le> b \<Longrightarrow> s \<le> t \<Longrightarrow> ((a, s), (b, t)) \<in> pair_leq"  | 
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239  | 
and pair_lessI1: "a < b \<Longrightarrow> ((a, s), (b, t)) \<in> pair_less"  | 
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240  | 
and pair_lessI2: "a \<le> b \<Longrightarrow> s < t \<Longrightarrow> ((a, s), (b, t)) \<in> pair_less"  | 
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241  | 
unfolding pair_leq_def pair_less_def by auto  | 
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242  | 
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243  | 
text {* Introduction rules for max *}
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244  | 
lemma smax_emptyI:  | 
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245  | 
  "finite Y \<Longrightarrow> Y \<noteq> {} \<Longrightarrow> ({}, Y) \<in> max_strict" 
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246  | 
and smax_insertI:  | 
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247  | 
"\<lbrakk>y \<in> Y; (x, y) \<in> pair_less; (X, Y) \<in> max_strict\<rbrakk> \<Longrightarrow> (insert x X, Y) \<in> max_strict"  | 
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248  | 
and wmax_emptyI:  | 
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249  | 
  "finite X \<Longrightarrow> ({}, X) \<in> max_weak" 
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250  | 
and wmax_insertI:  | 
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251  | 
"\<lbrakk>y \<in> YS; (x, y) \<in> pair_leq; (XS, YS) \<in> max_weak\<rbrakk> \<Longrightarrow> (insert x XS, YS) \<in> max_weak"  | 
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252  | 
unfolding max_strict_def max_weak_def by (auto elim!: max_ext.cases)  | 
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253  | 
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254  | 
text {* Introduction rules for min *}
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255  | 
lemma smin_emptyI:  | 
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256  | 
  "X \<noteq> {} \<Longrightarrow> (X, {}) \<in> min_strict" 
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257  | 
and smin_insertI:  | 
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258  | 
"\<lbrakk>x \<in> XS; (x, y) \<in> pair_less; (XS, YS) \<in> min_strict\<rbrakk> \<Longrightarrow> (XS, insert y YS) \<in> min_strict"  | 
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259  | 
and wmin_emptyI:  | 
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260  | 
  "(X, {}) \<in> min_weak" 
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261  | 
and wmin_insertI:  | 
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262  | 
"\<lbrakk>x \<in> XS; (x, y) \<in> pair_leq; (XS, YS) \<in> min_weak\<rbrakk> \<Longrightarrow> (XS, insert y YS) \<in> min_weak"  | 
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263  | 
by (auto simp: min_strict_def min_weak_def min_ext_def)  | 
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264  | 
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265  | 
text {* Reduction Pairs *}
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266  | 
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267  | 
lemma max_ext_compat:  | 
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268  | 
assumes "R O S \<subseteq> R"  | 
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269  | 
  shows "max_ext R O (max_ext S \<union> {({},{})}) \<subseteq> max_ext R"
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270  | 
using assms  | 
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271  | 
apply auto  | 
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272  | 
apply (elim max_ext.cases)  | 
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273  | 
apply rule  | 
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274  | 
apply auto[3]  | 
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275  | 
apply (drule_tac x=xa in meta_spec)  | 
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276  | 
apply simp  | 
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277  | 
apply (erule bexE)  | 
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278  | 
apply (drule_tac x=xb in meta_spec)  | 
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279  | 
by auto  | 
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280  | 
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281  | 
lemma max_rpair_set: "reduction_pair (max_strict, max_weak)"  | 
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282  | 
unfolding max_strict_def max_weak_def  | 
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283  | 
apply (intro reduction_pairI max_ext_wf)  | 
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284  | 
apply simp  | 
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285  | 
apply (rule max_ext_compat)  | 
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286  | 
by (auto simp: pair_less_def pair_leq_def)  | 
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287  | 
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288  | 
lemma min_ext_compat:  | 
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289  | 
assumes "R O S \<subseteq> R"  | 
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290  | 
  shows "min_ext R O  (min_ext S \<union> {({},{})}) \<subseteq> min_ext R"
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291  | 
using assms  | 
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292  | 
apply (auto simp: min_ext_def)  | 
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293  | 
apply (drule_tac x=ya in bspec, assumption)  | 
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294  | 
apply (erule bexE)  | 
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295  | 
apply (drule_tac x=xc in bspec)  | 
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296  | 
apply assumption  | 
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297  | 
by auto  | 
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298  | 
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299  | 
lemma min_rpair_set: "reduction_pair (min_strict, min_weak)"  | 
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300  | 
unfolding min_strict_def min_weak_def  | 
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301  | 
apply (intro reduction_pairI min_ext_wf)  | 
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302  | 
apply simp  | 
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303  | 
apply (rule min_ext_compat)  | 
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304  | 
by (auto simp: pair_less_def pair_leq_def)  | 
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305  | 
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306  | 
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307  | 
subsection {* Tool setup *}
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308  | 
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use "Tools/Function/termination.ML"  | 
310  | 
use "Tools/Function/scnp_solve.ML"  | 
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311  | 
use "Tools/Function/scnp_reconstruct.ML"  | 
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312  | 
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313  | 
setup {* ScnpReconstruct.setup *}
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| 30480 | 314  | 
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315  | 
ML_val -- "setup inactive"  | 
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316  | 
{*
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317  | 
Context.theory_map (Function_Common.set_termination_prover (ScnpReconstruct.decomp_scnp  | 
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318  | 
[ScnpSolve.MAX, ScnpSolve.MIN, ScnpSolve.MS]))  | 
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319  | 
*}  | 
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320  | 
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321  | 
end  |