| author | wenzelm | 
| Sun, 02 Mar 2014 00:05:35 +0100 | |
| changeset 55831 | 3a9386b32211 | 
| parent 53015 | a1119cf551e8 | 
| child 56544 | b60d5d119489 | 
| permissions | -rw-r--r-- | 
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(* Author: Florian Haftmann, TU Muenchen *)  | 
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header {* Comparing growth of functions on natural numbers by a preorder relation *}
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6  | 
theory Function_Growth  | 
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imports Main Preorder Discrete  | 
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begin  | 
9  | 
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10  | 
subsection {* Motivation *}
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11  | 
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text {*
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13  | 
When comparing growth of functions in computer science, it is common to adhere  | 
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on Landau Symbols (``O-Notation''). However these come at the cost of notational  | 
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15  | 
  oddities, particularly writing @{text "f = O(g)"} for @{text "f \<in> O(g)"} etc.
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parents: 
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16  | 
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turned example into library for comparing growth of functions
 
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parents: 
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17  | 
Here we suggest a diffent way, following Hardy (G.~H.~Hardy and J.~E.~Littlewood,  | 
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31e786e0e6a7
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parents: 
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18  | 
Some problems of Diophantine approximation, Acta Mathematica 37 (1914), p.~225).  | 
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19  | 
  We establish a quasi order relation @{text "\<lesssim>"} on functions such that
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31e786e0e6a7
turned example into library for comparing growth of functions
 
haftmann 
parents: 
41413 
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20  | 
  @{text "f \<lesssim> g \<longleftrightarrow> f \<in> O(g)"}.  From a didactic point of view, this does not only
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31e786e0e6a7
turned example into library for comparing growth of functions
 
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parents: 
41413 
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21  | 
avoid the notational oddities mentioned above but also emphasizes the key insight  | 
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22  | 
of a growth hierachy of functions:  | 
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23  | 
  @{text "(\<lambda>n. 0) \<lesssim> (\<lambda>n. k) \<lesssim> Discrete.log \<lesssim> Discrete.sqrt \<lesssim> id \<lesssim> \<dots>"}.
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*}  | 
25  | 
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26  | 
subsection {* Model *}
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28  | 
text {*
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29  | 
  Our growth functions are of type @{text "\<nat> \<Rightarrow> \<nat>"}.  This is different
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30  | 
  to the usual conventions for Landau symbols for which @{text "\<real> \<Rightarrow> \<real>"}
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31  | 
  would be appropriate, but we argue that @{text "\<real> \<Rightarrow> \<real>"} is more
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32  | 
appropriate for analysis, whereas our setting is discrete.  | 
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33  | 
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34  | 
  Note that we also restrict the additional coefficients to @{text \<nat>}, something
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35  | 
we discuss at the particular definitions.  | 
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36  | 
*}  | 
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subsection {* The @{text "\<lesssim>"} relation *}
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40  | 
definition less_eq_fun :: "(nat \<Rightarrow> nat) \<Rightarrow> (nat \<Rightarrow> nat) \<Rightarrow> bool" (infix "\<lesssim>" 50)  | 
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31e786e0e6a7
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parents: 
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41  | 
where  | 
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31e786e0e6a7
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42  | 
"f \<lesssim> g \<longleftrightarrow> (\<exists>c>0. \<exists>n. \<forall>m>n. f m \<le> c * g m)"  | 
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turned example into library for comparing growth of functions
 
haftmann 
parents: 
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44  | 
text {*
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31e786e0e6a7
turned example into library for comparing growth of functions
 
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45  | 
  This yields @{text "f \<lesssim> g \<longleftrightarrow> f \<in> O(g)"}.  Note that @{text c} is restricted to
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31e786e0e6a7
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46  | 
  @{text \<nat>}.  This does not pose any problems since if @{text "f \<in> O(g)"} holds for
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47  | 
  a @{text "c \<in> \<real>"}, it also holds for @{text "\<lceil>c\<rceil> \<in> \<nat>"} by transitivity.
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31e786e0e6a7
turned example into library for comparing growth of functions
 
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parents: 
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48  | 
*}  | 
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31e786e0e6a7
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49  | 
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31e786e0e6a7
turned example into library for comparing growth of functions
 
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parents: 
41413 
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50  | 
lemma less_eq_funI [intro?]:  | 
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31e786e0e6a7
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parents: 
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51  | 
assumes "\<exists>c>0. \<exists>n. \<forall>m>n. f m \<le> c * g m"  | 
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shows "f \<lesssim> g"  | 
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unfolding less_eq_fun_def by (rule assms)  | 
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31e786e0e6a7
turned example into library for comparing growth of functions
 
haftmann 
parents: 
41413 
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changeset
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55  | 
lemma not_less_eq_funI:  | 
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31e786e0e6a7
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haftmann 
parents: 
41413 
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changeset
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56  | 
assumes "\<And>c n. c > 0 \<Longrightarrow> \<exists>m>n. c * g m < f m"  | 
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shows "\<not> f \<lesssim> g"  | 
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31e786e0e6a7
turned example into library for comparing growth of functions
 
haftmann 
parents: 
41413 
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58  | 
using assms unfolding less_eq_fun_def linorder_not_le [symmetric] by blast  | 
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31e786e0e6a7
turned example into library for comparing growth of functions
 
haftmann 
parents: 
41413 
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changeset
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60  | 
lemma less_eq_funE [elim?]:  | 
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assumes "f \<lesssim> g"  | 
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31e786e0e6a7
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parents: 
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62  | 
obtains n c where "c > 0" and "\<And>m. m > n \<Longrightarrow> f m \<le> c * g m"  | 
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using assms unfolding less_eq_fun_def by blast  | 
64  | 
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31e786e0e6a7
turned example into library for comparing growth of functions
 
haftmann 
parents: 
41413 
diff
changeset
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65  | 
lemma not_less_eq_funE:  | 
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31e786e0e6a7
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parents: 
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66  | 
assumes "\<not> f \<lesssim> g" and "c > 0"  | 
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31e786e0e6a7
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parents: 
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67  | 
obtains m where "m > n" and "c * g m < f m"  | 
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31e786e0e6a7
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parents: 
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68  | 
using assms unfolding less_eq_fun_def linorder_not_le [symmetric] by blast  | 
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subsection {* The @{text "\<approx>"} relation, the equivalence relation induced by @{text "\<lesssim>"} *}
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parents: 
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73  | 
definition equiv_fun :: "(nat \<Rightarrow> nat) \<Rightarrow> (nat \<Rightarrow> nat) \<Rightarrow> bool" (infix "\<cong>" 50)  | 
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parents: 
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74  | 
where  | 
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75  | 
"f \<cong> g \<longleftrightarrow>  | 
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a1119cf551e8
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wenzelm 
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changeset
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76  | 
(\<exists>c\<^sub>1>0. \<exists>c\<^sub>2>0. \<exists>n. \<forall>m>n. f m \<le> c\<^sub>1 * g m \<and> g m \<le> c\<^sub>2 * f m)"  | 
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51263
 
31e786e0e6a7
turned example into library for comparing growth of functions
 
haftmann 
parents: 
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78  | 
text {*
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a1119cf551e8
standardized symbols via "isabelle update_sub_sup", excluding src/Pure and src/Tools/WWW_Find;
 
wenzelm 
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79  | 
  This yields @{text "f \<cong> g \<longleftrightarrow> f \<in> \<Theta>(g)"}.  Concerning @{text "c\<^sub>1"} and @{text "c\<^sub>2"}
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turned example into library for comparing growth of functions
 
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parents: 
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80  | 
  restricted to @{typ nat}, see note above on @{text "(\<lesssim>)"}.
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31e786e0e6a7
turned example into library for comparing growth of functions
 
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parents: 
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81  | 
*}  | 
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82  | 
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83  | 
lemma equiv_funI [intro?]:  | 
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a1119cf551e8
standardized symbols via "isabelle update_sub_sup", excluding src/Pure and src/Tools/WWW_Find;
 
wenzelm 
parents: 
51542 
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changeset
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84  | 
assumes "\<exists>c\<^sub>1>0. \<exists>c\<^sub>2>0. \<exists>n. \<forall>m>n. f m \<le> c\<^sub>1 * g m \<and> g m \<le> c\<^sub>2 * f m"  | 
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shows "f \<cong> g"  | 
86  | 
unfolding equiv_fun_def by (rule assms)  | 
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88  | 
lemma not_equiv_funI:  | 
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a1119cf551e8
standardized symbols via "isabelle update_sub_sup", excluding src/Pure and src/Tools/WWW_Find;
 
wenzelm 
parents: 
51542 
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changeset
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89  | 
assumes "\<And>c\<^sub>1 c\<^sub>2 n. c\<^sub>1 > 0 \<Longrightarrow> c\<^sub>2 > 0 \<Longrightarrow>  | 
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a1119cf551e8
standardized symbols via "isabelle update_sub_sup", excluding src/Pure and src/Tools/WWW_Find;
 
wenzelm 
parents: 
51542 
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changeset
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90  | 
\<exists>m>n. c\<^sub>1 * f m < g m \<or> c\<^sub>2 * g m < f m"  | 
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shows "\<not> f \<cong> g"  | 
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parents: 
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92  | 
using assms unfolding equiv_fun_def linorder_not_le [symmetric] by blast  | 
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31e786e0e6a7
turned example into library for comparing growth of functions
 
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parents: 
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94  | 
lemma equiv_funE [elim?]:  | 
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assumes "f \<cong> g"  | 
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53015
 
a1119cf551e8
standardized symbols via "isabelle update_sub_sup", excluding src/Pure and src/Tools/WWW_Find;
 
wenzelm 
parents: 
51542 
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changeset
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96  | 
obtains n c\<^sub>1 c\<^sub>2 where "c\<^sub>1 > 0" and "c\<^sub>2 > 0"  | 
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a1119cf551e8
standardized symbols via "isabelle update_sub_sup", excluding src/Pure and src/Tools/WWW_Find;
 
wenzelm 
parents: 
51542 
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changeset
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97  | 
and "\<And>m. m > n \<Longrightarrow> f m \<le> c\<^sub>1 * g m \<and> g m \<le> c\<^sub>2 * f m"  | 
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using assms unfolding equiv_fun_def by blast  | 
99  | 
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31e786e0e6a7
turned example into library for comparing growth of functions
 
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parents: 
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100  | 
lemma not_equiv_funE:  | 
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53015
 
a1119cf551e8
standardized symbols via "isabelle update_sub_sup", excluding src/Pure and src/Tools/WWW_Find;
 
wenzelm 
parents: 
51542 
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changeset
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101  | 
fixes n c\<^sub>1 c\<^sub>2  | 
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a1119cf551e8
standardized symbols via "isabelle update_sub_sup", excluding src/Pure and src/Tools/WWW_Find;
 
wenzelm 
parents: 
51542 
diff
changeset
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102  | 
assumes "\<not> f \<cong> g" and "c\<^sub>1 > 0" and "c\<^sub>2 > 0"  | 
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turned example into library for comparing growth of functions
 
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parents: 
41413 
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103  | 
obtains m where "m > n"  | 
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53015
 
a1119cf551e8
standardized symbols via "isabelle update_sub_sup", excluding src/Pure and src/Tools/WWW_Find;
 
wenzelm 
parents: 
51542 
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changeset
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104  | 
and "c\<^sub>1 * f m < g m \<or> c\<^sub>2 * g m < f m"  | 
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parents: 
41413 
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105  | 
using assms unfolding equiv_fun_def linorder_not_le [symmetric] by blast  | 
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108  | 
subsection {* The @{text "\<prec>"} relation, the strict part of @{text "\<lesssim>"} *}
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110  | 
definition less_fun :: "(nat \<Rightarrow> nat) \<Rightarrow> (nat \<Rightarrow> nat) \<Rightarrow> bool" (infix "\<prec>" 50)  | 
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111  | 
where  | 
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"f \<prec> g \<longleftrightarrow> f \<lesssim> g \<and> \<not> g \<lesssim> f"  | 
113  | 
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114  | 
lemma less_funI:  | 
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115  | 
assumes "\<exists>c>0. \<exists>n. \<forall>m>n. f m \<le> c * g m"  | 
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116  | 
and "\<And>c n. c > 0 \<Longrightarrow> \<exists>m>n. c * f m < g m"  | 
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shows "f \<prec> g"  | 
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118  | 
using assms unfolding less_fun_def less_eq_fun_def linorder_not_less [symmetric] by blast  | 
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119  | 
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120  | 
lemma not_less_funI:  | 
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121  | 
assumes "\<And>c n. c > 0 \<Longrightarrow> \<exists>m>n. c * g m < f m"  | 
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122  | 
and "\<exists>c>0. \<exists>n. \<forall>m>n. g m \<le> c * f m"  | 
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123  | 
shows "\<not> f \<prec> g"  | 
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124  | 
using assms unfolding less_fun_def less_eq_fun_def linorder_not_less [symmetric] by blast  | 
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125  | 
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126  | 
lemma less_funE [elim?]:  | 
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127  | 
assumes "f \<prec> g"  | 
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128  | 
obtains n c where "c > 0" and "\<And>m. m > n \<Longrightarrow> f m \<le> c * g m"  | 
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129  | 
and "\<And>c n. c > 0 \<Longrightarrow> \<exists>m>n. c * f m < g m"  | 
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130  | 
proof -  | 
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131  | 
from assms have "f \<lesssim> g" and "\<not> g \<lesssim> f" by (simp_all add: less_fun_def)  | 
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132  | 
from `f \<lesssim> g` obtain n c where *:"c > 0" "\<And>m. m > n \<Longrightarrow> f m \<le> c * g m"  | 
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133  | 
by (rule less_eq_funE) blast  | 
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134  | 
  { fix c n :: nat
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135  | 
assume "c > 0"  | 
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136  | 
with `\<not> g \<lesssim> f` obtain m where "m > n" "c * f m < g m"  | 
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137  | 
by (rule not_less_eq_funE) blast  | 
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138  | 
then have **: "\<exists>m>n. c * f m < g m" by blast  | 
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139  | 
} note ** = this  | 
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140  | 
from * ** show thesis by (rule that)  | 
| 31381 | 141  | 
qed  | 
142  | 
||
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143  | 
lemma not_less_funE:  | 
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144  | 
assumes "\<not> f \<prec> g" and "c > 0"  | 
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145  | 
obtains m where "m > n" and "c * g m < f m"  | 
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146  | 
| d q where "\<And>m. d > 0 \<Longrightarrow> m > q \<Longrightarrow> g q \<le> d * f q"  | 
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147  | 
using assms unfolding less_fun_def linorder_not_less [symmetric] by blast  | 
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148  | 
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| 31381 | 149  | 
text {*
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150  | 
  I did not found a proof for @{text "f \<prec> g \<longleftrightarrow> f \<in> o(g)"}.  Maybe this only
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151  | 
  holds if @{text f} and/or @{text g} are of a certain class of functions.
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152  | 
  However @{text "f \<in> o(g) \<longrightarrow> f \<prec> g"} is provable, and this yields a
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153  | 
handy introduction rule.  | 
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154  | 
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  Note that D. Knuth ignores @{text o} altogether.  So what \dots
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156  | 
|
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157  | 
  Something still has to be said about the coefficient @{text c} in
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158  | 
  the definition of @{text "(\<prec>)"}.  In the typical definition of @{text o},
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159  | 
  it occurs on the \emph{right} hand side of the @{text "(>)"}.  The reason
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160  | 
  is that the situation is dual to the definition of @{text O}: the definition
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161  | 
  works since @{text c} may become arbitrary small.  Since this is not possible
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162  | 
  within @{term \<nat>}, we push the coefficient to the left hand side instead such
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163  | 
that it become arbitrary big instead.  | 
| 31381 | 164  | 
*}  | 
165  | 
||
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166  | 
lemma less_fun_strongI:  | 
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167  | 
assumes "\<And>c. c > 0 \<Longrightarrow> \<exists>n. \<forall>m>n. c * f m < g m"  | 
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168  | 
shows "f \<prec> g"  | 
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169  | 
proof (rule less_funI)  | 
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170  | 
have "1 > (0::nat)" by simp  | 
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171  | 
from assms `1 > 0` have "\<exists>n. \<forall>m>n. 1 * f m < g m" .  | 
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172  | 
then obtain n where *: "\<And>m. m > n \<Longrightarrow> 1 * f m < g m" by blast  | 
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173  | 
have "\<forall>m>n. f m \<le> 1 * g m"  | 
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174  | 
proof (rule allI, rule impI)  | 
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175  | 
fix m  | 
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176  | 
assume "m > n"  | 
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177  | 
with * have "1 * f m < g m" by simp  | 
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178  | 
then show "f m \<le> 1 * g m" by simp  | 
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179  | 
qed  | 
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180  | 
with `1 > 0` show "\<exists>c>0. \<exists>n. \<forall>m>n. f m \<le> c * g m" by blast  | 
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181  | 
fix c n :: nat  | 
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182  | 
assume "c > 0"  | 
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183  | 
with assms obtain q where "\<And>m. m > q \<Longrightarrow> c * f m < g m" by blast  | 
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184  | 
then have "c * f (Suc (q + n)) < g (Suc (q + n))" by simp  | 
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185  | 
moreover have "Suc (q + n) > n" by simp  | 
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186  | 
ultimately show "\<exists>m>n. c * f m < g m" by blast  | 
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187  | 
qed  | 
| 31381 | 188  | 
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189  | 
|
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190  | 
subsection {* @{text "\<lesssim>"} is a preorder *}
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191  | 
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192  | 
text {* This yields all lemmas relating @{text "\<lesssim>"}, @{text "\<prec>"} and @{text "\<cong>"}. *}
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| 31381 | 193  | 
|
194  | 
interpretation fun_order: preorder_equiv less_eq_fun less_fun  | 
|
195  | 
where "preorder_equiv.equiv less_eq_fun = equiv_fun"  | 
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196  | 
proof -  | 
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197  | 
interpret preorder: preorder_equiv less_eq_fun less_fun  | 
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198  | 
proof  | 
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199  | 
fix f g h  | 
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200  | 
show "f \<lesssim> f"  | 
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201  | 
proof  | 
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202  | 
have "\<exists>n. \<forall>m>n. f m \<le> 1 * f m" by auto  | 
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203  | 
then show "\<exists>c>0. \<exists>n. \<forall>m>n. f m \<le> c * f m" by blast  | 
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204  | 
qed  | 
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205  | 
show "f \<prec> g \<longleftrightarrow> f \<lesssim> g \<and> \<not> g \<lesssim> f"  | 
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206  | 
by (fact less_fun_def)  | 
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207  | 
assume "f \<lesssim> g" and "g \<lesssim> h"  | 
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208  | 
show "f \<lesssim> h"  | 
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209  | 
proof  | 
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210  | 
from `f \<lesssim> g` obtain n\<^sub>1 c\<^sub>1  | 
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211  | 
where "c\<^sub>1 > 0" and P\<^sub>1: "\<And>m. m > n\<^sub>1 \<Longrightarrow> f m \<le> c\<^sub>1 * g m"  | 
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212  | 
by rule blast  | 
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213  | 
from `g \<lesssim> h` obtain n\<^sub>2 c\<^sub>2  | 
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214  | 
where "c\<^sub>2 > 0" and P\<^sub>2: "\<And>m. m > n\<^sub>2 \<Longrightarrow> g m \<le> c\<^sub>2 * h m"  | 
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215  | 
by rule blast  | 
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216  | 
have "\<forall>m>max n\<^sub>1 n\<^sub>2. f m \<le> (c\<^sub>1 * c\<^sub>2) * h m"  | 
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217  | 
proof (rule allI, rule impI)  | 
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218  | 
fix m  | 
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219  | 
assume Q: "m > max n\<^sub>1 n\<^sub>2"  | 
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220  | 
from P\<^sub>1 Q have *: "f m \<le> c\<^sub>1 * g m" by simp  | 
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221  | 
from P\<^sub>2 Q have "g m \<le> c\<^sub>2 * h m" by simp  | 
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222  | 
with `c\<^sub>1 > 0` have "c\<^sub>1 * g m \<le> (c\<^sub>1 * c\<^sub>2) * h m" by simp  | 
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223  | 
with * show "f m \<le> (c\<^sub>1 * c\<^sub>2) * h m" by (rule order_trans)  | 
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224  | 
qed  | 
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225  | 
then have "\<exists>n. \<forall>m>n. f m \<le> (c\<^sub>1 * c\<^sub>2) * h m" by rule  | 
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226  | 
moreover from `c\<^sub>1 > 0` `c\<^sub>2 > 0` have "c\<^sub>1 * c\<^sub>2 > 0" by (rule mult_pos_pos)  | 
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227  | 
ultimately show "\<exists>c>0. \<exists>n. \<forall>m>n. f m \<le> c * h m" by blast  | 
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228  | 
qed  | 
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229  | 
qed  | 
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230  | 
from preorder.preorder_equiv_axioms show "class.preorder_equiv less_eq_fun less_fun" .  | 
| 31381 | 231  | 
show "preorder_equiv.equiv less_eq_fun = equiv_fun"  | 
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232  | 
proof (rule ext, rule ext, unfold preorder.equiv_def)  | 
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233  | 
fix f g  | 
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234  | 
show "f \<lesssim> g \<and> g \<lesssim> f \<longleftrightarrow> f \<cong> g"  | 
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235  | 
proof  | 
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236  | 
assume "f \<cong> g"  | 
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237  | 
then obtain n c\<^sub>1 c\<^sub>2 where "c\<^sub>1 > 0" and "c\<^sub>2 > 0"  | 
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238  | 
and *: "\<And>m. m > n \<Longrightarrow> f m \<le> c\<^sub>1 * g m \<and> g m \<le> c\<^sub>2 * f m"  | 
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239  | 
by rule blast  | 
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240  | 
have "\<forall>m>n. f m \<le> c\<^sub>1 * g m"  | 
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241  | 
proof (rule allI, rule impI)  | 
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242  | 
fix m  | 
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243  | 
assume "m > n"  | 
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244  | 
with * show "f m \<le> c\<^sub>1 * g m" by simp  | 
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245  | 
qed  | 
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246  | 
with `c\<^sub>1 > 0` have "\<exists>c>0. \<exists>n. \<forall>m>n. f m \<le> c * g m" by blast  | 
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247  | 
then have "f \<lesssim> g" ..  | 
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248  | 
have "\<forall>m>n. g m \<le> c\<^sub>2 * f m"  | 
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249  | 
proof (rule allI, rule impI)  | 
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250  | 
fix m  | 
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251  | 
assume "m > n"  | 
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252  | 
with * show "g m \<le> c\<^sub>2 * f m" by simp  | 
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253  | 
qed  | 
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254  | 
with `c\<^sub>2 > 0` have "\<exists>c>0. \<exists>n. \<forall>m>n. g m \<le> c * f m" by blast  | 
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255  | 
then have "g \<lesssim> f" ..  | 
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256  | 
from `f \<lesssim> g` and `g \<lesssim> f` show "f \<lesssim> g \<and> g \<lesssim> f" ..  | 
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257  | 
next  | 
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258  | 
assume "f \<lesssim> g \<and> g \<lesssim> f"  | 
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259  | 
then have "f \<lesssim> g" and "g \<lesssim> f" by auto  | 
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260  | 
from `f \<lesssim> g` obtain n\<^sub>1 c\<^sub>1 where "c\<^sub>1 > 0"  | 
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261  | 
and P\<^sub>1: "\<And>m. m > n\<^sub>1 \<Longrightarrow> f m \<le> c\<^sub>1 * g m" by rule blast  | 
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262  | 
from `g \<lesssim> f` obtain n\<^sub>2 c\<^sub>2 where "c\<^sub>2 > 0"  | 
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263  | 
and P\<^sub>2: "\<And>m. m > n\<^sub>2 \<Longrightarrow> g m \<le> c\<^sub>2 * f m" by rule blast  | 
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264  | 
have "\<forall>m>max n\<^sub>1 n\<^sub>2. f m \<le> c\<^sub>1 * g m \<and> g m \<le> c\<^sub>2 * f m"  | 
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265  | 
proof (rule allI, rule impI)  | 
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266  | 
fix m  | 
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267  | 
assume Q: "m > max n\<^sub>1 n\<^sub>2"  | 
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268  | 
from P\<^sub>1 Q have "f m \<le> c\<^sub>1 * g m" by simp  | 
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269  | 
moreover from P\<^sub>2 Q have "g m \<le> c\<^sub>2 * f m" by simp  | 
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270  | 
ultimately show "f m \<le> c\<^sub>1 * g m \<and> g m \<le> c\<^sub>2 * f m" ..  | 
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271  | 
qed  | 
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272  | 
with `c\<^sub>1 > 0` `c\<^sub>2 > 0` have "\<exists>c\<^sub>1>0. \<exists>c\<^sub>2>0. \<exists>n.  | 
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273  | 
\<forall>m>n. f m \<le> c\<^sub>1 * g m \<and> g m \<le> c\<^sub>2 * f m" by blast  | 
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274  | 
then show "f \<cong> g" ..  | 
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275  | 
qed  | 
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276  | 
qed  | 
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qed  | 
278  | 
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279  | 
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280  | 
subsection {* Simple examples *}
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281  | 
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282  | 
text {*
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283  | 
Most of these are left as constructive exercises for the reader. Note that additional  | 
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284  | 
preconditions to the functions may be necessary. The list here is by no means to be  | 
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285  | 
intended as complete contruction set for typical functions, here surely something  | 
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286  | 
has to be added yet.  | 
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287  | 
*}  | 
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288  | 
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289  | 
text {* @{prop "(\<lambda>n. f n + k) \<cong> f"} *}
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290  | 
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291  | 
text {* @{prop "(\<lambda>n. Suc k * f n) \<cong> f"} *}
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292  | 
|
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293  | 
lemma "f \<lesssim> (\<lambda>n. f n + g n)"  | 
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by rule auto  | 
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295  | 
|
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296  | 
lemma "(\<lambda>_. 0) \<prec> (\<lambda>n. Suc k)"  | 
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by (rule less_fun_strongI) auto  | 
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298  | 
|
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299  | 
lemma "(\<lambda>_. k) \<prec> Discrete.log"  | 
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300  | 
proof (rule less_fun_strongI)  | 
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301  | 
fix c :: nat  | 
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302  | 
have "\<forall>m>2 ^ (Suc (c * k)). c * k < Discrete.log m"  | 
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303  | 
proof (rule allI, rule impI)  | 
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304  | 
fix m :: nat  | 
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305  | 
assume "2 ^ Suc (c * k) < m"  | 
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306  | 
then have "2 ^ Suc (c * k) \<le> m" by simp  | 
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307  | 
with log_mono have "Discrete.log (2 ^ (Suc (c * k))) \<le> Discrete.log m"  | 
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308  | 
by (blast dest: monoD)  | 
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309  | 
moreover have "c * k < Discrete.log (2 ^ (Suc (c * k)))" by simp  | 
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310  | 
ultimately show "c * k < Discrete.log m" by auto  | 
| 31381 | 311  | 
qed  | 
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312  | 
then show "\<exists>n. \<forall>m>n. c * k < Discrete.log m" ..  | 
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313  | 
qed  | 
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314  | 
|
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315  | 
text {* @{prop "Discrete.log \<prec> Discrete.sqrt"} *}
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316  | 
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317  | 
lemma "Discrete.sqrt \<prec> id"  | 
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318  | 
proof (rule less_fun_strongI)  | 
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319  | 
fix c :: nat  | 
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320  | 
assume "0 < c"  | 
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321  | 
have "\<forall>m>(Suc c)\<^sup>2. c * Discrete.sqrt m < id m"  | 
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322  | 
proof (rule allI, rule impI)  | 
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323  | 
fix m  | 
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324  | 
assume "(Suc c)\<^sup>2 < m"  | 
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325  | 
then have "(Suc c)\<^sup>2 \<le> m" by simp  | 
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326  | 
with mono_sqrt have "Discrete.sqrt ((Suc c)\<^sup>2) \<le> Discrete.sqrt m" by (rule monoE)  | 
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327  | 
then have "Suc c \<le> Discrete.sqrt m" by simp  | 
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328  | 
then have "c < Discrete.sqrt m" by simp  | 
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329  | 
moreover from `(Suc c)\<^sup>2 < m` have "Discrete.sqrt m > 0" by simp  | 
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330  | 
ultimately have "c * Discrete.sqrt m < Discrete.sqrt m * Discrete.sqrt m" by simp  | 
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331  | 
also have "\<dots> \<le> m" by (simp add: power2_eq_square [symmetric])  | 
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332  | 
finally show "c * Discrete.sqrt m < id m" by simp  | 
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333  | 
qed  | 
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334  | 
then show "\<exists>n. \<forall>m>n. c * Discrete.sqrt m < id m" ..  | 
| 31381 | 335  | 
qed  | 
336  | 
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337  | 
lemma "id \<prec> (\<lambda>n. n\<^sup>2)"  | 
| 51264 | 338  | 
by (rule less_fun_strongI) (auto simp add: power2_eq_square)  | 
| 31381 | 339  | 
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340  | 
lemma "(\<lambda>n. n ^ k) \<prec> (\<lambda>n. n ^ Suc k)"  | 
| 51264 | 341  | 
by (rule less_fun_strongI) auto  | 
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342  | 
|
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343  | 
text {* @{prop "(\<lambda>n. n ^ k) \<prec> (\<lambda>n. 2 ^ n)"} *}
 | 
| 31381 | 344  | 
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345  | 
end  | 
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346  |