| author | wenzelm | 
| Sun, 30 Aug 2015 17:34:29 +0200 | |
| changeset 61054 | add998b3c597 | 
| parent 58880 | 0baae4311a9f | 
| child 62175 | 8ffc4d0e652d | 
| permissions | -rw-r--r-- | 
| 42151 | 1  | 
(* Title: HOL/HOLCF/Tutorial/Domain_ex.thy  | 
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2  | 
Author: Brian Huffman  | 
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*)  | 
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section {* Domain package examples *}
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theory Domain_ex  | 
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imports HOLCF  | 
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begin  | 
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text {* Domain constructors are strict by default. *}
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domain d1 = d1a | d1b "d1" "d1"  | 
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lemma "d1b\<cdot>\<bottom>\<cdot>y = \<bottom>" by simp  | 
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text {* Constructors can be made lazy using the @{text "lazy"} keyword. *}
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domain d2 = d2a | d2b (lazy "d2")  | 
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lemma "d2b\<cdot>x \<noteq> \<bottom>" by simp  | 
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text {* Strict and lazy arguments may be mixed arbitrarily. *}
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domain d3 = d3a | d3b (lazy "d2") "d2"  | 
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lemma "P (d3b\<cdot>x\<cdot>y = \<bottom>) \<longleftrightarrow> P (y = \<bottom>)" by simp  | 
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text {* Selectors can be used with strict or lazy constructor arguments. *}
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domain d4 = d4a | d4b (lazy d4b_left :: "d2") (d4b_right :: "d2")  | 
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lemma "y \<noteq> \<bottom> \<Longrightarrow> d4b_left\<cdot>(d4b\<cdot>x\<cdot>y) = x" by simp  | 
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text {* Mixfix declarations can be given for data constructors. *}
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domain d5 = d5a | d5b (lazy "d5") "d5" (infixl ":#:" 70)  | 
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lemma "d5a \<noteq> x :#: y :#: z" by simp  | 
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text {* Mixfix declarations can also be given for type constructors. *}
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domain ('a, 'b) lazypair (infixl ":*:" 25) =
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lpair (lazy lfst :: 'a) (lazy lsnd :: 'b) (infixl ":*:" 75)  | 
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lemma "\<forall>p::('a :*: 'b). p \<sqsubseteq> lfst\<cdot>p :*: lsnd\<cdot>p"
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by (rule allI, case_tac p, simp_all)  | 
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text {* Non-recursive constructor arguments can have arbitrary types. *}
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domain ('a, 'b) d6 = d6 "int lift" "'a \<oplus> 'b u" (lazy "('a :*: 'b) \<times> ('b \<rightarrow> 'a)")
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text {*
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Indirect recusion is allowed for sums, products, lifting, and the  | 
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continuous function space. However, the domain package does not  | 
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generate an induction rule in terms of the constructors.  | 
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*}  | 
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domain 'a d7 = d7a "'a d7 \<oplus> int lift" | d7b "'a \<otimes> 'a d7" | d7c (lazy "'a d7 \<rightarrow> 'a")  | 
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-- "Indirect recursion detected, skipping proofs of (co)induction rules"  | 
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text {* Note that @{text d7.induct} is absent. *}
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text {*
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Indirect recursion is also allowed using previously-defined datatypes.  | 
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*}  | 
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domain 'a slist = SNil | SCons 'a "'a slist"  | 
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domain 'a stree = STip | SBranch "'a stree slist"  | 
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text {* Mutually-recursive datatypes can be defined using the @{text "and"} keyword. *}
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domain d8 = d8a | d8b "d9" and d9 = d9a | d9b (lazy "d8")  | 
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text {* Non-regular recursion is not allowed. *}
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(*  | 
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domain ('a, 'b) altlist = ANil | ACons 'a "('b, 'a) altlist"
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-- "illegal direct recursion with different arguments"  | 
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domain 'a nest = Nest1 'a | Nest2 "'a nest nest"  | 
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-- "illegal direct recursion with different arguments"  | 
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82  | 
*)  | 
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text {*
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Mutually-recursive datatypes must have all the same type arguments,  | 
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not necessarily in the same order.  | 
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*}  | 
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domain ('a, 'b) list1 = Nil1 | Cons1 'a "('b, 'a) list2"
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   and ('b, 'a) list2 = Nil2 | Cons2 'b "('a, 'b) list1"
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text {* Induction rules for flat datatypes have no admissibility side-condition. *}
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domain 'a flattree = Tip | Branch "'a flattree" "'a flattree"  | 
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lemma "\<lbrakk>P \<bottom>; P Tip; \<And>x y. \<lbrakk>x \<noteq> \<bottom>; y \<noteq> \<bottom>; P x; P y\<rbrakk> \<Longrightarrow> P (Branch\<cdot>x\<cdot>y)\<rbrakk> \<Longrightarrow> P x"  | 
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by (rule flattree.induct) -- "no admissibility requirement"  | 
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text {* Trivial datatypes will produce a warning message. *}
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100  | 
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domain triv = Triv triv triv  | 
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  -- "domain @{text Domain_ex.triv} is empty!"
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103  | 
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lemma "(x::triv) = \<bottom>" by (induct x, simp_all)  | 
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text {* Lazy constructor arguments may have unpointed types. *}
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domain natlist = nnil | ncons (lazy "nat discr") natlist  | 
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text {* Class constraints may be given for type parameters on the LHS. *}
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domain ('a::predomain) box = Box (lazy 'a)
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domain ('a::countable) stream = snil | scons (lazy "'a discr") "'a stream"
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116  | 
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117  | 
subsection {* Generated constants and theorems *}
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118  | 
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119  | 
domain 'a tree = Leaf (lazy 'a) | Node (left :: "'a tree") (right :: "'a tree")  | 
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120  | 
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lemmas tree_abs_bottom_iff =  | 
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122  | 
iso.abs_bottom_iff [OF iso.intro [OF tree.abs_iso tree.rep_iso]]  | 
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123  | 
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124  | 
text {* Rules about ismorphism *}
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125  | 
term tree_rep  | 
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126  | 
term tree_abs  | 
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127  | 
thm tree.rep_iso  | 
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128  | 
thm tree.abs_iso  | 
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129  | 
thm tree.iso_rews  | 
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130  | 
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131  | 
text {* Rules about constructors *}
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132  | 
term Leaf  | 
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133  | 
term Node  | 
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thm Leaf_def Node_def  | 
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135  | 
thm tree.nchotomy  | 
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136  | 
thm tree.exhaust  | 
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137  | 
thm tree.compacts  | 
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138  | 
thm tree.con_rews  | 
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139  | 
thm tree.dist_les  | 
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140  | 
thm tree.dist_eqs  | 
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141  | 
thm tree.inverts  | 
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142  | 
thm tree.injects  | 
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143  | 
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144  | 
text {* Rules about case combinator *}
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term tree_case  | 
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146  | 
thm tree.tree_case_def  | 
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147  | 
thm tree.case_rews  | 
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148  | 
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149  | 
text {* Rules about selectors *}
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150  | 
term left  | 
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151  | 
term right  | 
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152  | 
thm tree.sel_rews  | 
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153  | 
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154  | 
text {* Rules about discriminators *}
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155  | 
term is_Leaf  | 
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156  | 
term is_Node  | 
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157  | 
thm tree.dis_rews  | 
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158  | 
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159  | 
text {* Rules about monadic pattern match combinators *}
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160  | 
term match_Leaf  | 
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161  | 
term match_Node  | 
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162  | 
thm tree.match_rews  | 
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163  | 
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164  | 
text {* Rules about take function *}
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165  | 
term tree_take  | 
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166  | 
thm tree.take_def  | 
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167  | 
thm tree.take_0  | 
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168  | 
thm tree.take_Suc  | 
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169  | 
thm tree.take_rews  | 
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170  | 
thm tree.chain_take  | 
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171  | 
thm tree.take_take  | 
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172  | 
thm tree.deflation_take  | 
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173  | 
thm tree.take_below  | 
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174  | 
thm tree.take_lemma  | 
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175  | 
thm tree.lub_take  | 
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176  | 
thm tree.reach  | 
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177  | 
thm tree.finite_induct  | 
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178  | 
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179  | 
text {* Rules about finiteness predicate *}
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180  | 
term tree_finite  | 
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181  | 
thm tree.finite_def  | 
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182  | 
thm tree.finite (* only generated for flat datatypes *)  | 
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183  | 
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184  | 
text {* Rules about bisimulation predicate *}
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185  | 
term tree_bisim  | 
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186  | 
thm tree.bisim_def  | 
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187  | 
thm tree.coinduct  | 
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188  | 
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189  | 
text {* Induction rule *}
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190  | 
thm tree.induct  | 
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191  | 
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192  | 
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193  | 
subsection {* Known bugs *}
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194  | 
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195  | 
text {* Declaring a mixfix with spaces causes some strange parse errors. *}
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196  | 
(*  | 
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197  | 
domain xx = xx ("x y")
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198  | 
-- "Inner syntax error: unexpected end of input"  | 
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*)  | 
200  | 
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201  | 
end  |