convertDynamics.icl 59.5 KB
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/*
	module owner: Martijn Vervoort
*/
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implementation module convertDynamics

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import syntax, transform, utilities, convertcases, compilerSwitches
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from type_io_common import PredefinedModuleName
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// Optional
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USE_TUPLES tuple b :== b;					// change also StdDynamic.icl and recompile all applications
extended_unify_and_coerce no yes :== no;	// change also _unify and _coerce in StdDynamic
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import type_io; 
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//import pp;
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/*2.0
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from type_io_common import class toString (..),instance toString GlobalTCType;
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0.2*/

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::	*ConversionInfo =
	{	ci_predef_symb		:: !*PredefinedSymbols
	,	ci_var_heap			:: !*VarHeap
	,	ci_expr_heap		:: !*ExpressionHeap
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	,	ci_new_variables 	:: ![FreeVar]
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	,	ci_new_functions 	:: ![FunctionInfoPtr]
	,	ci_fun_heap			:: !*FunctionHeap
	,	ci_next_fun_nr		:: !Index
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	//	data needed to generate coercions
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	,	ci_placeholders_and_tc_args						:: [(!BoundVar,Ptr VarInfo)]
	,	ci_generated_global_tc_placeholders				:: !Bool
	,	ci_used_tcs										:: [Ptr VarInfo]
	,	ci_symb_ident									:: SymbIdent
	,	ci_sel_type_field								:: Expression -> Expression  //Optional (!Int,!(Global DefinedSymbol))
	,	ci_sel_value_field								:: Expression -> Expression  //Optional (!Int,!(Global DefinedSymbol))
	,	ci_module_id_symbol								:: Expression
	,	ci_internal_type_id								:: Expression
	,	ci_module_id									:: Optional LetBind
	,	ci_type_id										:: !Optional !TypeSymbIdent
	,	ci_type_constructor_used_in_dynamic_patterns	:: !*{#Bool}
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	}

::	ConversionInput =
	{	cinp_glob_type_inst	:: !{! GlobalTCType} 
	,	cinp_group_index	:: !Int
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	,	cinp_st_args		:: ![FreeVar]
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	}

:: OpenedDynamic =
	{	opened_dynamic_expr :: Expression
	, 	opened_dynamic_type :: Expression
	}

:: DefaultExpression :== Optional (BoundVar, [IndirectionVar])   //DefaultRecord
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::	BoundVariables :== [TypedVariable]

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:: IndirectionVar    :== BoundVar
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pl [] = ""
pl [x:xs] = x +++ " , " +++ (pl xs)
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F :: !a .b -> .b
F a b = b
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//write_tcl_file :: !Int {#DclModule} CommonDefs !*File [String] -> (.Bool,.File)
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//write_tcl_file :: !Int {#DclModule} CommonDefs !*File [String] _ _ !*TypeHeaps !*PredefinedSymbols -> (.Bool,.File,!*TypeHeaps,!*PredefinedSymbols)
write_tcl_file main_dcl_module_n dcl_mods=:{[main_dcl_module_n] = main_dcl_module} common_defs tcl_file directly_imported_dcl_modules global_type_instances ci_type_constructor_used_in_dynamic_patterns type_heaps predefined_symbols

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	# (pre_mod, predefined_symbols) = predefined_symbols![PD_PredefinedModule]
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	# write_type_info_state2
		= { WriteTypeInfoState |
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			wtis_type_heaps				= type_heaps
		,	wtis_n_type_vars			= 0
		,	wtis_predefined_module_def	= pre_mod.pds_def
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		};
	# (j,tcl_file)
		= fposition tcl_file
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	#! (tcl_file,write_type_info_state)
		= write_type_info common_defs tcl_file write_type_info_state2
	#! (tcl_file,write_type_info_state)
		= write_type_info directly_imported_dcl_modules tcl_file write_type_info_state
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	// dynamic pattern matches
	#! type_constructors_in_dynamic_patterns
		= collect_type_constructors_in_dynamic_patterns 0 (size global_type_instances) []
	#! (tcl_file,write_type_info_state)
		= write_type_info type_constructors_in_dynamic_patterns tcl_file write_type_info_state
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	#! (type_heaps,_)
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		= f write_type_info_state;	
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	#! tcl_file
		= fwritei (size main_dcl_module.dcl_common.com_type_defs) tcl_file
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	#! tcl_file
		= fwritei (size main_dcl_module.dcl_common.com_cons_defs) tcl_file
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	= (True,tcl_file,type_heaps,predefined_symbols) 
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where
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	collect_type_constructors_in_dynamic_patterns :: !Int !Int [(!TypeSymbIdent,!String)] -> [(!TypeSymbIdent,!String)]
	collect_type_constructors_in_dynamic_patterns i limit type_constructors_in_dynamic_patterns
		| i == limit
			= type_constructors_in_dynamic_patterns
			
			| isGTT_Constructor global_type_instances.[i]
				# (GTT_Constructor type_name=:{type_name={id_name}} module_name used_in_application_of_type_dependent_function)
					= global_type_instances.[i]
				| used_in_application_of_type_dependent_function || ci_type_constructor_used_in_dynamic_patterns.[i]
					= collect_type_constructors_in_dynamic_patterns (inc i) limit [(type_name,module_name):type_constructors_in_dynamic_patterns]
					= collect_type_constructors_in_dynamic_patterns (inc i) limit type_constructors_in_dynamic_patterns
				= collect_type_constructors_in_dynamic_patterns (inc i) limit type_constructors_in_dynamic_patterns
	where
		isGTT_Constructor (GTT_Constructor _ _ _)	= True
		isGTT_Constructor _							= False
		
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	f write_type_info_state=:{wtis_type_heaps}
		= (wtis_type_heaps,{write_type_info_state & wtis_type_heaps = abort "convertDynamics.icl"});

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/*2.0
f (Yes tcl_file)
	= tcl_file;
0.2*/
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convertDynamicPatternsIntoUnifyAppls :: {! GlobalTCType} !{# CommonDefs} !Int !*{! Group} !*{#FunDef} !*PredefinedSymbols !*VarHeap !*TypeHeaps !*ExpressionHeap (Optional !*File) {# DclModule} !IclModule [String]
			-> (!*{! Group}, !*{#FunDef}, !*PredefinedSymbols, !*{#{# CheckedTypeDef}}, !ImportedConstructors, !*VarHeap, !*TypeHeaps, !*ExpressionHeap, (Optional !*File))
convertDynamicPatternsIntoUnifyAppls global_type_instances common_defs main_dcl_module_n groups fun_defs predefined_symbols var_heap type_heaps expr_heap tcl_file dcl_mods icl_mod directly_imported_dcl_modules
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	# ({pds_module, pds_def} , predefined_symbols) = predefined_symbols![PD_StdDynamic]
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	#! (dynamic_temp_symb_ident,ci_sel_value_field,ci_sel_type_field,predefined_symbols)
		= case (pds_module == (-1) || pds_def == (-1)) of
			True
				-> (undef,undef,undef,predefined_symbols)
			_	
				 
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				-> case (USE_TUPLES True False) of
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					True
						# arity = 2
						// get tuple arity 2 constructor
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						# ({pds_module, pds_def}, predefined_symbols)	= predefined_symbols![GetTupleConsIndex arity]
						# pds_ident = predefined_idents.[GetTupleConsIndex arity]
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						# twoTuple_symb	= { symb_name = pds_ident, symb_kind = SK_Constructor { glob_module = pds_module, glob_object = pds_def} }
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						// get tuple, type and value selectors
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						# ({pds_def}, predefined_symbols) = predefined_symbols![GetTupleConsIndex arity]
						# pds_ident = predefined_idents.[GetTupleConsIndex arity]
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						# twotuple = {ds_ident = pds_ident, ds_arity = arity, ds_index = pds_def}
						# type_selector	= TupleSelect twotuple 1
						# value_selector = TupleSelect twotuple 0
						-> (twoTuple_symb,value_selector,type_selector,predefined_symbols)
					False
					
						# arity = 2
						# ({pds_module=pds_module1, pds_def=pds_def1} , predefined_symbols) = predefined_symbols![PD_DynamicTemp]
						# {td_rhs=RecordType {rt_constructor,rt_fields}} = common_defs.[pds_module1].com_type_defs.[pds_def1]
							
						# dynamic_temp_symb_ident
							= { SymbIdent |
								symb_name	= rt_constructor.ds_ident
							,	symb_kind 	= SK_Constructor {glob_module = pds_module1, glob_object = rt_constructor.ds_index} 
							}
		
						// type field
						# ({pds_module=pds_module2, pds_def=pds_def2} , predefined_symbols) = predefined_symbols![PD_DynamicType]
						# {sd_field,sd_field_nr}
							= common_defs.[pds_module2].com_selector_defs.[pds_def2]
		
						#! type_defined_symbol
							= { Global |
								glob_object		= { DefinedSymbol |
													ds_ident		= sd_field
												,	ds_arity		= 0
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												,	ds_index		= pds_def2 
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												}
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							,	glob_module		= pds_module2 
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							}
						#! ci_sel_type_field
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							= (\dynamic_expr -> Selection NormalSelector dynamic_expr [RecordSelection type_defined_symbol sd_field_nr])
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						// value field
						# ({pds_module=pds_module3, pds_def=pds_def3} , predefined_symbols) = predefined_symbols![PD_DynamicValue]
						# {sd_field=sd_field3,sd_field_nr=sd_field_nr3}
							= common_defs.[pds_module3].com_selector_defs.[pds_def3]
											
						#! value_defined_symbol
							= { Global |
								glob_object		= { DefinedSymbol |
													ds_ident		= sd_field3
												,	ds_arity		= 0
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												,	ds_index		= pds_def3 
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												}
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							,	glob_module		= pds_module3
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							}
						#! ci_sel_value_field
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							= (\dynamic_expr -> Selection NormalSelector dynamic_expr [RecordSelection value_defined_symbol sd_field_nr3])
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						-> (dynamic_temp_symb_ident, ci_sel_value_field, ci_sel_type_field,predefined_symbols)
						
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	# (module_symb,module_id_app,predefined_symbols)
		= get_module_id_app predefined_symbols
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	# ({pds_module=pds_type_id_module, pds_def=pds_type_id_def} , predefined_symbols) = predefined_symbols![PD_TypeID]
	# ci_type_id
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		= case (pds_type_id_module == NoIndex || pds_type_id_def == NoIndex) of
			True
				-> No
			_
				# {td_name} = common_defs.[pds_type_id_module].com_type_defs.[pds_type_id_def]
				# ci_type_id
					= {
						type_name	= td_name
					,	type_arity	= 0
					,	type_index	= { glob_object = pds_type_id_def, glob_module = pds_type_id_module}
					,	type_prop	= { tsp_sign = BottomSignClass, tsp_propagation = NoPropClass, tsp_coercible = True }
					};
				-> Yes ci_type_id
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	#! nr_of_funs = size fun_defs
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	#! s_global_type_instances = size global_type_instances
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	# imported_types = {com_type_defs \\ {com_type_defs} <-: common_defs }
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	# (groups, (fun_defs, {ci_predef_symb, ci_var_heap, ci_expr_heap, ci_fun_heap, ci_new_functions, ci_type_constructor_used_in_dynamic_patterns}))
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			= convert_groups 0 groups global_type_instances (fun_defs, {	
							ci_predef_symb = predefined_symbols, ci_var_heap = var_heap, ci_expr_heap = expr_heap,
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							ci_new_functions = [], ci_new_variables = [], ci_fun_heap = newHeap, ci_next_fun_nr = nr_of_funs, ci_placeholders_and_tc_args = [],
							ci_generated_global_tc_placeholders = False,
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							ci_used_tcs = [],ci_symb_ident = dynamic_temp_symb_ident , ci_sel_type_field =  ci_sel_type_field, ci_sel_value_field = ci_sel_value_field, 
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							ci_module_id_symbol = App module_symb,
							ci_internal_type_id = module_id_app,
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							ci_module_id		  = No,
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							ci_type_id		      = ci_type_id,
							ci_type_constructor_used_in_dynamic_patterns	= createArray s_global_type_instances False
							})
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	  (groups, new_fun_defs, imported_types, imported_conses, type_heaps, ci_var_heap)
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			= addNewFunctionsToGroups common_defs ci_fun_heap ci_new_functions main_dcl_module_n groups imported_types [] type_heaps ci_var_heap
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	// store type info			
	# (tcl_file,type_heaps,ci_predef_symb)
		= case tcl_file of
			No
				-> (No,type_heaps,ci_predef_symb)
/*2.0
			_ 
				# tcl_file = f tcl_file;
0.2*/
//1.3
			(Yes tcl_file)
//3.1
				# (ok,tcl_file,type_heaps,ci_predef_symb)
					= write_tcl_file main_dcl_module_n dcl_mods icl_mod.icl_common tcl_file directly_imported_dcl_modules global_type_instances ci_type_constructor_used_in_dynamic_patterns type_heaps ci_predef_symb
				| not ok
					-> abort "convertDynamicPatternsIntoUnifyAppls: error writing tcl file"
					-> (Yes tcl_file,type_heaps,ci_predef_symb)

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	= (groups, { fundef \\ fundef <- [ fundef \\ fundef <-: fun_defs ] ++ new_fun_defs }, ci_predef_symb, imported_types, imported_conses, ci_var_heap, type_heaps, ci_expr_heap, tcl_file)
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where
	convert_groups group_nr groups global_type_instances fun_defs_and_ci
		| group_nr == size groups
			= (groups, fun_defs_and_ci)
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			# (group, groups) = groups![group_nr]
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			= convert_groups (inc group_nr) groups global_type_instances (foldSt (convert_function group_nr global_type_instances) group.group_members fun_defs_and_ci)

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	convert_function group_nr global_type_instances fun (fun_defs, ci)
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		# (fun_def, fun_defs) = fun_defs![fun]
		  {fun_body, fun_type, fun_info} = fun_def
		| isEmpty fun_info.fi_dynamics
			= (fun_defs, ci)
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			// For each function which uses dynamics, a module id is constructed regardless
			// of its use. In some very specific cases, the let generated here is superfluous.
			# (TransformedBody fun_body=:{tb_rhs})
				= fun_body
			# (_,ci)
				= get_module_idN ci
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			# (tb_rhs,ci)
				= build_type_identification tb_rhs ci
			# fun_body
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				= {fun_body & tb_rhs = tb_rhs}
			# fun_body
				= TransformedBody fun_body
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			# ci 
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				= { ci & ci_used_tcs = [], ci_generated_global_tc_placeholders = False }
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			# (TransformedBody fun_body=:{tb_rhs}, ci) = convert_dynamics_in_body {cinp_st_args = [], cinp_glob_type_inst = global_type_instances, cinp_group_index = group_nr} fun_body fun_type ci
			
			# fun_body
				= TransformedBody fun_body
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			= ({fun_defs & [fun] = { fun_def & fun_body = fun_body, fun_info = { fun_info & fi_local_vars = ci.ci_new_variables ++ fun_info.fi_local_vars }}},
				{ ci & ci_new_variables = [] })
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		where
			get_module_idN ci=:{ci_internal_type_id}
				# (dst=:{var_info_ptr},ci)
					= newVariable "module_id" VI_Empty ci
				# dst_fv
					= varToFreeVar dst 1
		
				# let_bind
					= { lb_src = ci_internal_type_id
					,	lb_dst = dst_fv
					,	lb_position = NoPos
					}
				# ci
					= { ci & 
						ci_new_variables	= [ dst_fv : ci.ci_new_variables ]
					,	ci_module_id		= Yes let_bind
					}
				= (Var dst,ci)
		
			// identification of types generated by the compiler. If there is no TypeConsSymbol, then
			// no identification is necessary.
			build_type_identification dyn_type_code ci=:{ci_module_id=No}
				= abort "no ptr"; //(dyn_type_code,ci)
			build_type_identification dyn_type_code ci=:{ci_module_id=Yes let_bind}
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				# (let_info_ptr,  ci)	= typed_let_ptr ci
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				# letje
					= Let {	let_strict_binds	= [],
							let_lazy_binds		= [let_bind],
							let_expr			= dyn_type_code,
							let_info_ptr		= let_info_ptr,
							let_expr_position	= NoPos
					}
				= (letje,ci)


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	convert_dynamics_in_body global_type_instances (TransformedBody {tb_args,tb_rhs}) (Yes {st_context, st_args}) ci
		# vars_with_types = bindVarsToTypes2 st_context tb_args st_args [] common_defs
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		  (tb_rhs, ci) = convertDynamics {global_type_instances & cinp_st_args = tb_args} vars_with_types No tb_rhs ci
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		= (TransformedBody {tb_args = tb_args,tb_rhs = tb_rhs}, ci)
	convert_dynamics_in_body global_type_instances other fun_type ci
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		= abort "unexpected value in 'convert dynamics.convert_dynamics_in_body'"
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bindVarsToTypes2 st_context vars types typed_vars common_defs
	:== bindVarsToTypes vars (addTypesOfDictionaries common_defs st_context types) typed_vars
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bindVarsToTypes vars types typed_vars
	= fold2St bind_var_to_type vars types typed_vars
where
	bind_var_to_type var type typed_vars
		= [{tv_free_var = var, tv_type = type } : typed_vars]
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class convertDynamics a :: !ConversionInput !BoundVariables !DefaultExpression !a !*ConversionInfo -> (!a, !*ConversionInfo)

instance convertDynamics [a]  |  convertDynamics a
where
	convertDynamics :: !ConversionInput !BoundVariables !DefaultExpression ![a] !*ConversionInfo -> (![a], !*ConversionInfo)  |  convertDynamics a
	convertDynamics cinp bound_vars default_expr xs ci = mapSt (convertDynamics cinp bound_vars default_expr) xs ci

instance convertDynamics (Optional a)  |  convertDynamics a
where
	convertDynamics :: !ConversionInput !BoundVariables !DefaultExpression !(Optional a) !*ConversionInfo -> (!Optional a, !*ConversionInfo)  |  convertDynamics a
	convertDynamics cinp bound_vars default_expr (Yes x)	ci
		# (x, ci) = convertDynamics cinp bound_vars default_expr x ci
		= (Yes x, ci)
	convertDynamics _ _ _ No ci
		= (No, ci)

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instance convertDynamics LetBind
where
	convertDynamics :: !ConversionInput !BoundVariables !DefaultExpression !LetBind !*ConversionInfo -> (!LetBind, !*ConversionInfo)
	convertDynamics cinp bound_vars default_expr binding=:{lb_src} ci
		# (lb_src, ci) = convertDynamics cinp bound_vars default_expr lb_src ci
		= ({binding &  lb_src = lb_src}, ci)

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instance convertDynamics (Bind a b)  |  convertDynamics a
where
	convertDynamics :: !ConversionInput !BoundVariables !DefaultExpression !(Bind a b) !*ConversionInfo -> (!Bind a b, !*ConversionInfo)  |  convertDynamics a
	convertDynamics cinp bound_vars default_expr binding=:{bind_src} ci
		# (bind_src, ci) = convertDynamics cinp bound_vars default_expr bind_src ci
		= ({binding &  bind_src = bind_src}, ci)

convertDynamicsOfAlgebraicPattern :: !ConversionInput !BoundVariables !DefaultExpression !(!AlgebraicPattern,[AType]) !*ConversionInfo -> (!AlgebraicPattern,!*ConversionInfo)
convertDynamicsOfAlgebraicPattern cinp bound_vars default_expr (algebraic_pattern=:{ap_vars, ap_expr}, arg_types_of_conses) ci
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	# (ap_expr, ci) = convertDynamics cinp (bindVarsToTypes ap_vars arg_types_of_conses bound_vars) default_expr ap_expr ci
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	= ({algebraic_pattern &  ap_expr = ap_expr}, ci)

instance convertDynamics BasicPattern
where
	convertDynamics :: !ConversionInput !BoundVariables !DefaultExpression !BasicPattern !*ConversionInfo -> (!BasicPattern, !*ConversionInfo)
	convertDynamics cinp bound_vars default_expr basic_pattern=:{bp_expr} ci
		# (bp_expr, ci) = convertDynamics cinp bound_vars default_expr bp_expr ci
		= ({basic_pattern &  bp_expr = bp_expr}, ci)


instance convertDynamics Expression
where
	convertDynamics :: !ConversionInput !BoundVariables !DefaultExpression !Expression !*ConversionInfo -> (!Expression, !*ConversionInfo)
	convertDynamics cinp bound_vars default_expr (Var var) ci
		= (Var var, ci)
	convertDynamics cinp bound_vars default_expr (App appje=:{app_args}) ci
		# (app_args,ci) = convertDynamics cinp bound_vars default_expr app_args ci
		= (App {appje &  app_args = app_args}, ci)
	convertDynamics cinp bound_vars default_expr (expr @ exprs) ci
		# (expr,  ci) = convertDynamics cinp bound_vars default_expr expr  ci
		  (exprs, ci) = convertDynamics cinp bound_vars default_expr exprs ci
		= (expr @ exprs, ci)
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	convertDynamics cinp bound_vars default_expr (Let letje=:{let_strict_binds, let_lazy_binds, let_expr,let_info_ptr}) ci
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		# (let_types, ci) = determine_let_types let_info_ptr ci
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		  bound_vars = bindVarsToTypes [ bind.lb_dst \\ bind <- let_strict_binds ++ let_lazy_binds ] let_types bound_vars
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		  (let_strict_binds, ci)	= convertDynamics cinp bound_vars default_expr let_strict_binds ci
		  (let_lazy_binds, ci)		= convertDynamics cinp bound_vars default_expr let_lazy_binds ci
		  (let_expr,  ci) 			= convertDynamics cinp bound_vars default_expr let_expr  ci
		= (Let { letje &  let_strict_binds = let_strict_binds, let_lazy_binds = let_lazy_binds, let_expr = let_expr}, ci)
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	where
		determine_let_types let_info_ptr ci=:{ci_expr_heap}
			# (EI_LetType let_types, ci_expr_heap) = readPtr let_info_ptr ci_expr_heap
			= (let_types, { ci & ci_expr_heap = ci_expr_heap })

	convertDynamics cinp bound_vars default_expr (Case keesje=:{case_expr, case_guards, case_default, case_info_ptr}) ci
		# (case_expr,    ci) = convertDynamics cinp bound_vars default_expr case_expr ci
		  (case_default, ci) = convertDynamics cinp bound_vars default_expr case_default ci
		  (this_case_default, nested_case_default, ci) = determine_defaults case_default default_expr ci
		  (EI_CaseType {ct_cons_types, ct_result_type}, ci_expr_heap) = readPtr case_info_ptr ci.ci_expr_heap
		  ci = { ci & ci_expr_heap = ci_expr_heap }
		= case case_guards of
			(AlgebraicPatterns type algebraic_patterns)
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				| not (isNo this_case_default) && any (\algebraic_pattern -> is_case_without_default algebraic_pattern) algebraic_patterns
					// a default to be moved inwards and a root positioned case not having a default
					// 
					// Example:
					//	loadandrun2 :: ![(!Dynamic, !Dynamic)] !*World -> *World
					//	loadandrun2 [(f :: BatchProcess i o, input :: i)] world = abort "alt BatchProcess"
					//	loadandrun2 [(f :: InteractiveProcess i o, input :: i)] world = abort "alt InteractiveProcess" 
					//	loadandrun2 _ _ = abort "Loader: process and input do not match"
					//
					# (Yes old_case_default) = this_case_default
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					# (default_var, ci) = newVariable "s" (VI_BoundVar {at_attribute=TA_None,at_type=TE}) ci
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					# default_fv = varToFreeVar default_var 1
					# ci
						= { ci & ci_new_variables = [default_fv : ci.ci_new_variables]}
					# let_bind = {
							lb_src = old_case_default
						,	lb_dst = default_fv
						, lb_position = NoPos }					
					# (new_case_default, nested_case_default, ci) 
						= determine_defaults (Yes (Var default_var)) default_expr ci
					# algebraic_patterns			
						= map (patch_defaults new_case_default) algebraic_patterns
					#  (algebraic_patterns, ci) = mapSt (convertDynamicsOfAlgebraicPattern cinp bound_vars nested_case_default)
														(zip2 algebraic_patterns ct_cons_types) ci
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					# (let_info_ptr,  ci) = let_ptr 1 ci
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					# letje
						= Let {
							let_strict_binds	= []
						,	let_lazy_binds		= [let_bind]
						,	let_expr			= Case {keesje &  case_expr = case_expr, case_guards = AlgebraicPatterns type algebraic_patterns, case_default = new_case_default }
						,	let_info_ptr		= let_info_ptr
						,	let_expr_position	= NoPos
						}		
					-> (letje,ci)
			
					#  (algebraic_patterns, ci) = mapSt (convertDynamicsOfAlgebraicPattern cinp bound_vars nested_case_default)
														(zip2 algebraic_patterns ct_cons_types) ci
					-> (Case {keesje &  case_expr = case_expr, case_guards = AlgebraicPatterns type algebraic_patterns, case_default = this_case_default}, ci)
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			(BasicPatterns type basic_patterns)
				#  (basic_patterns, ci) = convertDynamics  cinp bound_vars nested_case_default basic_patterns ci
				-> (Case {keesje &  case_expr = case_expr, case_guards = BasicPatterns type basic_patterns, case_default = this_case_default}, ci)
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			(OverloadedListPatterns type decons_expr algebraic_patterns)
				#  (algebraic_patterns, ci) = mapSt (convertDynamicsOfAlgebraicPattern cinp bound_vars nested_case_default)
													(zip2 algebraic_patterns ct_cons_types) ci
				-> (Case {keesje &  case_expr = case_expr, case_guards = OverloadedListPatterns type decons_expr algebraic_patterns, case_default = this_case_default}, ci)
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			(DynamicPatterns dynamic_patterns)
				#  keesje = {keesje &  case_expr = case_expr, case_default = this_case_default}
				-> convertDynamicPatterns cinp bound_vars keesje ci
			NoPattern
				-> (Case {keesje &  case_expr = case_expr, case_guards = NoPattern, case_default = this_case_default}, ci)
			_
				-> abort "unexpected value in convertDynamics: 'convertDynamics.CasePatterns'"
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	where
		is_case_without_default {ap_expr=Case {case_default=No}}	= True
		is_case_without_default _									= False
	
		patch_defaults this_case_default ap=:{ap_expr=Case keesje=:{case_default=No}} 
			= { ap & ap_expr = Case {keesje & case_default = this_case_default} }
		patch_defaults _ expr
			= expr
			
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	convertDynamics cinp bound_vars default_expr (Selection opt_symb expression selections) ci
		# (expression,ci) = convertDynamics cinp bound_vars default_expr expression ci
		= (Selection opt_symb expression selections, ci)
	convertDynamics cinp bound_vars default_expr (Update expression1 selections expression2) ci
		# (expression1,ci) = convertDynamics cinp bound_vars default_expr expression1 ci
		# (expression2,ci) = convertDynamics cinp bound_vars default_expr expression2 ci
		= (Update expression1 selections expression2, ci)
	convertDynamics cinp bound_vars default_expr (RecordUpdate cons_symbol expression expressions) ci
		# (expression,ci) = convertDynamics cinp bound_vars default_expr expression ci
		# (expressions,ci) = convertDynamics cinp bound_vars default_expr expressions ci
		= (RecordUpdate cons_symbol expression expressions, ci)
	convertDynamics cinp bound_vars default_expr (TupleSelect definedSymbol int expression) ci
		# (expression,ci) = convertDynamics cinp bound_vars default_expr expression ci
		= (TupleSelect definedSymbol int expression, ci)
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	convertDynamics _ _ _ be=:(BasicExpr basicValue) ci
		= (be, ci)
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	convertDynamics _ _ _ (AnyCodeExpr codeBinding1 codeBinding2 strings) ci
		= (AnyCodeExpr codeBinding1 codeBinding2 strings, ci)
	convertDynamics _ _ _ (ABCCodeExpr strings bool) ci
		= (ABCCodeExpr strings bool, ci)
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	convertDynamics cinp bound_vars default_expr (MatchExpr symb expression) ci
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		# (expression,ci) = convertDynamics cinp bound_vars default_expr expression ci
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		= (MatchExpr symb expression, ci)
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	convertDynamics cinp bound_vars default_expr  (DynamicExpr {dyn_expr, dyn_info_ptr, dyn_type_code}) ci=:{ci_symb_ident}
		#  (dyn_expr,      ci) 			= convertDynamics cinp bound_vars default_expr dyn_expr ci
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		   (_,dyn_type_code, _, _, ci)	= convertTypecode2 cinp dyn_type_code False [] [] ci
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		= (App {	app_symb		= ci_symb_ident,
					app_args 		= [dyn_expr, dyn_type_code],
					app_info_ptr	= nilPtr }, ci)
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	convertDynamics cinp bound_vars default_expr (TypeCodeExpression type_code) ci
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		= abort "convertDynamics cinp bound_vars default_expr (TypeCodeExpression" //convertTypecode cinp type_code ci
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	convertDynamics cinp bound_vars default_expr EE ci
		= (EE, ci)
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	convertDynamics cinp bound_vars default_expr expr=:(NoBind _) ci
		= (expr,ci)
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/*
	
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	is_dynamic_pattern (is_dynamic_pattern)
		True
			1) replace TC-references passed as an argument to the current function, in a type code expression by placeholders. A 
			   (placeholder,argument)-list is returned to generate the coercion later on.
			2) A PD_UPV_Placeholder is generated for each TCE_UniType-variable occuring in the type code expression.
			3) store type constructors in ci_type_constructor_used_in_dynamic_patterns
		False
			1) do *not* replace TC-reference
			2) A PD_UV_Placeholder is generated for each TCE_UniType-variable occuring in the type code expression.
			3) do *not* store type constructors
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*/
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convertTypecode2 cinp (TCE_UniType uni_vars type_code) is_dynamic_pattern binds placeholders_and_tc_args ci
		# (let_binds,     ci) 	= createUniversalVariables (if is_dynamic_pattern PD_UPV_Placeholder PD_UV_Placeholder) uni_vars [] ci
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		  (let_info_ptr,  ci)	= let_ptr (length let_binds) ci
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		  (e, type_code_expr, binds, placeholders_and_tc_args, ci)	= convertTypecode2 cinp type_code is_dynamic_pattern [] [] ci
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		= (e, Let {	let_strict_binds	= [],
					let_lazy_binds		= let_binds,
					let_expr			= type_code_expr,
					let_info_ptr		= let_info_ptr,
					let_expr_position	= NoPos}, binds, placeholders_and_tc_args, ci) 

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convertTypecode2 cinp=:{cinp_st_args} t=:(TCE_Var var_info_ptr) is_dynamic_pattern binds placeholders_and_tc_args ci
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	#! cinp_st_args
		= filter (\{fv_info_ptr} -> fv_info_ptr == var_info_ptr) cinp_st_args
	| isEmpty cinp_st_args
		#! (e,binds,placeholders_and_tc_args,ci)
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			= convertTypecode cinp t is_dynamic_pattern binds placeholders_and_tc_args ci
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		= (False,e,binds,placeholders_and_tc_args,ci)
		
		/*
		** the TCE_VAR is a TC argument and it is not part of a larger type expression. It
		** later suffices to generate a coerce instead of an application. This is an 
		** optimization.
		*/
		= (True,Var {var_name = a_ij_var_name, var_info_ptr = var_info_ptr, var_expr_ptr = nilPtr},binds,placeholders_and_tc_args,ci)

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convertTypecode2 cinp=:{cinp_st_args} t=:(TCE_TypeTerm var_info_ptr) is_dynamic_pattern binds placeholders_and_tc_args ci
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	#! cinp_st_args
		= filter (\{fv_info_ptr} -> fv_info_ptr == var_info_ptr) cinp_st_args
	| isEmpty cinp_st_args
		#! (e,binds,placeholders_and_tc_args,ci)
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			= convertTypecode cinp t is_dynamic_pattern binds placeholders_and_tc_args ci
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		= (False,e,binds,placeholders_and_tc_args,ci)
		
		/*
		** the TCE_VAR is a TC argument and it is not part of a larger type expression. It
		** later suffices to generate a coerce instead of an application. This is an 
		** optimization.
		*/
		= (True,Var {var_name = a_ij_var_name, var_info_ptr = var_info_ptr, var_expr_ptr = nilPtr},binds,placeholders_and_tc_args,ci)

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	#! (e,binds,placeholders_and_tc_args,ci)
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		= convertTypecode cinp t is_dynamic_pattern binds placeholders_and_tc_args ci
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	= (False,e,binds,placeholders_and_tc_args,ci)

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convertTypecode cinp TCE_Empty is_dynamic_pattern binds placeholders_and_tc_args ci 
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	= (EE,binds,placeholders_and_tc_args,ci)
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convertTypecode cinp=:{cinp_st_args} (TCE_Var var_info_ptr) is_dynamic_pattern binds placeholders_and_tc_args ci=:{ci_placeholders_and_tc_args,ci_var_heap}
	| not is_dynamic_pattern
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		= (Var {var_name = a_ij_var_name, var_info_ptr = var_info_ptr, var_expr_ptr = nilPtr},binds,placeholders_and_tc_args, ci)
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	// check if tc_arg has already been replaced by a placeholder
	#! ci_placeholder_and_tc_arg
		= filter (\(_,tc_args_ptr) -> tc_args_ptr == var_info_ptr) ci_placeholders_and_tc_args
	| not (isEmpty ci_placeholder_and_tc_arg)
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		// an tc-arg has been found, add to the list of indirections to be restored and replace it by its placeholder

		#! placeholder_var 
			= (fst (hd ci_placeholder_and_tc_arg));
		#! ci_var_heap
			= adjust_ref_count placeholder_var.var_info_ptr ci.ci_var_heap
		= (Var {var_name = v_tc_placeholder_ident, var_info_ptr = placeholder_var.var_info_ptr, var_expr_ptr = nilPtr},binds,
				[(placeholder_var/*.var_info_ptr*/,var_info_ptr):placeholders_and_tc_args],{ci & ci_var_heap = ci_var_heap} );
				//placeholders_and_tc_args, ci)
				
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		= (Var {var_name = a_ij_var_name, var_info_ptr = var_info_ptr, var_expr_ptr = nilPtr},binds,placeholders_and_tc_args, ci)
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where
	adjust_ref_count var_info_ptr var_heap
		# (VI_Indirection ref_count, var_heap) = readPtr var_info_ptr var_heap
		= var_heap <:= (var_info_ptr, VI_Indirection (inc ref_count))
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// 1st component of tuple is true iff:
// 1. The type is a TCE_Var or TCE_TypeTerm
// 2. It is also a argument of the function
// Thus a tc argument variable.
// This forms a special case: instead of an unify, a coerce can be generated
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convertTypecode cinp (TCE_TypeTerm var_info_ptr) is_dynamic_pattern binds placeholders_and_tc_args ci
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	/*
	** TCE_Var and TCE_TypeTerm are not equivalent. A TCE_TypeTerm is used for an argument which contains
	** a type representation. A TCE_Var is an existential quantified type variable. In previous phases no
	** clear distinction is made. It should be possible to generate the proper type code expression for
	** these two but it would involve changing a lot of small things. 
	*/
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	= convertTypecode cinp (TCE_Var var_info_ptr) is_dynamic_pattern binds placeholders_and_tc_args ci
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convertTypecode cinp (TCE_Constructor index typecode_exprs) is_dynamic_pattern binds placeholders_and_tc_args ci=:{ci_internal_type_id}
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	# (typecons_symb,  ci) 									=  getSymbol PD_TypeConsSymbol SK_Constructor (USE_DummyModuleName 3 2) ci
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	# (constructor,ci)										= get_constructor cinp.cinp_glob_type_inst index ci
	  (typecode_exprs,binds,placeholders_and_tc_args,ci)	= convertTypecodes cinp typecode_exprs is_dynamic_pattern binds placeholders_and_tc_args ci
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	# (ci_internal_type_id,ci)
		= get_module_id ci
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	= (App {app_symb		= typecons_symb,
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			app_args 		= USE_DummyModuleName [constructor , ci_internal_type_id, typecode_exprs] [constructor , typecode_exprs] ,
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			app_info_ptr	= nilPtr},binds,placeholders_and_tc_args,ci)
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where
	get_module_id ci=:{ci_module_id=Yes {lb_dst}}
		= (Var (freeVarToVar lb_dst),ci)
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	get_constructor :: !{!GlobalTCType} Index !*ConversionInfo -> (Expression,!*ConversionInfo)
	get_constructor glob_type_inst index ci=:{ci_type_constructor_used_in_dynamic_patterns}
		# ci 
			= case is_dynamic_pattern of
				True	-> { ci & ci_type_constructor_used_in_dynamic_patterns.[index] = True }
				_		-> ci
		= (BasicExpr (BVS ("\"" +++ toString  glob_type_inst.[index] +++ "\"")),ci)
		
	convertTypecodes _ [] is_dynamic_pattern binds placeholders_and_tc_args ci
		# (nil_symb, ci) = getSymbol PD_NilSymbol SK_Constructor 0 ci
		= (App {	app_symb		= nil_symb,
					app_args 		= [],
					app_info_ptr	= nilPtr},binds,placeholders_and_tc_args, ci)
	
	convertTypecodes cinp [typecode_expr : typecode_exprs] is_dynamic_pattern binds placeholders_and_tc_args ci
		# (cons_symb, ci) = getSymbol PD_ConsSymbol SK_Constructor 2 ci
		# (expr,binds,placeholders_and_tc_args, ci) = convertTypecode  cinp typecode_expr  is_dynamic_pattern binds placeholders_and_tc_args ci
		# (exprs,binds,placeholders_and_tc_args,ci) = convertTypecodes cinp typecode_exprs is_dynamic_pattern binds placeholders_and_tc_args ci
		= (App {	app_symb		= cons_symb,
					app_args 		= [expr , exprs],
					app_info_ptr	= nilPtr}, binds,placeholders_and_tc_args, ci)
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convertTypecode cinp (TCE_Selector selections var_info_ptr) is_dynamic_pattern binds placeholders_and_tc_args ci
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	#! (var,binds,placeholders_and_tc_args,ci)		
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		= convertTypecode cinp (TCE_Var var_info_ptr) is_dynamic_pattern binds placeholders_and_tc_args ci
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	= (Selection NormalSelector var selections,binds,placeholders_and_tc_args,ci)
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//convertTypecodes :: !ConversionInput [TypeCodeExpression] !*ConversionInfo  -> (Expression,!*ConversionInfo)
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determine_defaults :: (Optional Expression) DefaultExpression !*ConversionInfo -> (Optional Expression, DefaultExpression, !*ConversionInfo)
/***
determine_defaults :: case_default default_expr varheap -> (this_case_default, nested_case_default, var_heap)
	this_case_default =	IF this case has no default, but there is a surrounding default
						THEN that is now the default and its reference count must be increased.
						ELSE it keeps this default
	nested_case_default  = 	IF this case has no default
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		 					THEN the default_expr remains default in the nested cases.
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							ELSE nested cases get this default. This is semantically already the case, so nothing has to be changed.
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***/
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// the case itself has no default but it has a surrounding default
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/*
	1st 	= default of current case
	2nd 	= directly surrounding default
*/
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determine_defaults No default_expr=:(Yes (var=:{var_info_ptr}, indirection_var_list)) ci=:{ci_var_heap}
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	# (var_info, ci_var_heap) = readPtr var_info_ptr ci_var_heap
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	# (expression, ci) = toExpression default_expr {ci & ci_var_heap = ci_var_heap}
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	# expression
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		= expression// ---> expression
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	= case var_info of
		VI_Default ref_count
			-> (expression, default_expr, {ci & ci_var_heap = ci.ci_var_heap <:= (var_info_ptr, VI_Default (inc ref_count))} )
		_
			-> (expression, default_expr, ci )
determine_defaults case_default _ ci
	= (case_default, No, ci)


add_dynamic_bound_vars :: ![DynamicPattern] BoundVariables -> BoundVariables
add_dynamic_bound_vars [] bound_vars = bound_vars
add_dynamic_bound_vars [{dp_var, dp_type_patterns_vars} : patterns] bound_vars
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	= add_dynamic_bound_vars patterns (foldSt bind_info_ptr dp_type_patterns_vars [ {tv_free_var = dp_var, tv_type = empty_attributed_type } : bound_vars ])
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where
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	bind_info_ptr var_info_ptr bound_vars
		= [{ tv_free_var = {fv_def_level = NotALevel, fv_name = a_ij_var_name, fv_info_ptr = var_info_ptr, fv_count = 0}, tv_type = empty_attributed_type } : bound_vars]
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open_dynamic :: Expression !*ConversionInfo -> (OpenedDynamic, LetBind, !*ConversionInfo)
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open_dynamic dynamic_expr ci=:{ci_sel_type_field, ci_sel_value_field}
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	# (twotuple, ci) = getTupleSymbol 2 ci
	  (dynamicType_var, ci) = newVariable "dt" VI_Empty ci
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	  dynamicType_fv = varToFreeVar dynamicType_var 1
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	= (	{ opened_dynamic_expr = ci_sel_value_field dynamic_expr, opened_dynamic_type = Var dynamicType_var },
	  	{ lb_src = ci_sel_type_field dynamic_expr, lb_dst = dynamicType_fv, lb_position = NoPos },
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	  	{ ci & ci_new_variables = [ dynamicType_fv : ci.ci_new_variables ]})
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/**************************************************************************************************/

convertDynamicPatterns :: !ConversionInput !BoundVariables !Case *ConversionInfo -> (Expression, *ConversionInfo)
convertDynamicPatterns cinp bound_vars {case_guards = DynamicPatterns [], case_default} ci
	= case case_default of
		(Yes expr)	-> (expr, ci)
		No			-> abort "unexpected value in convertDynamics: 'convertDynamicPatterns'"
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convertDynamicPatterns cinp=:{cinp_st_args} bound_vars {case_expr, case_guards = DynamicPatterns patterns, case_default, case_info_ptr} 
			ci=:{ci_placeholders_and_tc_args=old_ci_placeholders_and_tc_args,ci_generated_global_tc_placeholders}
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	# (opened_dynamic, dt_bind, ci) = open_dynamic case_expr ci
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	  (ind_0, ci) = newVariable "ind_0" (VI_Indirection 0) ci
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	  (c_1,   ci) = newVariable "c_1!" (VI_Default 0) ci
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      new_default = newDefault c_1 ind_0
      (result_type, ci) = getResultType case_info_ptr ci
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    #! (tc_binds,(bound_vars,ci))
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  	  	= case ci_generated_global_tc_placeholders of
  	  		True	-> ([],(bound_vars,ci))
  	  		_		
  	  				#! (tc_binds,(bound_vars,ci))
  	  					= mapSt f cinp_st_args (bound_vars,ci)
  	  				#! ci
  	  					= { ci & ci_generated_global_tc_placeholders = True}
  	  				-> (tc_binds,(bound_vars,ci))

	#

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      bound_vars = addToBoundVars (freeVarToVar dt_bind.lb_dst) empty_attributed_type (addToBoundVars ind_0 empty_attributed_type
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      							  (addToBoundVars c_1 result_type (add_dynamic_bound_vars patterns bound_vars)))
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																// c_1 ind_0
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	  (binds, expr, ci) = convert_dynamic_pattern cinp bound_vars new_default 1 opened_dynamic result_type case_default patterns ci
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	# ci
		= { ci & ci_placeholders_and_tc_args=old_ci_placeholders_and_tc_args}
	# (tc_binds,ci)
		= foldSt remove_non_used_arg tc_binds ([],ci) 
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	  (let_info_ptr, ci) = let_ptr (length  binds + length tc_binds + 1) ci
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	= (Let {let_strict_binds = [], let_lazy_binds = [ dt_bind : binds ] ++ tc_binds, let_expr = expr,
			let_info_ptr = let_info_ptr, let_expr_position = NoPos }, ci)
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where
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	remove_non_used_arg :: LetBind ([LetBind],*ConversionInfo) -> ([LetBind],*ConversionInfo)
	remove_non_used_arg tc_bind=:{lb_dst={fv_info_ptr}} (l,ci=:{ci_var_heap})
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		# (VI_Indirection ref_count, ci_var_heap) = readPtr fv_info_ptr ci_var_heap
		| ref_count > 0
			#! tc_bind
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				= { tc_bind & lb_dst = { tc_bind.lb_dst & fv_count = ref_count} }
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			= ([tc_bind:l],{ci & ci_var_heap = ci_var_heap})
			
			= (l,{ci & ci_var_heap = ci_var_heap})

	// too many new variables are created because also non-tc args are included; should be improved in the future
	f st_arg (bound_vars,ci=:{ci_placeholders_and_tc_args})
		// create placeholder variable for arg
		#! v
			= VI_Indirection 0
							
  		#! (placeholder_var, ci) 
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			= newVariable v_tc_placeholder v ci //---> st_arg
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		#! (bind,ci)
			= create_variable v_tc_placeholder_ident_global placeholder_var.var_info_ptr ci
		
		// associate newly create placeholder variable with its tc
		#! ci
			= { ci & 
				ci_placeholders_and_tc_args = [(placeholder_var,st_arg.fv_info_ptr):ci_placeholders_and_tc_args]
			}
			
		#! bound_vars2
			= addToBoundVars placeholder_var empty_attributed_type bound_vars
		= (bind,(bound_vars2,ci));
	where
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		create_variable :: !Ident VarInfoPtr !*ConversionInfo -> (LetBind, !*ConversionInfo)
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		create_variable var_name var_info_ptr ci
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			# (placeholder_symb, ci) = getSymbol PD_PV_Placeholder SK_Constructor 2 ci
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			  cyclic_var = {var_name = var_name, var_info_ptr = var_info_ptr, var_expr_ptr = nilPtr}	
			  cyclic_fv = varToFreeVar cyclic_var 1	
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			= ({ lb_src = App {	app_symb = placeholder_symb,
								app_args = [Var cyclic_var, Var cyclic_var],
								app_info_ptr = nilPtr },
				 lb_dst = varToFreeVar cyclic_var 1,
				 lb_position = NoPos
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			   },
			   { ci & ci_new_variables = [ cyclic_fv : ci.ci_new_variables ]} /*ci*/)
			   
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	add_coercions _ [] _ _ bound_vars dp_rhs ci
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		= (bound_vars,dp_rhs,ci)
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	add_coercions result_type [({var_info_ptr=a_ij},a_ij_tc):rest] this_default q bound_vars dp_rhs ci=:{ci_module_id_symbol}
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		// extra
		# a_ij_var = {var_name = a_ij_var_name, var_info_ptr = a_ij, var_expr_ptr = nilPtr}	
		# a_ij_tc_var = {var_name = a_aij_tc_var_name, var_info_ptr = a_ij_tc, var_expr_ptr = nilPtr}
		
		// indirections
		# (ind_i,   ci) = newVariable "ind_1" (VI_Indirection (if (isNo this_default) 0 1)) ci
		  (c_inc_i, ci) = newVariable "c_!" (VI_Indirection 1) ci
		  new_default = newDefault c_inc_i ind_i
		  
		#		
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		  (coerce_symb, ci)		= getSymbol PD_coerce SK_Function (extended_unify_and_coerce 2 3) ci
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		  (twotuple, ci) 		= getTupleSymbol 2 ci
		  (coerce_result_var, ci)	= newVariable "result" VI_Empty ci
		  coerce_result_fv 			= varToFreeVar coerce_result_var 1
		  (coerce_bool_var, ci)		= newVariable "coerce_bool" VI_Empty ci
		  coerce_bool_fv 			= varToFreeVar coerce_bool_var 1
		  
		# (let_binds, ci) 		= bind_indirection_var ind_i coerce_result_var twotuple ci
		
		  ind_i_fv = varToFreeVar ind_i 1
		  c_inc_i_fv = varToFreeVar c_inc_i 1
		  ci = { ci & ci_new_variables = [ c_inc_i_fv,ind_i_fv : ci.ci_new_variables ] }
		  		
		#! new_default2 = newDefault c_inc_i ind_i
		
		#  (default_expr, ci) 	
		  	= case (isNo this_default) of 
		  		False
		  			-> toExpression new_default2 ci
		  		True
		  			-> (No,ci)
		  			
		// extra
		# (bound_vars,new_dp_rhs,ci)
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			= add_coercions result_type rest (if (isNo this_default) No new_default2) q bound_vars dp_rhs ci 
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		#! (opt_expr,ci)
			= toExpression this_default ci
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		#! app_args2 = extended_unify_and_coerce [Var a_ij_var, Var a_ij_tc_var] [Var a_ij_var, Var a_ij_tc_var, ci_module_id_symbol ]
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		# let_lazy_binds		= (if (isNo this_default) [] [ {lb_src = opt opt_expr, lb_dst = c_inc_i_fv, lb_position = NoPos }]) ++ [
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										  { lb_src = App { app_symb = coerce_symb,  app_args = app_args2,  app_info_ptr = nilPtr },
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										   lb_dst = coerce_result_fv, lb_position = NoPos }
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										   ,
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										 { lb_src = TupleSelect twotuple 0 (Var coerce_result_var),
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										   lb_dst = coerce_bool_fv, lb_position = NoPos } : let_binds
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										]
		  (let_info_ptr, ci) 	= let_ptr (length let_lazy_binds) ci
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		  (case_info_ptr, ci)	= bool_case_ptr result_type ci
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		# let_expr
			= Let {
					let_strict_binds	= []
				,	let_lazy_binds		= let_lazy_binds
				,	let_expr =
							 Case {			case_expr 		= Var coerce_bool_var,
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											case_guards		= BasicPatterns BT_Bool [{bp_value = BVB True, bp_expr = new_dp_rhs, bp_position = NoPos }],
											case_default	= default_expr,
											case_ident		= No,
											case_info_ptr	= case_info_ptr,
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											case_explicit	= False,
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											case_default_pos= NoPos }
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				,	let_info_ptr = let_info_ptr	
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				,	let_expr_position = NoPos
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				}
		
		// dp_rhs
		= (bound_vars,let_expr,{ ci & ci_new_variables = [coerce_result_fv, coerce_bool_fv : ci.ci_new_variables]}) //let_expr,ci)	
	where 
		opt (Yes x)		= x
			
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	convert_dynamic_pattern :: !ConversionInput !BoundVariables DefaultExpression Int OpenedDynamic AType (Optional Expression) ![DynamicPattern] *ConversionInfo
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		-> ([LetBind], Expression, *ConversionInfo)
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	convert_dynamic_pattern cinp bound_vars this_default pattern_number opened_dynamic result_type last_default
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																			[{ dp_var, dp_type_patterns_vars, dp_type_code, dp_rhs } : patterns] ci=:{ci_module_id_symbol}
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		# /***  The last case may not have a default  ***/
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		  ind_var = getIndirectionVar this_default
	
	      this_default = if (isEmpty patterns && (isNo last_default)) No this_default
	
		  /***  convert the elements of this pattern  ***/

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		  (a_ij_binds, ci)		= createTypePatternVariables dp_type_patterns_vars [] ci
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	 	  (generate_coerce,type_code,_,martijn, ci)	= convertTypecode2 cinp dp_type_code True /* should be changed to True for type dependent functions */  /* WAS: a_ij_binds*/ [] [] ci //{ci & ci_module_id = No} // ci
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	 	# (is_last_dynamic_pattern,dp_rhs) 
	 		= isLastDynamicPattern dp_rhs;
		# ci
			= foldSt add_tcs martijn ci
			
	 	#	
	 	  // walks through the patterns of the next alternative
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	 	  (dp_rhs, ci)			= convertDynamics cinp bound_vars this_default dp_rhs ci
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		#! (ci_old_used_tcs,ci)
			= ci!ci_used_tcs;
	 	# ci
	 		= { ci & ci_used_tcs = [] }
			 		
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		  /***  recursively convert the other patterns in the other alternatives ***/
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	 	#!  (binds, ci)		= convert_other_patterns cinp bound_vars this_default pattern_number opened_dynamic result_type last_default patterns ci
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	 	# ci
	 		= { ci & ci_used_tcs = ci_old_used_tcs }
		# ci_used_tcs
			= ci_old_used_tcs
	 	  
	 	#! (dp_rhs,ci)
	 		= case ((is_last_dynamic_pattern) /*&& (not generate_coerce)*/) of
	 			True
	 				// last dynamic pattern of the group of dynamic pattern so coercions must be generated.
	 				 #! (ci_placeholders_and_tc_args,ci)
	 					= ci!ci_placeholders_and_tc_args
	 				
	 				#! used_ci_placeholders_and_tc_args
	 					= filter (\(_,ci_placeholders_and_tc_arg) -> isMember ci_placeholders_and_tc_arg ci_used_tcs) ci_placeholders_and_tc_args
					#! (bound_vars,dp_rhs,ci)
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						= add_coercions result_type used_ci_placeholders_and_tc_args this_default binds bound_vars dp_rhs ci
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	 				-> (dp_rhs,ci)
	 			False
	 				-> (dp_rhs,ci)
		#
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		  /***  generate the expression  ***/
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	 	  (unify_symb, ci) 		= getSymbol (if generate_coerce PD_coerce PD_unify ) SK_Function (extended_unify_and_coerce 2 3) /*3 was 2 */ ci
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		  (twotuple, ci) 		= getTupleSymbol 2 ci
		  (default_expr, ci) 	= toExpression this_default ci
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		  // was coercions
		  
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		  (unify_result_var, ci)	= newVariable "result" VI_Empty ci
		  unify_result_fv 			= varToFreeVar unify_result_var 1
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		  (unify_bool_var, ci)		= newVariable (if generate_coerce "coerce_bool" "unify_bool") VI_Empty ci
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		  unify_bool_fv 			= varToFreeVar unify_bool_var 1

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		  (let_binds, ci) 		= bind_indirection_var ind_var unify_result_var twotuple ci
		  a_ij_binds			= add_x_i_bind opened_dynamic.opened_dynamic_expr dp_var a_ij_binds
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		  (let_info_ptr, ci) 	= let_ptr (2 + length let_binds) ci
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		  (case_info_ptr, ci)	= bool_case_ptr result_type ci
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		  app_args2 = extended_unify_and_coerce [opened_dynamic.opened_dynamic_type, type_code] [opened_dynamic.opened_dynamic_type, type_code, ci_module_id_symbol ]
		  
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		  let_expr = Let {	let_strict_binds = [],
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		  					let_lazy_binds = [{ lb_src = App { app_symb = unify_symb,  app_args = app_args2,  app_info_ptr = nilPtr },
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		  								   lb_dst = unify_result_fv, lb_position = NoPos },
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		  								 { lb_src = TupleSelect twotuple 0 (Var unify_result_var),
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		  								   lb_dst = unify_bool_fv, lb_position = NoPos } : let_binds
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		  								],
		  					let_expr = Case {	case_expr 		= Var unify_bool_var,
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												case_guards		= BasicPatterns BT_Bool [{bp_value = BVB True, bp_expr = dp_rhs, bp_position = NoPos }],
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												case_default	= default_expr,
												case_ident		= No,
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												case_info_ptr	= case_info_ptr,
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												case_default_pos= NoPos },
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		  					let_info_ptr = let_info_ptr,
		  					let_expr_position = NoPos }
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		= (a_ij_binds ++ binds,  let_expr,  { ci & ci_new_variables = [unify_result_fv, unify_bool_fv : ci.ci_new_variables]})
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	where
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		add_x_i_bind lb_src lb_dst=:{fv_count} binds
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			| fv_count > 0
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				= [ { lb_src = lb_src, lb_dst = lb_dst, lb_position = NoPos } : binds ]
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				= binds
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		isLastDynamicPattern dp_rhs=:(Case keesje=:{case_guards=DynamicPatterns _})
			= (False,dp_rhs);
		
		isLastDynamicPattern dp_rhs
			= (True,dp_rhs);