#ifndef __NASAL_RUNTIME_H__ #define __NASAL_RUNTIME_H__ enum runtime_returned_state { rt_return=1, rt_break, rt_continue, rt_error, rt_exit_without_error }; class nasal_runtime { private: std::map builtin_func_hashmap; // function_return_address is an address in garbage_collector_memory int function_returned_address; // global_scope_address is an address in garbage_collector_memory int global_scope_address; nasal_ast root; // if error occurred,this value will add 1 int error; void die(int,std::string); // generate vector and return gc place of this vector int vector_generation(nasal_ast&,int); // generate hash and return gc place of this hash int hash_generation(nasal_ast&,int); // generate function and return gc place of this function int function_generation(nasal_ast&,int); /* functions after this note may have parameter named 'local_scope_addr' if no local scope existing when calling these functions,use -1 */ // main expression block running process int main_progress(); // function/loop/conditional expression block running process int block_progress(nasal_ast&,int,bool); // run loop int before_for_loop(nasal_ast&,int); int after_each_for_loop(nasal_ast&,int); int loop_progress(nasal_ast&,int,bool); // run conditional bool check_condition(int); int conditional_progress(nasal_ast&,int,bool); // get scalars in complex data structure like vector/hash/function/closure(scope) int call_scalar(nasal_ast&,int); int call_vector(nasal_ast&,int,int); int call_hash(nasal_ast&,int,int); int call_function(nasal_ast&,std::string,int,int,int); int call_builtin_function(std::string,int); // get scalars' memory place in complex data structure like vector/hash/function/closure(scope) int call_scalar_mem(nasal_ast&,int); int call_vector_mem(nasal_ast&,int,int); int call_hash_mem(nasal_ast&,int,int); // calculate scalars int calculation(nasal_ast&,int); void definition(nasal_ast&,int); void multi_assignment(nasal_ast&,int); // builtin_func defined here int builtin_print(int); int builtin_append(int); int builtin_setsize(int); int builtin_system(int); int builtin_input(int); int builtin_sleep(int); int builtin_finput(int); int builtin_foutput(int); int builtin_split(int); int builtin_rand(int); int builtin_id(int); int builtin_int(int); int builtin_num(int); int builtin_pop(int); int builtin_str(int); int builtin_size(int); int builtin_xor(int); int builtin_and(int); int builtin_or(int); int builtin_nand(int); int builtin_not(int); int builtin_sin(int); int builtin_cos(int); int builtin_tan(int); int builtin_exp(int); int builtin_ln(int); int builtin_sqrt(int); int builtin_atan2(int); int builtin_time(int); int builtin_contains(int); int builtin_delete(int); int builtin_getkeys(int); int builtin_import(int); int builtin_die(int); int builtin_type(int); int builtin_substr(int); void load_builtin_function(); public: nasal_runtime(); ~nasal_runtime(); void set_root(nasal_ast&); void run(); }; nasal_runtime::nasal_runtime() { error=0; this->root.clear(); this->global_scope_address=-1; this->load_builtin_function(); return; } nasal_runtime::~nasal_runtime() { error=0; this->root.clear(); this->global_scope_address=-1; this->builtin_func_hashmap.clear(); return; } void nasal_runtime::die(int line,std::string info) { ++error; std::cout<<">> [runtime] line "<root=parse_result; return; } void nasal_runtime::run() { this->error=0; this->function_returned_address=-1; this->global_scope_address=nasal_vm.gc_alloc(); nasal_vm.gc_get(global_scope_address).set_type(vm_closure); nasal_vm.gc_get(global_scope_address).get_closure().add_scope(); time_t begin_time=std::time(NULL); int returned_statement=main_progress(); time_t end_time=std::time(NULL); nasal_vm.gc_get(global_scope_address).get_closure().del_scope(); nasal_vm.del_reference(global_scope_address); nasal_vm.clear(); time_t total_run_time=end_time-begin_time; if(total_run_time>=1) std::cout<<">> [runtime] process exited after "<=0) ref_of_this_function.set_closure_addr(local_scope_addr); else { int new_closure=nasal_vm.gc_alloc(); nasal_vm.gc_get(new_closure).set_type(vm_closure); ref_of_this_function.set_closure_addr(new_closure); nasal_vm.del_reference(new_closure); } return new_addr; } int nasal_runtime::main_progress() { int ret_state=rt_exit_without_error; int expr_number=root.get_children().size(); int process_returned_value_addr=-1; for(int i=0;i=0) value_address=nasal_vm.gc_get(local_scope_addr).get_closure().get_value_address(val_name); if(value_address<0) value_address=nasal_vm.gc_get(global_scope_address).get_closure().get_value_address(val_name); if(value_address<0) { value_address=call_builtin_function(val_name,local_scope_addr); if(value_address>=0) return value_address; } if(value_address<0) { if(builtin_func_hashmap.find(val_name)!=builtin_func_hashmap.end()) die(node.get_children()[0].get_line(),"call "+val_name+" failed"); else die(node.get_children()[0].get_line()," cannot find \""+val_name+"\""); return -1; } nasal_vm.add_reference(value_address); } else value_address=calculation(node.get_children()[0],local_scope_addr); int call_expr_size=node.get_children().size(); int last_call_hash_addr=-1; for(int i=1;i called_value_addrs; nasal_vector& reference_value=nasal_vm.gc_get(base_value_addr).get_vector(); for(int i=0;i> [runtime] call_vector: begin index is not a numerable string.\n"; ++error; return -1; } begin_index=(int)number; begin_is_nil=false; } else if(begin_value_type==vm_number) { begin_index=(int)nasal_vm.gc_get(begin_value_addr).get_number(); begin_is_nil=false; } if(end_value_type==vm_string) { std::string str=nasal_vm.gc_get(end_value_addr).get_string(); double number=trans_string_to_number(str); if(std::isnan(number)) { std::cout<<">> [runtime] call_vector: begin index is not a numerable string.\n"; ++error; return -1; } begin_index=(int)number; end_is_nil=false; } else if(end_value_type==vm_number) { end_index=(int)nasal_vm.gc_get(end_value_addr).get_number(); end_is_nil=false; } if(begin_is_nil && end_is_nil) { begin_index=0; end_index=reference_value.size()-1; } else if(begin_is_nil && !end_is_nil) { begin_index=end_index<0? -reference_value.size():0; } else if(!begin_is_nil && end_is_nil) { end_index=begin_index<0? -1:reference_value.size()-1; } else if(!begin_is_nil && !end_is_nil && begin_index>=end_index) { std::cout<<">> [runtime] call_vector: begin index must be less than end index.\n"; ++error; return -1; } for(int i=begin_index;i<=end_index;++i) called_value_addrs.push_back(reference_value.get_value_address(i)); nasal_vm.del_reference(begin_value_addr); nasal_vm.del_reference(end_value_addr); } else { int index_value_addr=calculation(node.get_children()[i],local_scope_addr); int index_value_type=nasal_vm.gc_get(index_value_addr).get_type(); if(index_value_type!=vm_number && index_value_type!=vm_string) { std::cout<<">> [runtime] call_vector: index is not a number/numerable string.\n"; ++error; return -1; } int index_num=0; if(index_value_type==vm_string) { std::string str=nasal_vm.gc_get(index_value_addr).get_string(); double number=trans_string_to_number(str); if(std::isnan(number)) { std::cout<<">> [runtime] call_vector: index is not a numerable string.\n"; ++error; return -1; } index_num=(int)number; } else index_num=(int)nasal_vm.gc_get(index_value_addr).get_number(); nasal_vm.del_reference(index_value_addr); called_value_addrs.push_back(reference_value.get_value_address(index_num)); } } // generate sub-vector if(call_size==1 && node.get_children()[0].get_type()!=ast_subvec) { int value_addr=called_value_addrs[0]; nasal_vm.add_reference(value_addr); return_value_addr=value_addr; } else { return_value_addr=nasal_vm.gc_alloc(); nasal_vm.gc_get(return_value_addr).set_type(vm_vector); nasal_vector& return_vector=nasal_vm.gc_get(return_value_addr).get_vector(); int vec_size=called_value_addrs.size(); for(int i=0;i1) { std::cout<<">> [runtime] call_vector: when calling a hash,only one key is alowed.\n"; ++error; return -1; } if(node.get_children()[0].get_type()==ast_subvec) { std::cout<<">> [runtime] call_vector: cannot slice hash.\n"; ++error; return -1; } int str_addr=calculation(node.get_children()[0],local_scope_addr); if(str_addr<0 || nasal_vm.gc_get(str_addr).get_type()!=vm_string) { std::cout<<">> [runtime] call_vector: must use a string as the key.\n"; ++error; return -1; } std::string str=nasal_vm.gc_get(str_addr).get_string(); int value_addr=nasal_vm.gc_get(base_value_addr).get_hash().get_value_address(str); nasal_vm.add_reference(value_addr); return_value_addr=value_addr; } else { if(call_size>1) { std::cout<<">> [runtime] call_vector: when calling a string,only one index is alowed.\n"; ++error; return -1; } if(node.get_children()[0].get_type()==ast_subvec) { std::cout<<">> [runtime] call_vector: cannot slice string.\n"; ++error; return -1; } int index_value_addr=calculation(node.get_children()[0],local_scope_addr); int index_value_type=nasal_vm.gc_get(index_value_addr).get_type(); if(index_value_type!=vm_number && index_value_type!=vm_string) { std::cout<<">> [runtime] call_vector: index is not a number/numerable string.\n"; ++error; return -1; } int index_num=0; if(index_value_type==vm_string) { std::string str=nasal_vm.gc_get(index_value_addr).get_string(); double number=trans_string_to_number(str); if(std::isnan(number)) { std::cout<<">> [runtime] call_vector: index is not a numerable string.\n"; ++error; return -1; } index_num=(int)number; } else index_num=(int)nasal_vm.gc_get(index_value_addr).get_number(); nasal_vm.del_reference(index_value_addr); return_value_addr=nasal_vm.gc_alloc(); nasal_vm.gc_get(return_value_addr).set_type(vm_number); std::string str=nasal_vm.gc_get(base_value_addr).get_string(); int str_size=str.length(); if(index_num>=str_size || index_num<-str_size) { std::cout<<">> [runtime] call_vector: index out of range.\n"; ++error; return -1; } nasal_vm.gc_get(return_value_addr).set_number((double)str[(index_num+str_size)%str_size]); } return return_value_addr; } int nasal_runtime::call_hash(nasal_ast& node,int base_value_addr,int local_scope_addr) { int value_type=nasal_vm.gc_get(base_value_addr).get_type(); if(value_type!=vm_hash) { std::cout<<">> [runtime] call_hash: incorrect value type,expected a hash.\n"; ++error; return -1; } int ret_value_addr=nasal_vm.gc_get(base_value_addr).get_hash().get_value_address(node.get_str()); nasal_vm.add_reference(ret_value_addr); return ret_value_addr; } int nasal_runtime::call_function(nasal_ast& node,std::string func_name,int base_value_addr,int last_call_hash_addr,int local_scope_addr) { int ret_value_addr=-1; int value_type=nasal_vm.gc_get(base_value_addr).get_type(); if(value_type!=vm_function) { std::cout<<">> [runtime] call_function: incorrect value type,expected a function.\n"; ++error; return -1; } nasal_function& reference_of_func=nasal_vm.gc_get(base_value_addr).get_func(); int run_closure_addr=reference_of_func.get_closure_addr(); nasal_closure& run_closure=nasal_vm.gc_get(run_closure_addr).get_closure(); run_closure.add_scope(); // set hash.me if(last_call_hash_addr>=0) { nasal_vm.add_reference(last_call_hash_addr); run_closure.add_new_value("me",last_call_hash_addr); } else if(func_name.length()) { // when hash.me does not exist,set self nasal_vm.add_reference(base_value_addr); run_closure.add_new_value(func_name,base_value_addr); } nasal_ast& argument_format=reference_of_func.get_arguments(); if(!node.get_children().size()) { if(argument_format.get_children().size() && argument_format.get_children()[0].get_type()!=ast_default_arg && argument_format.get_children()[0].get_type()!=ast_dynamic_id) { int size=argument_format.get_children().size(); int sum=0; for(int i=0;i> [runtime] call_function: lack at least "< args_usage_table; // check arguments in argument_format is correctly used std::map default_args_table; // check default arguments std::map default_args_node; // if one of default arguments is not in use,use default value // load arguments' name. int arg_format_size=argument_format.get_children().size(); for(int i=0;i> [runtime] call_function: identifier named \'"<::iterator i=default_args_table.begin();i!=default_args_table.end();++i) if(!i->second) { int value_addr=calculation(*default_args_node[i->first],local_scope_addr); if(value_addr<0) return -1; run_closure.add_new_value(i->first,value_addr); args_usage_table[i->first]=true; } // use null vector if dynamic-identifier haven't been initialized. if(argument_format.get_children().back().get_type()==ast_dynamic_id) { std::string dyn_str=argument_format.get_children().back().get_str(); if(!args_usage_table[dyn_str]) { args_usage_table[dyn_str]=true; int vector_value_addr=nasal_vm.gc_alloc(); nasal_vm.gc_get(vector_value_addr).set_type(vm_vector); run_closure.add_new_value(dyn_str,vector_value_addr); } } // check if each argument is initialized. for(std::map::iterator i=args_usage_table.begin();i!=args_usage_table.end();++i) if(!i->second) { std::cout<<">> [runtime] call_function: argument named \'"<first<<"\' is not in use.\n"; ++error; return -1; } } else { std::vector args; // store value address of input arguments int size=node.get_children().size(); for(int i=0;i> [runtime] call_function: error value address when generating argument list.\n"; ++error; return -1; } args.push_back(tmp_val_addr); } int arg_format_size=argument_format.get_children().size(); if(size>arg_format_size && argument_format.get_children().back().get_type()!=ast_dynamic_id) { std::cout<<">> [runtime] call_function: too much arguments.\n"; ++error; return -1; } for(int i=0;i> [runtime] call_function: lack argument(s).stop.\n"; ++error; return -1; } } else // default_args { if(i> [runtime] call_function: break and continue are not allowed to be used here.\n"; ++error; return -1; } else if(ret_state==rt_error) return -1; if(function_returned_address>=0) { ret_value_addr=function_returned_address; function_returned_address=-1; } else { ret_value_addr=nasal_vm.gc_alloc(); nasal_vm.gc_get(ret_value_addr).set_type(vm_nil); } return ret_value_addr; } int nasal_runtime::call_builtin_function(std::string val_name,int local_scope_addr) { int ret_value_addr=-1; int builtin_func_num=-1; if(builtin_func_hashmap.find(val_name)!=builtin_func_hashmap.end()) ret_value_addr=(this->*builtin_func_hashmap[val_name])(local_scope_addr); return ret_value_addr; } int nasal_runtime::call_scalar_mem(nasal_ast& node,int local_scope_addr) { int mem_address=-1; if(node.get_type()==ast_identifier) { std::string id_name=node.get_str(); if(local_scope_addr>=0) mem_address=nasal_vm.gc_get(local_scope_addr).get_closure().get_mem_address(id_name); if(mem_address<0) mem_address=nasal_vm.gc_get(global_scope_address).get_closure().get_mem_address(id_name); if(mem_address<0) { std::cout<<">> [runtime] call_scalar_mem: cannot find value named \'"<=0) mem_address=nasal_vm.gc_get(local_scope_addr).get_closure().get_mem_address(id_name); if(mem_address<0) mem_address=nasal_vm.gc_get(global_scope_address).get_closure().get_mem_address(id_name); if(mem_address<0) { std::cout<<">> [runtime] call_scalar_mem: cannot find value named \'"<> [runtime] call_scalar_mem: cannot change the value that function returns.\n"; ++error; return -1; break; } mem_address=tmp_mem_addr; if(mem_address<0) { ++error; std::cout<<">> [runtime] call_scalar_mem: cannot find correct memory space.\n"; break; } } return mem_address; } int nasal_runtime::call_vector_mem(nasal_ast& node,int base_mem_addr,int local_scope_addr) { int return_mem_addr=-1; int base_value_addr=nasal_vm.mem_get(base_mem_addr); int base_value_type=nasal_vm.gc_get(base_value_addr).get_type(); if(base_value_type!=vm_vector && base_value_type!=vm_hash) { std::cout<<">> [runtime] call_vector_mem: incorrect value type,expected a vector/hash.\n"; ++error; return -1; } int call_size=node.get_children().size(); if(call_size>1) { std::cout<<">> [runtime] call_vector_mem: when searching a memory space in a vector,only one index is alowed.\n"; ++error; return -1; } if(base_value_type==vm_vector) { nasal_vector& reference_value=nasal_vm.gc_get(base_value_addr).get_vector(); if(node.get_children()[0].get_type()==ast_subvec) { std::cout<<">> [runtime] call_vector_mem: sub-vector in this progress is a temporary value and cannot be changed.\n"; ++error; return -1; } int index_value_addr=calculation(node.get_children()[0],local_scope_addr); int index_value_type=nasal_vm.gc_get(index_value_addr).get_type(); if(index_value_type!=vm_number && index_value_type!=vm_string) { std::cout<<">> [runtime] call_vector_mem: index is not a number/numerable string.\n"; ++error; return -1; } int index_num=0; if(index_value_type==vm_string) { std::string str=nasal_vm.gc_get(index_value_addr).get_string(); double number=trans_string_to_number(str); if(std::isnan(number)) { std::cout<<">> [runtime] call_vector_mem: index is not a numerable string.\n"; ++error; return -1; } index_num=(int)number; } else index_num=(int)nasal_vm.gc_get(index_value_addr).get_number(); nasal_vm.del_reference(index_value_addr); return_mem_addr=reference_value.get_mem_address(index_num); } else { if(call_size>1) { std::cout<<">> [runtime] call_vector_mem: when calling a hash,only one key is alowed.\n"; ++error; return -1; } int str_addr=calculation(node.get_children()[0],local_scope_addr); if(str_addr<0 || nasal_vm.gc_get(str_addr).get_type()!=vm_string) { std::cout<<">> [runtime] call_vector_mem: must use a string as the key.\n"; ++error; return -1; } std::string str=nasal_vm.gc_get(str_addr).get_string(); return_mem_addr=nasal_vm.gc_get(base_value_addr).get_hash().get_mem_address(str); } return return_mem_addr; } int nasal_runtime::call_hash_mem(nasal_ast& node,int base_mem_addr,int local_scope_addr) { int base_value_addr=nasal_vm.mem_get(base_mem_addr); int value_type=nasal_vm.gc_get(base_value_addr).get_type(); if(value_type!=vm_hash) { std::cout<<">> [runtime] call_hash_mem: incorrect value type,expected a hash.\n"; ++error; return -1; } int ret_mem_addr=nasal_vm.gc_get(base_value_addr).get_hash().get_mem_address(node.get_str()); return ret_mem_addr; } int nasal_runtime::calculation(nasal_ast& node,int local_scope_addr) { // after this process, a new address(in nasal_vm.garbage_collector_memory) will be returned int ret_address=-1; int calculation_type=node.get_type(); if(calculation_type==ast_null) { ret_address=nasal_vm.gc_alloc(); nasal_vm.gc_get(ret_address).set_type(vm_number); nasal_vm.gc_get(ret_address).set_number(1); } else if(calculation_type==ast_nil) { ret_address=nasal_vm.gc_alloc(); nasal_vm.gc_get(ret_address).set_type(vm_nil); } else if(calculation_type==ast_number) { ret_address=nasal_vm.gc_alloc(); nasal_vm.gc_get(ret_address).set_type(vm_number); nasal_vm.gc_get(ret_address).set_number(node.get_num()); } else if(calculation_type==ast_string) { ret_address=nasal_vm.gc_alloc(); nasal_vm.gc_get(ret_address).set_type(vm_string); nasal_vm.gc_get(ret_address).set_string(node.get_str()); } else if(calculation_type==ast_identifier) { if(local_scope_addr>=0) ret_address=nasal_vm.gc_get(local_scope_addr).get_closure().get_value_address(node.get_str()); if(ret_address<0) ret_address=nasal_vm.gc_get(global_scope_address).get_closure().get_value_address(node.get_str()); if(ret_address<0) { std::cout<<">> [runtime] calculation: cannot find value named \'"<> [runtime] calculation: expression type:"<> [runtime] definition: one identifier cannot accept too many values.\n"; ++error; return; } if(define_node.get_type()==ast_identifier) { std::string new_name=define_node.get_str(); int value_addr=calculation(value_node,local_scope_addr); if(value_addr<0) return; nasal_vm.gc_get(local_scope_addr<0?global_scope_address:local_scope_addr).get_closure().add_new_value(new_name,value_addr); } else { std::vector identifier_table; int id_size=define_node.get_children().size(); for(int i=0;i> [runtime] definition: size of identifiers and size of values do not match.\n"; ++error; return; } for(int i=0;i> [runtime] definition: must use vector in multi-definition.\n"; ++error; return; } nasal_vector& ref_vector=nasal_vm.gc_get(value_addr).get_vector(); if(ref_vector.size()!=id_size) { std::cout<<">> [runtime] definition: size of identifiers and size of values do not match.\n"; ++error; return; } for(int i=0;i mem_table; int id_size=multi_call_node.get_children().size(); for(int i=0;i> [runtime] multi_assignment: multi-assignment must use available memory address.\n"; ++error; return; } mem_table.push_back(call_scalar_mem(tmp_node,local_scope_addr)); } if(value_node.get_type()==ast_multi_scalar) { int val_size=value_node.get_children().size(); if(id_size!=val_size) { std::cout<<">> [runtime] multi_assignment: size of calls and size of values do not match.\n"; ++error; return; } std::vector value_table; for(int i=0;i> [runtime] multi_assignment: must use vector in multi-assignment.\n"; ++error; return; } nasal_vector& ref_vector=nasal_vm.gc_get(value_addr).get_vector(); if(ref_vector.size()!=id_size) { std::cout<<">> [runtime] multi_assignment: size of calls and size of values do not match.\n"; ++error; return; } std::vector value_table; for(int i=0;i