// // cfperl.h perl interface // #ifndef CFPERL_H__ #define CFPERL_H__ #include using namespace std; #include #include #include #include #include #include "util.h" #include "keyword.h" #include "dynbuf.h" #include "callback.h" ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////// // optimisations/workaround for functions requiring my_perl in scope (anti-bloat) #undef localtime #undef srand48 #undef drand48 #undef srandom #undef readdir #undef getprotobyname #undef gethostbyname #undef ctime #undef strerror // same here, massive symbol spamming #undef do_open #undef do_close #undef ref #undef seed // perl bug #40256: perl does overwrite those with reentrant versions // but does not initialise their state structures. #undef random #undef crypt ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////// // some macros to simplify perl in-calls #define CHECK_ERROR \ if (SvTRUE (ERRSV)) \ LOG (llevError, "runtime error in %s: %s\n", __func__, SvPVutf8_nolen (ERRSV)); #define CALL_BEGIN(args) dSP; ENTER; SAVETMPS; PUSHMARK (SP); EXTEND (SP, args) #define CALL_ARG_SV(sv) PUSHs (sv_2mortal (sv)) // separate because no refcount inc #define CALL_ARG(expr) PUSHs (sv_2mortal (to_sv (expr))) #define CALL_CALL(name, flags) PUTBACK; int count = call_pv (name, (flags) | G_EVAL); SPAGAIN; #define CALL_END CHECK_ERROR; FREETMPS; LEAVE ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////// void cfperl_init (); void cfperl_main (); void cfperl_emergency_save (); ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////// // virtual server time, excluding time jumps and lag extern double runtime; enum event_klass { KLASS_NONE, KLASS_GLOBAL, KLASS_ATTACHABLE, KLASS_CLIENT, KLASS_PLAYER, KLASS_OBJECT, KLASS_MAP, KLASS_COMMAND, }; enum event_type { # define def(klass,name) EVENT_ ## klass ## _ ## name, # include "eventinc.h" # undef def NUM_EVENT_TYPES }; #define ARG_AV(o) DT_AV , static_cast (o) #define ARG_INT(v) DT_INT , static_cast (v) #define ARG_INT64(v) DT_INT64 , static_cast (v) #define ARG_DOUBLE(v) DT_DOUBLE, static_cast (v) #define ARG_STRING(v) DT_STRING, static_cast (v) #define ARG_DATA(s,l) DT_DATA , static_cast (s), int (l) #define ARG_OBJECT(o) DT_OBJECT, (void *)(static_cast (o)) #define ARG_MAP(o) DT_MAP , (void *)(static_cast (o)) #define ARG_PLAYER(o) DT_PLAYER, (void *)(static_cast (o)) #define ARG_ARCH(o) DT_ARCH , (void *)(static_cast (o)) #define ARG_CLIENT(o) DT_CLIENT, (void *)(static_cast (o)) #define ARG_PARTY(o) DT_PARTY , (void *)(static_cast (o)) #define ARG_REGION(o) DT_REGION, (void *)(static_cast (o)) // the ", ## __VA_ARGS" is, unfortunately, a gnu-cpp extension // all these return true when the normal event processing should be skipped (if any) #define INVOKE_GLOBAL(event, ...) gbl_ev.invoke (EVENT_ ## GLOBAL ## _ ## event, ## __VA_ARGS__, DT_END) #define INVOKE_ATTACHABLE(event, obj, ...) (obj)->invoke (EVENT_ ## ATTACHABLE ## _ ## event, ## __VA_ARGS__, DT_END) #define INVOKE_OBJECT(event, obj, ...) (obj)->invoke (EVENT_ ## OBJECT ## _ ## event, ## __VA_ARGS__, DT_END) #define INVOKE_CLIENT(event, obj, ...) (obj)->invoke (EVENT_ ## CLIENT ## _ ## event, ## __VA_ARGS__, DT_END) #define INVOKE_PLAYER(event, obj, ...) (obj)->invoke (EVENT_ ## PLAYER ## _ ## event, ## __VA_ARGS__, DT_END) #define INVOKE_MAP(event, obj, ...) (obj)->invoke (EVENT_ ## MAP ## _ ## event, ## __VA_ARGS__, DT_END) //TODO should index into @result #define RESULT(idx,type) cfperl_result_ ## type (idx) #define RESULT_DOUBLE(idx) RESULT(idx, DOUBLE) #define RESULT_INT(idx) RESULT(idx, INT) double cfperl_result_DOUBLE (int idx); int cfperl_result_INT (int idx); ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////// INTERFACE_CLASS (attachable) struct attachable { static MGVTBL vtbl; static unordered_vector mortals; MTH static void check_mortals (); enum { F_DESTROYED = 0x01, F_DEBUG_TRACE = 0x02, }; // object is delete'd after the refcount reaches 0 mutable int ACC (RW, refcnt); int ACC (RW, flags); MTH void refcnt_inc () const { ++refcnt; } MTH void refcnt_dec () const { --refcnt; } MTH int refcnt_cnt () const; // check wether the object has died and destroy MTH void refcnt_chk () { if (refcnt <= 0) do_check (); } // destroy the object unless it was already destroyed // this politely asks everybody interested the reduce // the refcount to 0 as soon as possible. MTH void destroy (); // return wether an object was destroyed already MTH bool destroyed () const { return flags & F_DESTROYED; } virtual void gather_callbacks (AV *&callbacks, event_type event) const; #if 0 private: static refcounted *rc_first; refcounted *rc_next; #endif HV *self; // CF+ perl self AV *cb; // CF+ callbacks shstr attach; // generic extension attachment information void sever_self (); // sever this object from its self, if it has one. void optimise (); // possibly save some memory by destroying unneeded data attachable () : flags (0), refcnt (0), self (0), cb (0), attach (0) { } attachable (const attachable &src) : flags (0), refcnt (0), self (0), cb (0), attach (src.attach) { } virtual ~attachable (); attachable &operator =(const attachable &src); bool invoke (event_type event, ...); MTH void instantiate (); void reattach (); protected: // do the real refcount checking work void do_check (); // the method that does the real destroy work virtual void do_destroy (); }; // the global object is a pseudo object that cares for the global events struct global : attachable { void gather_callbacks (AV *&callbacks, event_type event) const; }; extern struct global gbl_ev; ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////// struct object_freezer : dynbuf { AV *av; object_freezer (); ~object_freezer (); void put (attachable *ext); // used only for user-defined key-value pairs void put (const shstr &k, const shstr &v) { add (k); if (v) add (' '), add (v); add ('\n'); } //TODO//temporary, used only for saving body locations void put (const char *k, int v) { add (k); add (' '); add (sint32 (v)); add ('\n'); } template void put_string (keyword k, const T &v) { int klen = keyword_len [k]; int vlen = v ? strlen (v) + 1 : 0; char *p = (char *)alloc (klen + vlen + 1); memcpy (p, keyword_str [k], klen); p += klen; if (v) { *p++ = ' '; vlen--; memcpy (p, v, vlen); p += vlen; } *p = '\n'; } void put (keyword k, const char *v = 0) { put_string (k, v); } void put (keyword k, const shstr &v) { put_string (k, v); } void put (keyword k, double v) { char buf [128]; snprintf (buf, 128, "%.7g", v); put (k, (const char *)buf); } void put_(keyword k, sint64 v) { add (keyword_str [k], keyword_len [k]); add (' '); add (v); add ('\n'); } void put_(keyword k, sint32 v) { add (keyword_str [k], keyword_len [k]); add (' '); add (v); add ('\n'); } void put (keyword kbeg, keyword kend, const shstr &v) { add (keyword_str [kbeg], keyword_len [kbeg]); add ('\n'); if (v) { add (v); add ('\n'); } add (keyword_str [kend], keyword_len [kend]); add ('\n'); } void put (keyword k, float v) { put (k, (double)v); } void put (keyword k, signed char v) { put_(k, (sint32)v); } void put (keyword k, unsigned char v) { put_(k, (sint32)v); } void put (keyword k, signed short v) { put_(k, (sint32)v); } void put (keyword k, unsigned short v) { put_(k, (sint32)v); } void put (keyword k, signed int v) { put_(k, (sint32)v); } void put (keyword k, unsigned int v) { put_(k, (sint64)v); } void put (keyword k, signed long v) { put_(k, (sint64)v); } void put (keyword k, unsigned long v) { put_(k, (sint64)v); } void put (keyword k, signed long long v) { put_(k, (sint64)v); } void put (keyword k, unsigned long long v) { put_(k, (sint64)v); } template void put (keyword k, const T *v) { if (v) put (k, v->name); else put (k, (const char *)0); } template void put (keyword k, const refptr &v) { put (k, (T *)v); } bool save (const char *path); char *as_string (); // like strdup operator bool () { return !!av; } }; // compatibility support, should be removed when no longer needed int fprintf (object_freezer &freezer, const char *format, ...); int fputs (const char *s, object_freezer &freezer); struct object_thawer { SV *text; // text part AV *av; // perl part int linenum; char *line; // current beginning of line char *last_keyword, *last_value; const char *name; operator bool () { return !!text; } object_thawer (const char *path = 0); object_thawer (const char *data, AV *perlav); ~object_thawer (); void get (attachable *obj, int oid); keyword get_kv (); // also parse value for later use void skip_kv (keyword kw); const char *get_str () { return last_value; } // may be 0 void get (shstr &sh) const; void get_ornull (shstr &sh) const { sh = last_value; } void get_ml (keyword kend, shstr &sh); sint32 get_sint32 () const; sint64 get_sint64 () const; double get_double () const; void get (float &v) { v = get_double (); } void get (double &v) { v = get_double (); } void get (bool &i) { i = get_sint32 (); } void get (sint8 &i) { i = get_sint32 (); } void get (uint8 &i) { i = get_sint32 (); } void get (sint16 &i) { i = get_sint32 (); } void get (uint16 &i) { i = get_sint32 (); } void get (sint32 &i) { i = get_sint32 (); } void get (uint32 &i) { i = get_sint64 (); } void get (sint64 &i) { i = get_sint64 (); } bool parse_error (keyword kw, const char *type = 0, const char *name = 0, bool skip = true); }; //TODO: remove char *fgets (char *s, int n, object_thawer &thawer); ////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////////// struct coroapi { static struct CoroAPI *GCoroAPI; static int nready () { return CORO_NREADY; } static int cede () { return CORO_CEDE ; } static int cede_counter; static void cede_every (int count) { if (++cede_counter >= count) { cede_counter = 0; if (coroapi::nready ()) coroapi::cede (); } } }; struct watcher_base { static struct EventAPI *GEventAPI; }; template struct watcher : watcher_base { base *pe; void start (bool repeat = false) { GEventAPI->start ((pe_watcher *)pe, repeat); } void stop (bool cancel_events = false) { GEventAPI->stop ((pe_watcher *)pe, cancel_events); } void now () { GEventAPI->now ((pe_watcher *)pe); } void suspend () { GEventAPI->suspend ((pe_watcher *)pe); } void resume () { GEventAPI->resume ((pe_watcher *)pe); } void prio (int new_prio) { ((pe_watcher *)pe)->prio = new_prio; } ~watcher () { cancel (); } private: void cancel () { GEventAPI->cancel ((pe_watcher *)pe); } // private }; struct iw : watcher, callback { template iw (O object, M method) : callback (object, method) { alloc (); } private: void alloc (); }; struct iow : watcher, callback { template iow (O object, M method) : callback (object, method) { alloc (); } void fd (int fd); int poll (); void poll (int events); private: void alloc (); }; #endif