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Diff for /pegasus/src/Pegasus/Common/Thread.h between version 1.1.2.7 and 1.27

version 1.1.2.7, 2001/08/16 14:10:46 version 1.27, 2003/06/14 19:25:38
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 //%///////////-*-c++-*-//////////////////////////////////////////////////////  //%/-*-c++-*-////////////////////////////////////////////////////////////////////////////
 // //
 // Copyright (c) 2000, 2001 The Open group, BMC Software, Tivoli Systems, IBM  // Copyright (c) 2000, 2001, 2002 BMC Software, Hewlett-Packard Company, IBM,
   // The Open Group, Tivoli Systems
 // //
 // Permission is hereby granted, free of charge, to any person obtaining a copy // Permission is hereby granted, free of charge, to any person obtaining a copy
 // of this software and associated documentation files (the "Software"), to // of this software and associated documentation files (the "Software"), to
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 // //
 //%///////////////////////////////////////////////////////////////////////////// //%/////////////////////////////////////////////////////////////////////////////
  
   
 #ifndef Pegasus_Thread_h #ifndef Pegasus_Thread_h
 #define Pegasus_Thread_h #define Pegasus_Thread_h
  
 #include <Pegasus/Common/IPC.h>  #include <cstring>
 #include <Pegasus/Common/Config.h> #include <Pegasus/Common/Config.h>
 #include <Pegasus/Common/Exception.h>  #include <Pegasus/Common/IPC.h>
   #include <Pegasus/Common/InternalException.h>
 #include <Pegasus/Common/DQueue.h> #include <Pegasus/Common/DQueue.h>
   #include <Pegasus/Common/Linkage.h>
  
 PEGASUS_NAMESPACE_BEGIN PEGASUS_NAMESPACE_BEGIN
  
 class PEGASUS_EXPORT cleanup_handler  class PEGASUS_COMMON_LINKAGE cleanup_handler
 { {
  
    public:    public:
       cleanup_handler( void (*routine)(void *), void *arg  ) : _routine(routine), _arg(arg)  {}       cleanup_handler( void (*routine)(void *), void *arg  ) : _routine(routine), _arg(arg)  {}
       ~cleanup_handler()  {; }       ~cleanup_handler()  {; }
   
    private:  
       void execute(void) { _routine(_arg); }  
       cleanup_handler();  
       void (*_routine)(void *);  
       inline Boolean operator==(const void *key) const       inline Boolean operator==(const void *key) const
       {       {
          if(key == (void *)_routine)          if(key == (void *)_routine)
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       {       {
          return(operator==((const void *)b._routine));          return(operator==((const void *)b._routine));
       }       }
      private:
         void execute(void) { _routine(_arg); }
         cleanup_handler();
         void (*_routine)(void *);
   
       void *_arg;       void *_arg;
       PEGASUS_CLEANUP_HANDLE _cleanup_buffer;       PEGASUS_CLEANUP_HANDLE _cleanup_buffer;
       friend DQueue<class cleanup_handler>;        friend class DQueue<class cleanup_handler>;
       friend class Thread;       friend class Thread;
 }; };
  
 /////////////////////////////////////////////////////////////////////////////// ///////////////////////////////////////////////////////////////////////////////
  
 class PEGASUS_EXPORT SimpleThread  
 {  
   
    public:  
       SimpleThread( PEGASUS_THREAD_RETURN (PEGASUS_THREAD_CDECL *start )(void *),  
                     void *parameter, Boolean detached );  
   
       ~SimpleThread();  
   
       void run(void);  
   
       Uint32 threadId(void);  
   
       // get the user parameter  
       void *get_parm(void);  
   
       // cancellation must be deferred (not asynchronous)  
       // for user-level threads the thread itself can decide  
       // when it should die.  
       void cancel(void);  
   
       void kill(int signum);  
   
       // cancel if there is a pending cancellation request  
       void test_cancel(void);  
   
       // for user-level threads  - put the calling thread  
       // to sleep and jump to the thread scheduler.  
       // platforms with preemptive scheduling and native threads  
       // can define this to be a no-op.  
       // platforms without preemptive scheduling like NetWare  
       // or gnu portable threads will have an existing  
       // routine that can be mapped to this method  
   
       void thread_switch(void);  
   
       // suspend this thread  
       void suspend(void) ;  
   
       // resume this thread  
       void resume(void) ;  
   
       void sleep(Uint32 msec) ;  
   
       // block the calling thread until this thread terminates  
       void join( PEGASUS_THREAD_RETURN *ret_val);  
   
   
       // stack of functions to be called when thread terminates  
       // will be called last in first out (LIFO)  
       void cleanup_push( void (*routine) (void *), void *parm );  
       void cleanup_pop(Boolean execute) ;  
   
       PEGASUS_THREAD_TYPE self(void) ;  
   
    private:  
       SimpleThread();  
   
       PEGASUS_THREAD_HANDLE _handle;  
       Boolean _is_detached;  
       Boolean _cancel_enabled;  
       Boolean _cancelled;  
   
       //PEGASUS_SEM_HANDLE _suspend_count;  
       Semaphore _suspend;  
   
       // always pass this * as the void * parameter to the thread  
       // store the user parameter in _thread_parm  
   
       PEGASUS_THREAD_RETURN  ( PEGASUS_THREAD_CDECL *_start)(void *) ;  
   
       void *_thread_parm;  
 } ;  
   
 ///////////////////////////////////////////////////////////////////////////////  
   
 static void default_delete(void * data) { delete [] (char *) data; }  
  
 class  PEGASUS_EXPORT thread_data  class  PEGASUS_COMMON_LINKAGE thread_data
 { {
  
    public:    public:
       thread_data( Sint8 *key ) : _delete_func(NULL) , _data(NULL), _size(0)        static void default_delete(void *data);
   
         thread_data( const Sint8 *key ) : _delete_func(NULL) , _data(NULL), _size(0)
       {       {
          PEGASUS_ASSERT(key != NULL);          PEGASUS_ASSERT(key != NULL);
          _key = strdup(key) ;           size_t keysize = strlen(key);
            _key = new Sint8 [keysize + 1];
            memcpy(_key, key, keysize);
            _key[keysize] = 0x00;
   
       }       }
  
       thread_data(Sint8 *key, int size)        thread_data(const Sint8 *key, size_t size) : _delete_func(default_delete), _size(size)
       {       {
          PEGASUS_ASSERT(key != NULL);          PEGASUS_ASSERT(key != NULL);
          _delete_func = default_delete;           size_t keysize = strlen(key);
          _data = new char [size];           _key = new Sint8 [keysize + 1];
          _size = size;           memcpy(_key, key, keysize);
            _key[keysize] = 0x00;
            _data = ::operator new(_size) ;
   
       }       }
  
       thread_data(Sint8 *key, int size, void *data)        thread_data(const Sint8 *key, size_t size, void *data) : _delete_func(default_delete), _size(size)
       {       {
          PEGASUS_ASSERT(key != NULL);          PEGASUS_ASSERT(key != NULL);
          PEGASUS_ASSERT(data != NULL);          PEGASUS_ASSERT(data != NULL);
          _delete_func = default_delete;           size_t keysize = strlen(key);
          _data = new char [size];  
            _key = new Sint8[keysize + 1];
            memcpy(_key, key, keysize);
            _key[keysize] = 0x00;
            _data = ::operator new(_size);
          memcpy(_data, data, size);          memcpy(_data, data, size);
          _size = size;  
       }       }
  
       ~thread_data() { if( _data != NULL) _delete_func( _data ); }        ~thread_data()
         {
            if( _data != NULL)
               if(_delete_func != NULL)
               {
                  _delete_func( _data );
               }
            if( _key != NULL )
               delete [] _key;
         }
  
       void *get_data(void );        void put_data(void (*del)(void *), size_t size, void *data ) throw(NullPointer)
       Uint32 get_size(void);  
       void *put_data(void (*delete_func) (void *), Uint32 size, void *data  )  
       {       {
          void *old_data = data;           if(_data != NULL)
          _delete_func = delete_func;              if(_delete_func != NULL)
                  _delete_func(_data);
   
            _delete_func = del;
          _data = data;          _data = data;
          _size = size;          _size = size;
          return(old_data);           return ;
       }       }
   
         size_t get_size(void) { return _size; }
   
         void get_data(void **data, size_t *size)
         {
            if(data == NULL || size == NULL)
               throw NullPointer();
   
            *data = _data;
            *size = _size;
            return;
   
         }
   
         void copy_data(void **buf, size_t *size) throw(NullPointer)
         {
            if((buf == NULL) || (size == NULL))
               throw NullPointer() ;
            *buf = ::operator new(_size);
            *size = _size;
            memcpy(*buf, _data, _size);
            return;
         }
   
       inline Boolean operator==(const void *key) const       inline Boolean operator==(const void *key) const
       {       {
          if ( ! strcmp(_key, (Sint8 *)key))          if ( ! strcmp(_key, (Sint8 *)key))
             return(true);             return(true);
          return(false);          return(false);
       }       }
   
       inline Boolean operator==(const thread_data& b) const       inline Boolean operator==(const thread_data& b) const
       {       {
          return(operator==((const void *)b._key));          return(operator==((const void *)b._key));
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       void (*_delete_func) (void *data) ;       void (*_delete_func) (void *data) ;
       thread_data();       thread_data();
       void *_data;       void *_data;
       Uint32 _size;        size_t _size;
       Sint8 *_key;       Sint8 *_key;
       friend DQueue<thread_data>;  
         friend class DQueue<thread_data>;
       friend class Thread;       friend class Thread;
 }; };
  
  
 /////////////////////////////////////////////////////////////////////////// ///////////////////////////////////////////////////////////////////////////
  
 class PEGASUS_EXPORT Thread  class PEGASUS_COMMON_LINKAGE ThreadPool;
   
   class PEGASUS_COMMON_LINKAGE Thread
 { {
  
    public:    public:
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       // cancel if there is a pending cancellation request       // cancel if there is a pending cancellation request
       void test_cancel(void);       void test_cancel(void);
  
         Boolean is_cancelled(void);
   
       // for user-level threads  - put the calling thread       // for user-level threads  - put the calling thread
       // to sleep and jump to the thread scheduler.       // to sleep and jump to the thread scheduler.
       // platforms with preemptive scheduling and native threads       // platforms with preemptive scheduling and native threads
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       void thread_switch(void);       void thread_switch(void);
  
   #if defined(PEGASUS_PLATFORM_LINUX_GENERIC_GNU)
       // suspend this thread       // suspend this thread
       // void suspend(void) ;        void suspend(void) ;
  
       // resume this thread       // resume this thread
       // void resume(void) ;        void resume(void) ;
   #endif
  
       void sleep(Uint32 msec) ;        static void sleep(Uint32 msec) ;
  
       // block the calling thread until this thread terminates       // block the calling thread until this thread terminates
       void join( void );       void join( void );
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       void cleanup_pop(Boolean execute = true) throw(IPCException);       void cleanup_pop(Boolean execute = true) throw(IPCException);
  
       // create and initialize a tsd       // create and initialize a tsd
       inline void create_tsd(Sint8 *key, int size, void *buffer) throw(IPCException)        inline void create_tsd(const Sint8 *key, int size, void *buffer) throw(IPCException)
       {       {
          thread_data *tsd = new thread_data(key, size, buffer);          thread_data *tsd = new thread_data(key, size, buffer);
          try { _tsd.insert_first(tsd); }          try { _tsd.insert_first(tsd); }
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       // get the buffer associated with the key       // get the buffer associated with the key
       // NOTE: this call leaves the tsd LOCKED !!!!       // NOTE: this call leaves the tsd LOCKED !!!!
       inline void *reference_tsd(Sint8 *key) throw(IPCException)        inline void *reference_tsd(const Sint8 *key) throw(IPCException)
       {       {
          _tsd.lock();          _tsd.lock();
          thread_data *tsd = _tsd.reference((void *)key);           thread_data *tsd = _tsd.reference((const void *)key);
          if(tsd != NULL)          if(tsd != NULL)
             return( (void *)(tsd->_data) );             return( (void *)(tsd->_data) );
          else          else
             return(NULL);             return(NULL);
       }       }
  
         inline void *try_reference_tsd(const Sint8 *key) throw(IPCException)
         {
            _tsd.try_lock();
            thread_data *tsd = _tsd.reference((const void *)key);
            if(tsd != NULL)
               return((void *)(tsd->_data) );
            else
               return(NULL);
         }
   
   
       // release the lock held on the tsd       // release the lock held on the tsd
       // NOTE: assumes a corresponding and prior call to reference_tsd() !!!       // NOTE: assumes a corresponding and prior call to reference_tsd() !!!
       inline void dereference_tsd(void) throw(IPCException)       inline void dereference_tsd(void) throw(IPCException)
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       }       }
  
       // delete the tsd associated with the key       // delete the tsd associated with the key
       inline void delete_tsd(Sint8 *key) throw(IPCException)        inline void delete_tsd(const Sint8 *key) throw(IPCException)
       {       {
          thread_data *tsd = _tsd.remove((void *)key);           thread_data *tsd = _tsd.remove((const void *)key);
          if(tsd != NULL)          if(tsd != NULL)
             delete tsd;             delete tsd;
       }       }
  
         // Note: Caller must delete the thread_data object returned (if not null)
         inline void *remove_tsd(const Sint8 *key) throw(IPCException)
         {
            return(_tsd.remove((const void *)key));
         }
   
         inline void empty_tsd(void) throw(IPCException)
         {
            thread_data* tsd;
            while (0 != (tsd = _tsd.remove_first()))
            {
               delete tsd;
            }
            //_tsd.empty_list();
         }
   
       // create or re-initialize tsd associated with the key       // create or re-initialize tsd associated with the key
       // if the tsd already exists, return the existing buffer        // if the tsd already exists, delete the existing buffer
       thread_data *put_tsd(Sint8 *key, void (*delete_func)(void *), Uint32 size, void *value)        void put_tsd(const Sint8 *key, void (*delete_func)(void *), Uint32 size, void *value)
          throw(IPCException)          throw(IPCException)
  
       {       {
          PEGASUS_ASSERT(key != NULL);          PEGASUS_ASSERT(key != NULL);
          PEGASUS_ASSERT(delete_func != NULL);  
          thread_data *tsd ;          thread_data *tsd ;
          tsd = _tsd.remove((void *)key);  // may throw an IPC exception           tsd = _tsd.remove((const void *)key);  // may throw an IPC exception
            delete tsd;
          thread_data *ntsd = new thread_data(key);          thread_data *ntsd = new thread_data(key);
          ntsd->put_data(delete_func, size, value);          ntsd->put_data(delete_func, size, value);
          try { _tsd.insert_first(ntsd); }          try { _tsd.insert_first(ntsd); }
          catch(IPCException& e) { e = e; delete ntsd; throw; }          catch(IPCException& e) { e = e; delete ntsd; throw; }
          return(tsd);  
       }       }
       inline PEGASUS_THREAD_RETURN get_exit(void) { return _exit_code; }       inline PEGASUS_THREAD_RETURN get_exit(void) { return _exit_code; }
       inline PEGASUS_THREAD_TYPE self(void) {return pegasus_thread_self(); }       inline PEGASUS_THREAD_TYPE self(void) {return pegasus_thread_self(); }
  
         PEGASUS_THREAD_HANDLE getThreadHandle() {return _handle;}
   
         inline Boolean operator==(const void *key) const
         {
            if ( (void *)this == key)
               return(true);
            return(false);
         }
         inline Boolean operator==(const Thread & b) const
         {
            return(operator==((const void *)&b ));
         }
   
         void detach(void);
   
    private:    private:
       Thread();       Thread();
       inline void create_tsd(Sint8 *key ) throw(IPCException)        inline void create_tsd(const Sint8 *key ) throw(IPCException)
       {       {
          thread_data *tsd = new thread_data(key);          thread_data *tsd = new thread_data(key);
          try { _tsd.insert_first(tsd); }          try { _tsd.insert_first(tsd); }
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       void *_thread_parm;       void *_thread_parm;
       PEGASUS_THREAD_RETURN _exit_code;       PEGASUS_THREAD_RETURN _exit_code;
       static Boolean _signals_blocked;       static Boolean _signals_blocked;
         friend class ThreadPool;
 } ; } ;
  
  
 #if 0  class PEGASUS_COMMON_LINKAGE ThreadPool
 class PEGASUS_EXPORT Aggregator {  {
   
    public:    public:
  
       Aggregator();        ThreadPool(Sint16 initial_size,
       ~Aggregator();                   const Sint8 *key,
                    Sint16 min,
                    Sint16 max,
                    struct timeval & alloc_wait,
                    struct timeval & dealloc_wait,
                    struct timeval & deadlock_detect);
   
         ~ThreadPool(void);
   
         void allocate_and_awaken(void *parm,
                                  PEGASUS_THREAD_RETURN (PEGASUS_THREAD_CDECL *work)(void *),
                                  Semaphore *blocking = 0)
            throw(IPCException);
  
       void started(void);  
       void completed(void);  
       void remaining(int operations);  
       void put_result(CIMReference *ref);  
  
    private:        Uint32 kill_dead_threads( void )
       int _reference_count;           throw(IPCException);
  
       // keep track of the thread running this operation so we can kill        void get_key(Sint8 *buf, int bufsize);
       // it if necessary  
       Thread _owner;        inline Boolean operator==(const void *key) const
         {
       // this is a phased aggregate. when it is complete is will           if ( ! strncmp( reinterpret_cast<Sint8 *>(const_cast<void *>(key)), _key, 16  ))
       // be streamed to the client regardless of the state of              return(true);
       // siblings           return(false);
       Boolean _is_phased;        }
         inline Boolean operator==(const ThreadPool & b) const
       int _total_values;        {
       int _completed_values;           return(operator==((const void *) b._key ));
       int _total_child_values;        }
       int _completed_child_values;  
       int _completion_state;        inline void set_min_threads(Sint16 min)
       struct timeval _last_update;        {
       time_t lifetime;           _min_threads = min;
       Aggregator *_parent;        }
       // children may be phased or not phased  
       DQueue _children;        inline Sint16 get_min_threads(void) const
       // empty results that are filled by provider        {
       DQueue _results;           return _min_threads;
       // array of predicates for events and        }
       // stored queries (cursors)  
       Array _filter;        inline void set_max_threads(Sint16 max)
         {
            _max_threads = max;
         }
   
         inline Sint16 get_max_threads(void) const
         {
            return _max_threads;
         }
   
         inline void set_allocate_wait(const struct timeval & alloc_wait)
         {
            _allocate_wait.tv_sec = alloc_wait.tv_sec;
            _allocate_wait.tv_usec = alloc_wait.tv_usec;
         }
   
         inline struct timeval *get_allocate_wait(struct timeval *buffer) const
         {
            if(buffer == 0)
               throw NullPointer();
            buffer->tv_sec = _allocate_wait.tv_sec;
            buffer->tv_usec = _allocate_wait.tv_usec;
            return buffer;
         }
   
         inline void set_deallocate_wait(const struct timeval & dealloc_wait)
         {
            _deallocate_wait.tv_sec = dealloc_wait.tv_sec;
            _deallocate_wait.tv_usec = dealloc_wait.tv_usec;
         }
   
         inline struct timeval *get_deallocate_wait(struct timeval *buffer) const
         {
            if(buffer == 0)
               throw NullPointer();
            buffer->tv_sec = _deallocate_wait.tv_sec;
            buffer->tv_usec = _deallocate_wait.tv_usec;
            return buffer;
         }
   
         inline void set_deadlock_detect(const struct timeval & deadlock)
         {
            _deadlock_detect.tv_sec = deadlock.tv_sec;
            _deadlock_detect.tv_usec = deadlock.tv_usec;
         }
   
         inline struct timeval * get_deadlock_detect(struct timeval *buffer) const
         {
            if(buffer == 0)
               throw NullPointer();
            buffer->tv_sec = _deadlock_detect.tv_sec;
            buffer->tv_usec = _deadlock_detect.tv_usec;
            return buffer;
         }
   
         inline Uint32 running_count(void)
         {
            return _running.count();
         }
   
         inline Uint32 pool_count(void)
           {
             return _pool.count();
           }
         inline Uint32 dead_count(void)
           {
             return _dead.count();
           }
   
   
         static Boolean check_time(struct timeval *start, struct timeval *interval);
   
         Boolean operator ==(const ThreadPool & p)
         {
            return operator==((const void *)&p);
         }
   
         Boolean operator ==(const void *p)
         {
            if((void *)this == p)
               return true;
            return false;
         }
   
         static void kill_idle_threads(void);
   
      private:
         ThreadPool(void);
         Sint16 _max_threads;
         Sint16 _min_threads;
         AtomicInt _current_threads;
         struct timeval _allocate_wait;
         struct timeval _deallocate_wait;
         struct timeval _deadlock_detect;
         static PEGASUS_THREAD_RETURN PEGASUS_THREAD_CDECL _loop(void *);
         Sint8 _key[17];
         DQueue<Thread> _pool;
         DQueue<Thread> _running;
         DQueue<Thread> _dead;
         AtomicInt _dying;
         static void _sleep_sem_del(void *p);
   
         void _check_deadlock(struct timeval *start) throw(Deadlock);
         Boolean _check_deadlock_no_throw(struct timeval *start);
         Boolean _check_dealloc(struct timeval *start);
         Thread *_init_thread(void) throw(IPCException);
         void _link_pool(Thread *th) throw(IPCException);
         static PEGASUS_THREAD_RETURN  _undertaker(void *);
         static DQueue<ThreadPool> _pools;
 } ; } ;
   
   
   
   
   #if defined(PEGASUS_OS_TYPE_WINDOWS)
   # include "ThreadWindows_inline.h"
   #elif defined(PEGASUS_PLATFORM_ZOS_ZSERIES_IBM)
   # include "ThreadzOS_inline.h"
   #elif defined(PEGASUS_OS_TYPE_UNIX)
   # include "ThreadUnix_inline.h"
 #endif #endif
  
 PEGASUS_NAMESPACE_END PEGASUS_NAMESPACE_END


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  Added in v.1.27

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