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290 lines
6.1 KiB
C++
290 lines
6.1 KiB
C++
// master_threads.cpp : 定义控制台应用程序的入口点。
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//
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#include "stdafx.h"
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#include "acl_cpp/stdlib/log.hpp"
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#include "acl_cpp/stdlib/util.hpp"
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#include "acl_cpp/master/master_threads.hpp"
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#include "acl_cpp/event/event_timer.hpp"
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#include "acl_cpp/stream/socket_stream.hpp"
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static char *var_cfg_debug_msg;
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static acl::master_str_tbl var_conf_str_tab[] = {
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{ "debug_msg", "test_msg", &var_cfg_debug_msg },
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{ 0, 0, 0 }
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};
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static int var_cfg_debug_enable;
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static int var_cfg_keep_alive;
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static int var_cfg_loop;
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static acl::master_bool_tbl var_conf_bool_tab[] = {
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{ "debug_enable", 1, &var_cfg_debug_enable },
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{ "keep_alive", 1, &var_cfg_keep_alive },
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{ "loop_read", 1, &var_cfg_loop },
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{ 0, 0, 0 }
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};
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static int var_cfg_io_timeout;
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static acl::master_int_tbl var_conf_int_tab[] = {
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{ "io_timeout", 120, &var_cfg_io_timeout, 0, 0 },
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{ 0, 0 , 0 , 0, 0 }
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};
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static void (*format)(const char*, ...) = acl::log::msg1;
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//////////////////////////////////////////////////////////////////////////
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class master_timer_test : public acl::event_timer
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{
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public:
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master_timer_test(acl::socket_stream* stream)
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: max_(0)
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, count_(0)
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, stream_(stream)
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{
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(void) stream_;
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}
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void set_max(int max)
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{
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max_ = max;
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}
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protected:
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// 基类虚函数
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virtual void timer_callback(unsigned int id)
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{
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format("timer callback, id: %u\r\n", id);
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if (count_++ >= max_)
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{
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printf("clear all timer task now\r\n");
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clear();
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}
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//else
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// set_task(1000, 1000000);
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}
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virtual void destroy()
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{
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format("destroy called\r\n");
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delete this;
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}
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private:
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int max_;
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int count_;
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acl::socket_stream* stream_;
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~master_timer_test()
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{
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format("timer destroy now!\r\n");
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}
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};
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//////////////////////////////////////////////////////////////////////////
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class master_threads_test : public acl::master_threads
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{
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public:
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master_threads_test()
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{
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}
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~master_threads_test()
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{
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}
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protected:
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// 基类纯虚函数:当客户端连接有数据可读或关闭时回调此函数,返回 true 表示
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// 继续与客户端保持长连接,否则表示需要关闭客户端连接
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virtual bool thread_on_read(acl::socket_stream* stream)
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{
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while (true)
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{
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if (on_read(stream) == false)
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return false;
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if (var_cfg_loop == 0)
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break;
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}
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return true;
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}
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bool on_read(acl::socket_stream* stream)
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{
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format("%s(%d)", __FILE__, __LINE__);
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acl::string buf;
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if (stream->gets(buf) == false)
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{
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format("gets error: %s", acl::last_serror());
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format("%s(%d)", __FILE__, __LINE__);
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return false;
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}
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if (buf == "quit")
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{
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stream->puts("bye!");
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return false;
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}
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if (buf == "timer")
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{
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int max = 0;
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master_timer_test* timer = new master_timer_test(stream);
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timer->keep_timer(true);
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timer->set_task(1000, 1000000);
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max += 2;
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timer->set_task(1001, 1000000);
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max += 2;
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timer->set_task(1002, 1000000);
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max += 2;
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timer->set_task(1003, 1000000);
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max += 2;
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timer->set_max(max);
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// 调用基类方法设置定时器任务
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proc_set_timer(timer);
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stream->format("set timer ok\r\n");
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return true;
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}
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if (buf.empty())
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{
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if (stream->write("\r\n") == -1)
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{
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format("write 1 error: %s", acl::last_serror());
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return false;
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}
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}
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else if (stream->write(buf) == -1)
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{
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format("write 2 error: %s, buf(%s), len: %d",
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acl::last_serror(), buf.c_str(), (int) buf.length());
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return false;
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}
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else if (stream->write("\r\n") == -1)
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{
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format("write 3 client error: %s", acl::last_serror());
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return false;
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}
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return true;
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}
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// 基类虚函数:当接收到一个客户端请求时,调用此函数,允许
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// 子类事先对客户端连接进行处理,返回 true 表示继续,否则
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// 要求关闭该客户端连接
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virtual bool thread_on_accept(acl::socket_stream* stream)
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{
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format("accept one client, peer: %s, local: %s, var_cfg_io_timeout: %d\r\n",
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stream->get_peer(), stream->get_local(), var_cfg_io_timeout);
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if (stream->format("hello, you're welcome!\r\n") == -1)
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return false;
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return true;
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}
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// 基类虚函数:当客户端连接关闭时调用此函数
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virtual void thread_on_close(acl::socket_stream*)
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{
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format("client closed now\r\n");
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}
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// 基类虚函数:当线程池创建一个新线程时调用此函数
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virtual void thread_on_init()
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{
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#ifdef WIN32
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format("thread init: tid: %lu\r\n", GetCurrentThreadId());
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#else
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format("thread init: tid: %lu\r\n", pthread_self());
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#endif
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}
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// 基类虚函数:当线程池中的一个线程退出时调用此函数
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virtual void thread_on_exit()
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{
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#ifdef WIN32
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format("thread exit: tid: %lu\r\n", GetCurrentThreadId());
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#else
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format("thread exit: tid: %lu\r\n", pthread_self());
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#endif
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}
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// 基类虚函数:服务进程切换用户身份前调用此函数
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virtual void proc_pre_jail()
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{
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format("proc_pre_jail\r\n");
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}
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// 基类虚函数:服务进程切换用户身份后调用此函数
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virtual void proc_on_init()
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{
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format("proc init\r\n");
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}
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// 基类虚函数:服务进程退出前调用此函数
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virtual void proc_on_exit()
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{
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format("proc exit\r\n");
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}
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private:
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};
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int main(int argc, char* argv[])
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{
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#if 0
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int base = 8, nslice = 1024, nalloc_gc = 1000000;
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unsigned int slice_flag = ACL_SLICE_FLAG_GC2 | ACL_SLICE_FLAG_RTGC_OFF;
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acl_mem_slice_init(base, nslice, nalloc_gc, slice_flag);
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#endif
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master_threads_test mt;
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// 设置配置参数表
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mt.set_cfg_int(var_conf_int_tab);
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mt.set_cfg_int64(NULL);
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mt.set_cfg_str(var_conf_str_tab);
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mt.set_cfg_bool(var_conf_bool_tab);
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// 开始运行
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if (argc >= 2 && strcmp(argv[1], "alone") == 0)
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{
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int task_count = 2, threads_count = 2;
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format = (void (*)(const char*, ...)) printf;
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format("listen: 127.0.0.1:8888\r\n");
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// 单独运行方式
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if (argc >= 3)
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mt.run_alone("127.0.0.1:8888", argv[2],
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task_count, threads_count);
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else
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mt.run_alone("127.0.0.1:8888", NULL,
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task_count, threads_count);
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}
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// acl_master 控制模式运行
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else
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{
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#ifdef WIN32
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int task_count = 2, threads_count = 2;
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format = (void (*)(const char*, ...)) printf;
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format("listen: 127.0.0.1:8888\r\n");
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// 单独运行方式
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mt.run_alone("127.0.0.1:8888", NULL,
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task_count, threads_count);
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#else
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mt.run_daemon(argc, argv);
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#endif
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}
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return 0;
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}
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