add client
This commit is contained in:
parent
04e3df71d3
commit
df62f45256
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@ -42,7 +42,18 @@ void* rpcOpen(const SRpcInit* pInit) {
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return pRpc;
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}
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void rpcClose(void* arg) { return; }
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void* rpcMallocCont(int contLen) { return NULL; }
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void* rpcMallocCont(int contLen) {
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int size = contLen + RPC_MSG_OVERHEAD;
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char* start = (char*)calloc(1, (size_t)size);
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if (start == NULL) {
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tError("failed to malloc msg, size:%d", size);
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return NULL;
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} else {
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tTrace("malloc mem:%p size:%d", start, size);
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}
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return start + sizeof(SRpcReqContext) + sizeof(SRpcHead);
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}
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void rpcFreeCont(void* cont) { return; }
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void* rpcReallocCont(void* ptr, int contLen) { return NULL; }
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@ -55,6 +55,10 @@ static void* clientThread(void* arg);
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static void clientWriteCb(uv_write_t* req, int status) {
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// impl later
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}
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static void clientFailedCb(uv_handle_t* handle) {
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// impl later
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tDebug("close handle");
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}
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static void clientReadCb(uv_stream_t* cli, ssize_t nread, const uv_buf_t* buf) {
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// impl later
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}
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@ -68,8 +72,10 @@ static void clientConnCb(struct uv_connect_s* req, int status) {
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if (status != 0) {
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// call user fp later
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tError("failed to connect server(%s, %d), errmsg: %s", fqdn, port, uv_strerror(status));
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uv_close((uv_handle_t*)req->handle, clientFailedCb);
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return;
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}
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assert(pConn->stream == req->handle);
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// impl later
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}
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@ -123,19 +129,6 @@ static void clientAsyncCb(uv_async_t* handle) {
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static void* clientThread(void* arg) {
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SCliThrdObj* pThrd = (SCliThrdObj*)arg;
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QUEUE_INIT(&pThrd->msg);
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pthread_mutex_init(&pThrd->msgMtx, NULL);
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// QUEUE_INIT(&pThrd->clientCache);
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pThrd->loop = (uv_loop_t*)malloc(sizeof(uv_loop_t));
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uv_loop_init(pThrd->loop);
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pThrd->cliAsync = malloc(sizeof(uv_async_t));
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uv_async_init(pThrd->loop, pThrd->cliAsync, clientAsyncCb);
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pThrd->cliAsync->data = pThrd;
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uv_run(pThrd->loop, UV_RUN_DEFAULT);
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}
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@ -146,14 +139,25 @@ void* taosInitClient(uint32_t ip, uint32_t port, char* label, int numOfThreads,
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cli->pThreadObj = (SCliThrdObj**)calloc(cli->numOfThreads, sizeof(SCliThrdObj*));
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for (int i = 0; i < cli->numOfThreads; i++) {
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SCliThrdObj* thrd = (SCliThrdObj*)calloc(1, sizeof(SCliThrdObj));
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SCliThrdObj* pThrd = (SCliThrdObj*)calloc(1, sizeof(SCliThrdObj));
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QUEUE_INIT(&pThrd->msg);
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pthread_mutex_init(&pThrd->msgMtx, NULL);
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thrd->shandle = shandle;
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int err = pthread_create(&thrd->thread, NULL, clientThread, (void*)(thrd));
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// QUEUE_INIT(&pThrd->clientCache);
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pThrd->loop = (uv_loop_t*)malloc(sizeof(uv_loop_t));
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uv_loop_init(pThrd->loop);
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pThrd->cliAsync = malloc(sizeof(uv_async_t));
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uv_async_init(pThrd->loop, pThrd->cliAsync, clientAsyncCb);
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pThrd->cliAsync->data = pThrd;
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pThrd->shandle = shandle;
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int err = pthread_create(&pThrd->thread, NULL, clientThread, (void*)(pThrd));
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if (err == 0) {
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tDebug("sucess to create tranport-client thread %d", i);
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}
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cli->pThreadObj[i] = thrd;
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cli->pThreadObj[i] = pThrd;
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}
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return cli;
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}
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@ -1,773 +0,0 @@
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/*
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* Copyright (c) 2019 TAOS Data, Inc. <jhtao@taosdata.com>
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*
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* This program is free software: you can use, redistribute, and/or modify
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* it under the terms of the GNU Affero General Public License, version 3
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* or later ("AGPL"), as published by the Free Software Foundation.
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*
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* This program is distributed in the hope that it will be useful, but WITHOUT
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* ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
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* FITNESS FOR A PARTICULAR PURPOSE.
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*
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* You should have received a copy of the GNU Affero General Public License
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* along with this program. If not, see <http://www.gnu.org/licenses/>.
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*/
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#ifdef USE_UV
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#include <uv.h>
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#include "lz4.h"
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#include "os.h"
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#include "rpcCache.h"
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#include "rpcHead.h"
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#include "rpcLog.h"
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#include "rpcTcp.h"
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#include "rpcUdp.h"
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#include "taoserror.h"
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#include "tglobal.h"
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#include "thash.h"
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#include "tidpool.h"
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#include "tmd5.h"
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#include "tmempool.h"
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#include "tmsg.h"
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#include "transportInt.h"
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#include "tref.h"
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#include "trpc.h"
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#include "ttimer.h"
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#include "tutil.h"
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#define container_of(ptr, type, member) ((type*)((char*)(ptr)-offsetof(type, member)))
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#define RPC_RESERVE_SIZE (sizeof(SRpcReqContext))
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static const char* notify = "a";
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typedef struct {
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int sessions; // number of sessions allowed
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int numOfThreads; // number of threads to process incoming messages
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int idleTime; // milliseconds;
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uint16_t localPort;
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int8_t connType;
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int index; // for UDP server only, round robin for multiple threads
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char label[TSDB_LABEL_LEN];
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char user[TSDB_UNI_LEN]; // meter ID
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char spi; // security parameter index
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char encrypt; // encrypt algorithm
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char secret[TSDB_PASSWORD_LEN]; // secret for the link
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char ckey[TSDB_PASSWORD_LEN]; // ciphering key
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void (*cfp)(void* parent, SRpcMsg*, SEpSet*);
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int (*afp)(void* parent, char* user, char* spi, char* encrypt, char* secret, char* ckey);
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int32_t refCount;
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void* parent;
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void* idPool; // handle to ID pool
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void* tmrCtrl; // handle to timer
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SHashObj* hash; // handle returned by hash utility
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void* tcphandle; // returned handle from TCP initialization
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void* udphandle; // returned handle from UDP initialization
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void* pCache; // connection cache
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pthread_mutex_t mutex;
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struct SRpcConn* connList; // connection list
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} SRpcInfo;
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typedef struct {
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SRpcInfo* pRpc; // associated SRpcInfo
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SEpSet epSet; // ip list provided by app
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void* ahandle; // handle provided by app
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struct SRpcConn* pConn; // pConn allocated
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tmsg_t msgType; // message type
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uint8_t* pCont; // content provided by app
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int32_t contLen; // content length
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int32_t code; // error code
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int16_t numOfTry; // number of try for different servers
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int8_t oldInUse; // server EP inUse passed by app
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int8_t redirect; // flag to indicate redirect
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int8_t connType; // connection type
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int64_t rid; // refId returned by taosAddRef
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SRpcMsg* pRsp; // for synchronous API
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tsem_t* pSem; // for synchronous API
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SEpSet* pSet; // for synchronous API
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char msg[0]; // RpcHead starts from here
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} SRpcReqContext;
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typedef struct SThreadObj {
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pthread_t thread;
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uv_pipe_t* pipe;
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int fd;
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uv_loop_t* loop;
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uv_async_t* workerAsync; //
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queue conn;
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pthread_mutex_t connMtx;
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void* shandle;
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} SThreadObj;
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typedef struct SClientObj {
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char label[TSDB_LABEL_LEN];
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int32_t index;
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int numOfThreads;
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SThreadObj** pThreadObj;
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} SClientObj;
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#define RPC_MSG_OVERHEAD (sizeof(SRpcReqContext) + sizeof(SRpcHead) + sizeof(SRpcDigest))
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#define rpcHeadFromCont(cont) ((SRpcHead*)((char*)cont - sizeof(SRpcHead)))
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#define rpcContFromHead(msg) (msg + sizeof(SRpcHead))
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#define rpcMsgLenFromCont(contLen) (contLen + sizeof(SRpcHead))
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#define rpcContLenFromMsg(msgLen) (msgLen - sizeof(SRpcHead))
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#define rpcIsReq(type) (type & 1U)
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typedef struct SServerObj {
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pthread_t thread;
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uv_tcp_t server;
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uv_loop_t* loop;
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int workerIdx;
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int numOfThreads;
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SThreadObj** pThreadObj;
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uv_pipe_t** pipe;
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uint32_t ip;
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uint32_t port;
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} SServerObj;
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typedef struct SConnBuffer {
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char* buf;
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int len;
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int cap;
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int left;
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} SConnBuffer;
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typedef struct SRpcConn {
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uv_tcp_t* pTcp;
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uv_write_t* pWriter;
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uv_timer_t* pTimer;
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uv_async_t* pWorkerAsync;
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queue queue;
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int ref;
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int persist; // persist connection or not
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SConnBuffer connBuf; // read buf,
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SConnBuffer writeBuf; // write buf
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int count;
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void* shandle; // rpc init
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void* ahandle; //
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void* hostThread;
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// del later
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char secured;
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int spi;
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char info[64];
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char user[TSDB_UNI_LEN]; // user ID for the link
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char secret[TSDB_PASSWORD_LEN];
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char ckey[TSDB_PASSWORD_LEN]; // ciphering key
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} SRpcConn;
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// auth function
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static int uvAuthMsg(SRpcConn* pConn, char* msg, int msgLen);
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static int rpcAuthenticateMsg(void* pMsg, int msgLen, void* pAuth, void* pKey);
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static void rpcBuildAuthHead(void* pMsg, int msgLen, void* pAuth, void* pKey);
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static int rpcAddAuthPart(SRpcConn* pConn, char* msg, int msgLen);
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// compress data
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static int32_t rpcCompressRpcMsg(char* pCont, int32_t contLen);
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static SRpcHead* rpcDecompressRpcMsg(SRpcHead* pHead);
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static void uvAllocConnBufferCb(uv_handle_t* handle, size_t suggested_size, uv_buf_t* buf);
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static void uvAllocReadBufferCb(uv_handle_t* handle, size_t suggested_size, uv_buf_t* buf);
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static void uvOnReadCb(uv_stream_t* cli, ssize_t nread, const uv_buf_t* buf);
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static void uvOnTimeoutCb(uv_timer_t* handle);
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static void uvOnWriteCb(uv_write_t* req, int status);
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static void uvOnAcceptCb(uv_stream_t* stream, int status);
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static void uvOnConnectionCb(uv_stream_t* q, ssize_t nread, const uv_buf_t* buf);
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static void uvWorkerAsyncCb(uv_async_t* handle);
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static SRpcConn* connCreate();
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static void connDestroy(SRpcConn* conn);
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static void uvConnDestroy(uv_handle_t* handle);
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static void* workerThread(void* arg);
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static void* acceptThread(void* arg);
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void* taosInitClient(uint32_t ip, uint32_t port, char* label, int numOfThreads, void* fp, void* shandle);
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void* taosInitServer(uint32_t ip, uint32_t port, char* label, int numOfThreads, void* fp, void* shandle);
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void* (*taosHandle[])(uint32_t ip, uint32_t port, char* label, int numOfThreads, void* fp, void* shandle) = {taosInitServer, taosInitClient};
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void* taosInitClient(uint32_t ip, uint32_t port, char* label, int numOfThreads, void* fp, void* shandle) {
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SClientObj* cli = calloc(1, sizeof(SClientObj));
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memcpy(cli->label, label, strlen(label));
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cli->numOfThreads = numOfThreads;
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cli->pThreadObj = (SThreadObj**)calloc(cli->numOfThreads, sizeof(SThreadObj*));
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for (int i = 0; i < cli->numOfThreads; i++) {
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SThreadObj* thrd = (SThreadObj*)calloc(1, sizeof(SThreadObj));
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int err = pthread_create(&thrd->thread, NULL, workerThread, (void*)(thrd));
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if (err == 0) {
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tDebug("sucess to create tranport-client thread %d", i);
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}
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}
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return cli;
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}
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void* taosInitServer(uint32_t ip, uint32_t port, char* label, int numOfThreads, void* fp, void* shandle) {
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SServerObj* srv = calloc(1, sizeof(SServerObj));
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srv->loop = (uv_loop_t*)malloc(sizeof(uv_loop_t));
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srv->numOfThreads = numOfThreads;
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srv->workerIdx = 0;
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srv->pThreadObj = (SThreadObj**)calloc(srv->numOfThreads, sizeof(SThreadObj*));
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srv->pipe = (uv_pipe_t**)calloc(srv->numOfThreads, sizeof(uv_pipe_t*));
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srv->ip = ip;
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srv->port = port;
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uv_loop_init(srv->loop);
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for (int i = 0; i < srv->numOfThreads; i++) {
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SThreadObj* thrd = (SThreadObj*)calloc(1, sizeof(SThreadObj));
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srv->pipe[i] = (uv_pipe_t*)calloc(2, sizeof(uv_pipe_t));
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int fds[2];
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if (uv_socketpair(AF_UNIX, SOCK_STREAM, fds, UV_NONBLOCK_PIPE, UV_NONBLOCK_PIPE) != 0) {
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return NULL;
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}
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uv_pipe_init(srv->loop, &(srv->pipe[i][0]), 1);
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uv_pipe_open(&(srv->pipe[i][0]), fds[1]); // init write
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thrd->shandle = shandle;
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thrd->fd = fds[0];
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thrd->pipe = &(srv->pipe[i][1]); // init read
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int err = pthread_create(&(thrd->thread), NULL, workerThread, (void*)(thrd));
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if (err == 0) {
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tDebug("sucess to create worker-thread %d", i);
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// printf("thread %d create\n", i);
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} else {
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// TODO: clear all other resource later
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tError("failed to create worker-thread %d", i);
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}
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srv->pThreadObj[i] = thrd;
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}
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int err = pthread_create(&srv->thread, NULL, acceptThread, (void*)srv);
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if (err == 0) {
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tDebug("success to create accept-thread");
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} else {
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// clear all resource later
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}
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return srv;
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}
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void uvAllocReadBufferCb(uv_handle_t* handle, size_t suggested_size, uv_buf_t* buf) {
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/*
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* formate of data buffer:
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* |<-------SRpcReqContext------->|<------------data read from socket----------->|
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*/
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static const int CAPACITY = 1024;
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SRpcConn* ctx = handle->data;
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SConnBuffer* pBuf = &ctx->connBuf;
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if (pBuf->cap == 0) {
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pBuf->buf = (char*)calloc(CAPACITY + RPC_RESERVE_SIZE, sizeof(char));
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pBuf->len = 0;
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pBuf->cap = CAPACITY;
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pBuf->left = -1;
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buf->base = pBuf->buf + RPC_RESERVE_SIZE;
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buf->len = CAPACITY;
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} else {
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if (pBuf->len >= pBuf->cap) {
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if (pBuf->left == -1) {
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pBuf->cap *= 2;
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pBuf->buf = realloc(pBuf->buf, pBuf->cap + RPC_RESERVE_SIZE);
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} else if (pBuf->len + pBuf->left > pBuf->cap) {
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pBuf->cap = pBuf->len + pBuf->left;
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pBuf->buf = realloc(pBuf->buf, pBuf->len + pBuf->left + RPC_RESERVE_SIZE);
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}
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}
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buf->base = pBuf->buf + pBuf->len + RPC_RESERVE_SIZE;
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buf->len = pBuf->cap - pBuf->len;
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}
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}
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// check data read from socket completely or not
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//
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static bool isReadAll(SConnBuffer* data) {
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// TODO(yihao): handle pipeline later
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SRpcHead rpcHead;
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int32_t headLen = sizeof(rpcHead);
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if (data->len >= headLen) {
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memcpy((char*)&rpcHead, data->buf + RPC_RESERVE_SIZE, headLen);
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int32_t msgLen = (int32_t)htonl((uint32_t)rpcHead.msgLen);
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if (msgLen > data->len) {
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data->left = msgLen - data->len;
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return false;
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} else {
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return true;
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}
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} else {
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return false;
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}
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}
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static void uvDoProcess(SRecvInfo* pRecv) {
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SRpcHead* pHead = (SRpcHead*)pRecv->msg;
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SRpcInfo* pRpc = (SRpcInfo*)pRecv->shandle;
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SRpcConn* pConn = pRecv->thandle;
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tDump(pRecv->msg, pRecv->msgLen);
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terrno = 0;
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SRpcReqContext* pContest;
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// do auth and check
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}
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static int uvAuthMsg(SRpcConn* pConn, char* msg, int len) {
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SRpcHead* pHead = (SRpcHead*)msg;
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int code = 0;
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if ((pConn->secured && pHead->spi == 0) || (pHead->spi == 0 && pConn->spi == 0)) {
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// secured link, or no authentication
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pHead->msgLen = (int32_t)htonl((uint32_t)pHead->msgLen);
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// tTrace("%s, secured link, no auth is required", pConn->info);
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return 0;
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}
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if (!rpcIsReq(pHead->msgType)) {
|
||||
// for response, if code is auth failure, it shall bypass the auth process
|
||||
code = htonl(pHead->code);
|
||||
if (code == TSDB_CODE_RPC_INVALID_TIME_STAMP || code == TSDB_CODE_RPC_AUTH_FAILURE || code == TSDB_CODE_RPC_INVALID_VERSION || code == TSDB_CODE_RPC_AUTH_REQUIRED ||
|
||||
code == TSDB_CODE_MND_USER_NOT_EXIST || code == TSDB_CODE_RPC_NOT_READY) {
|
||||
pHead->msgLen = (int32_t)htonl((uint32_t)pHead->msgLen);
|
||||
// tTrace("%s, dont check authentication since code is:0x%x", pConn->info, code);
|
||||
return 0;
|
||||
}
|
||||
}
|
||||
|
||||
code = 0;
|
||||
if (pHead->spi == pConn->spi) {
|
||||
// authentication
|
||||
SRpcDigest* pDigest = (SRpcDigest*)((char*)pHead + len - sizeof(SRpcDigest));
|
||||
|
||||
int32_t delta;
|
||||
delta = (int32_t)htonl(pDigest->timeStamp);
|
||||
delta -= (int32_t)taosGetTimestampSec();
|
||||
if (abs(delta) > 900) {
|
||||
tWarn("%s, time diff:%d is too big, msg discarded", pConn->info, delta);
|
||||
code = TSDB_CODE_RPC_INVALID_TIME_STAMP;
|
||||
} else {
|
||||
if (rpcAuthenticateMsg(pHead, len - TSDB_AUTH_LEN, pDigest->auth, pConn->secret) < 0) {
|
||||
// tDebug("%s, authentication failed, msg discarded", pConn->info);
|
||||
code = TSDB_CODE_RPC_AUTH_FAILURE;
|
||||
} else {
|
||||
pHead->msgLen = (int32_t)htonl((uint32_t)pHead->msgLen) - sizeof(SRpcDigest);
|
||||
if (!rpcIsReq(pHead->msgType)) pConn->secured = 1; // link is secured for client
|
||||
// tTrace("%s, message is authenticated", pConn->info);
|
||||
}
|
||||
}
|
||||
} else {
|
||||
tDebug("%s, auth spi:%d not matched with received:%d", pConn->info, pConn->spi, pHead->spi);
|
||||
code = pHead->spi ? TSDB_CODE_RPC_AUTH_FAILURE : TSDB_CODE_RPC_AUTH_REQUIRED;
|
||||
}
|
||||
|
||||
return code;
|
||||
}
|
||||
// refers specifically to query or insert timeout
|
||||
static void uvHandleActivityTimeout(uv_timer_t* handle) {
|
||||
// impl later
|
||||
SRpcConn* conn = handle->data;
|
||||
}
|
||||
static void uvProcessData(SRpcConn* pConn) {
|
||||
SRecvInfo info;
|
||||
SRecvInfo* p = &info;
|
||||
SConnBuffer* pBuf = &pConn->connBuf;
|
||||
p->msg = pBuf->buf + RPC_RESERVE_SIZE;
|
||||
p->msgLen = pBuf->len;
|
||||
p->ip = 0;
|
||||
p->port = 0;
|
||||
p->shandle = pConn->shandle; //
|
||||
p->thandle = pConn;
|
||||
p->chandle = NULL;
|
||||
|
||||
//
|
||||
SRpcHead* pHead = (SRpcHead*)p->msg;
|
||||
assert(rpcIsReq(pHead->msgType));
|
||||
|
||||
SRpcInfo* pRpc = (SRpcInfo*)p->shandle;
|
||||
pConn->ahandle = (void*)pHead->ahandle;
|
||||
// auth here
|
||||
|
||||
int8_t code = uvAuthMsg(pConn, (char*)pHead, p->msgLen);
|
||||
if (code != 0) {
|
||||
terrno = code;
|
||||
return;
|
||||
}
|
||||
pHead->code = htonl(pHead->code);
|
||||
|
||||
SRpcMsg rpcMsg;
|
||||
|
||||
pHead = rpcDecompressRpcMsg(pHead);
|
||||
rpcMsg.contLen = rpcContLenFromMsg(pHead->msgLen);
|
||||
rpcMsg.pCont = pHead->content;
|
||||
rpcMsg.msgType = pHead->msgType;
|
||||
rpcMsg.code = pHead->code;
|
||||
rpcMsg.ahandle = pConn->ahandle;
|
||||
rpcMsg.handle = pConn;
|
||||
|
||||
(*(pRpc->cfp))(pRpc->parent, &rpcMsg, NULL);
|
||||
uv_timer_start(pConn->pTimer, uvHandleActivityTimeout, pRpc->idleTime, 0);
|
||||
// auth
|
||||
// validate msg type
|
||||
}
|
||||
void uvOnReadCb(uv_stream_t* cli, ssize_t nread, const uv_buf_t* buf) {
|
||||
// opt
|
||||
SRpcConn* ctx = cli->data;
|
||||
SConnBuffer* pBuf = &ctx->connBuf;
|
||||
if (nread > 0) {
|
||||
pBuf->len += nread;
|
||||
if (isReadAll(pBuf)) {
|
||||
tDebug("alread read complete packet");
|
||||
uvProcessData(ctx);
|
||||
} else {
|
||||
tDebug("read half packet, continue to read");
|
||||
}
|
||||
return;
|
||||
}
|
||||
if (terrno != 0) {
|
||||
// handle err code
|
||||
}
|
||||
|
||||
if (nread != UV_EOF) {
|
||||
tDebug("Read error %s\n", uv_err_name(nread));
|
||||
}
|
||||
uv_close((uv_handle_t*)cli, uvConnDestroy);
|
||||
}
|
||||
void uvAllocConnBufferCb(uv_handle_t* handle, size_t suggested_size, uv_buf_t* buf) {
|
||||
buf->base = malloc(sizeof(char));
|
||||
buf->len = 2;
|
||||
}
|
||||
|
||||
void uvOnTimeoutCb(uv_timer_t* handle) {
|
||||
// opt
|
||||
tDebug("time out");
|
||||
}
|
||||
|
||||
void uvOnWriteCb(uv_write_t* req, int status) {
|
||||
SRpcConn* conn = req->data;
|
||||
if (status == 0) {
|
||||
tDebug("data already was written on stream");
|
||||
} else {
|
||||
connDestroy(conn);
|
||||
}
|
||||
// opt
|
||||
}
|
||||
|
||||
void uvWorkerAsyncCb(uv_async_t* handle) {
|
||||
SThreadObj* pThrd = container_of(handle, SThreadObj, workerAsync);
|
||||
SRpcConn* conn = NULL;
|
||||
|
||||
// opt later
|
||||
pthread_mutex_lock(&pThrd->connMtx);
|
||||
if (!QUEUE_IS_EMPTY(&pThrd->conn)) {
|
||||
queue* head = QUEUE_HEAD(&pThrd->conn);
|
||||
conn = QUEUE_DATA(head, SRpcConn, queue);
|
||||
QUEUE_REMOVE(&conn->queue);
|
||||
}
|
||||
pthread_mutex_unlock(&pThrd->connMtx);
|
||||
if (conn == NULL) {
|
||||
tError("except occurred, do nothing");
|
||||
return;
|
||||
}
|
||||
uv_buf_t wb = uv_buf_init(conn->writeBuf.buf, conn->writeBuf.len);
|
||||
uv_write(conn->pWriter, (uv_stream_t*)conn->pTcp, &wb, 1, uvOnWriteCb);
|
||||
}
|
||||
|
||||
void uvOnAcceptCb(uv_stream_t* stream, int status) {
|
||||
if (status == -1) {
|
||||
return;
|
||||
}
|
||||
SServerObj* pObj = container_of(stream, SServerObj, server);
|
||||
|
||||
uv_tcp_t* cli = (uv_tcp_t*)malloc(sizeof(uv_tcp_t));
|
||||
uv_tcp_init(pObj->loop, cli);
|
||||
|
||||
if (uv_accept(stream, (uv_stream_t*)cli) == 0) {
|
||||
uv_write_t* wr = (uv_write_t*)malloc(sizeof(uv_write_t));
|
||||
|
||||
uv_buf_t buf = uv_buf_init((char*)notify, strlen(notify));
|
||||
|
||||
pObj->workerIdx = (pObj->workerIdx + 1) % pObj->numOfThreads;
|
||||
tDebug("new conntion accepted by main server, dispatch to %dth worker-thread", pObj->workerIdx);
|
||||
uv_write2(wr, (uv_stream_t*)&(pObj->pipe[pObj->workerIdx][0]), &buf, 1, (uv_stream_t*)cli, uvOnWriteCb);
|
||||
} else {
|
||||
uv_close((uv_handle_t*)cli, NULL);
|
||||
}
|
||||
}
|
||||
void uvOnConnectionCb(uv_stream_t* q, ssize_t nread, const uv_buf_t* buf) {
|
||||
tDebug("connection coming");
|
||||
if (nread < 0) {
|
||||
if (nread != UV_EOF) {
|
||||
tError("read error %s", uv_err_name(nread));
|
||||
}
|
||||
// TODO(log other failure reason)
|
||||
uv_close((uv_handle_t*)q, NULL);
|
||||
return;
|
||||
}
|
||||
// free memory allocated by
|
||||
assert(nread == strlen(notify));
|
||||
assert(buf->base[0] == notify[0]);
|
||||
free(buf->base);
|
||||
|
||||
SThreadObj* pThrd = q->data;
|
||||
|
||||
uv_pipe_t* pipe = (uv_pipe_t*)q;
|
||||
if (!uv_pipe_pending_count(pipe)) {
|
||||
tError("No pending count");
|
||||
return;
|
||||
}
|
||||
|
||||
uv_handle_type pending = uv_pipe_pending_type(pipe);
|
||||
assert(pending == UV_TCP);
|
||||
|
||||
SRpcConn* pConn = connCreate();
|
||||
pConn->shandle = pThrd->shandle;
|
||||
/* init conn timer*/
|
||||
pConn->pTimer = malloc(sizeof(uv_timer_t));
|
||||
uv_timer_init(pThrd->loop, pConn->pTimer);
|
||||
pConn->pTimer->data = pConn;
|
||||
|
||||
pConn->hostThread = pThrd;
|
||||
pConn->pWorkerAsync = pThrd->workerAsync; // thread safty
|
||||
|
||||
// init client handle
|
||||
pConn->pTcp = (uv_tcp_t*)malloc(sizeof(uv_tcp_t));
|
||||
uv_tcp_init(pThrd->loop, pConn->pTcp);
|
||||
pConn->pTcp->data = pConn;
|
||||
|
||||
// init write request, just
|
||||
pConn->pWriter = calloc(1, sizeof(uv_write_t));
|
||||
pConn->pWriter->data = pConn;
|
||||
|
||||
if (uv_accept(q, (uv_stream_t*)(pConn->pTcp)) == 0) {
|
||||
uv_os_fd_t fd;
|
||||
uv_fileno((const uv_handle_t*)pConn->pTcp, &fd);
|
||||
tDebug("new connection created: %d", fd);
|
||||
uv_read_start((uv_stream_t*)(pConn->pTcp), uvAllocReadBufferCb, uvOnReadCb);
|
||||
} else {
|
||||
connDestroy(pConn);
|
||||
}
|
||||
}
|
||||
|
||||
void* acceptThread(void* arg) {
|
||||
// opt
|
||||
SServerObj* srv = (SServerObj*)arg;
|
||||
uv_tcp_init(srv->loop, &srv->server);
|
||||
|
||||
struct sockaddr_in bind_addr;
|
||||
|
||||
uv_ip4_addr("0.0.0.0", srv->port, &bind_addr);
|
||||
uv_tcp_bind(&srv->server, (const struct sockaddr*)&bind_addr, 0);
|
||||
int err = 0;
|
||||
if ((err = uv_listen((uv_stream_t*)&srv->server, 128, uvOnAcceptCb)) != 0) {
|
||||
tError("Listen error %s\n", uv_err_name(err));
|
||||
return NULL;
|
||||
}
|
||||
uv_run(srv->loop, UV_RUN_DEFAULT);
|
||||
}
|
||||
void* workerThread(void* arg) {
|
||||
SThreadObj* pThrd = (SThreadObj*)arg;
|
||||
|
||||
pThrd->loop = (uv_loop_t*)malloc(sizeof(uv_loop_t));
|
||||
uv_loop_init(pThrd->loop);
|
||||
|
||||
uv_pipe_init(pThrd->loop, pThrd->pipe, 1);
|
||||
uv_pipe_open(pThrd->pipe, pThrd->fd);
|
||||
|
||||
pThrd->pipe->data = pThrd;
|
||||
|
||||
QUEUE_INIT(&pThrd->conn);
|
||||
|
||||
pThrd->workerAsync = malloc(sizeof(uv_async_t));
|
||||
uv_async_init(pThrd->loop, pThrd->workerAsync, uvWorkerAsyncCb);
|
||||
|
||||
uv_read_start((uv_stream_t*)pThrd->pipe, uvAllocConnBufferCb, uvOnConnectionCb);
|
||||
uv_run(pThrd->loop, UV_RUN_DEFAULT);
|
||||
}
|
||||
static SRpcConn* connCreate() {
|
||||
SRpcConn* pConn = (SRpcConn*)calloc(1, sizeof(SRpcConn));
|
||||
return pConn;
|
||||
}
|
||||
static void connDestroy(SRpcConn* conn) {
|
||||
if (conn == NULL) {
|
||||
return;
|
||||
}
|
||||
uv_timer_stop(conn->pTimer);
|
||||
free(conn->pTimer);
|
||||
uv_close((uv_handle_t*)conn->pTcp, NULL);
|
||||
free(conn->connBuf.buf);
|
||||
free(conn->pTcp);
|
||||
free(conn->pWriter);
|
||||
free(conn);
|
||||
// handle
|
||||
}
|
||||
static void uvConnDestroy(uv_handle_t* handle) {
|
||||
SRpcConn* conn = handle->data;
|
||||
connDestroy(conn);
|
||||
}
|
||||
void* rpcOpen(const SRpcInit* pInit) {
|
||||
SRpcInfo* pRpc = calloc(1, sizeof(SRpcInfo));
|
||||
if (pRpc == NULL) {
|
||||
return NULL;
|
||||
}
|
||||
if (pInit->label) {
|
||||
tstrncpy(pRpc->label, pInit->label, strlen(pInit->label));
|
||||
}
|
||||
pRpc->numOfThreads = pInit->numOfThreads > TSDB_MAX_RPC_THREADS ? TSDB_MAX_RPC_THREADS : pInit->numOfThreads;
|
||||
pRpc->connType = pInit->connType;
|
||||
pRpc->tcphandle = (*taosHandle[pRpc->connType])(0, pInit->localPort, pRpc->label, pRpc->numOfThreads, NULL, pRpc);
|
||||
// pRpc->taosInitServer(0, pInit->localPort, pRpc->label, pRpc->numOfThreads, NULL, pRpc);
|
||||
return pRpc;
|
||||
}
|
||||
void rpcClose(void* arg) { return; }
|
||||
void* rpcMallocCont(int contLen) { return NULL; }
|
||||
void rpcFreeCont(void* cont) { return; }
|
||||
void* rpcReallocCont(void* ptr, int contLen) { return NULL; }
|
||||
|
||||
void rpcSendRequest(void* thandle, const SEpSet* pEpSet, SRpcMsg* pMsg, int64_t* rid) {
|
||||
// impl later
|
||||
return;
|
||||
}
|
||||
|
||||
void rpcSendResponse(const SRpcMsg* pMsg) {
|
||||
SRpcConn* pConn = pMsg->handle;
|
||||
SThreadObj* pThrd = pConn->hostThread;
|
||||
|
||||
// opt later
|
||||
pthread_mutex_lock(&pThrd->connMtx);
|
||||
QUEUE_PUSH(&pThrd->conn, &pConn->queue);
|
||||
pthread_mutex_unlock(&pThrd->connMtx);
|
||||
|
||||
uv_async_send(pConn->pWorkerAsync);
|
||||
}
|
||||
|
||||
void rpcSendRedirectRsp(void* pConn, const SEpSet* pEpSet) {}
|
||||
int rpcGetConnInfo(void* thandle, SRpcConnInfo* pInfo) { return -1; }
|
||||
void rpcSendRecv(void* shandle, SEpSet* pEpSet, SRpcMsg* pReq, SRpcMsg* pRsp) { return; }
|
||||
int rpcReportProgress(void* pConn, char* pCont, int contLen) { return -1; }
|
||||
void rpcCancelRequest(int64_t rid) { return; }
|
||||
|
||||
static int rpcAuthenticateMsg(void* pMsg, int msgLen, void* pAuth, void* pKey) {
|
||||
T_MD5_CTX context;
|
||||
int ret = -1;
|
||||
|
||||
tMD5Init(&context);
|
||||
tMD5Update(&context, (uint8_t*)pKey, TSDB_PASSWORD_LEN);
|
||||
tMD5Update(&context, (uint8_t*)pMsg, msgLen);
|
||||
tMD5Update(&context, (uint8_t*)pKey, TSDB_PASSWORD_LEN);
|
||||
tMD5Final(&context);
|
||||
|
||||
if (memcmp(context.digest, pAuth, sizeof(context.digest)) == 0) ret = 0;
|
||||
|
||||
return ret;
|
||||
}
|
||||
static void rpcBuildAuthHead(void* pMsg, int msgLen, void* pAuth, void* pKey) {
|
||||
T_MD5_CTX context;
|
||||
|
||||
tMD5Init(&context);
|
||||
tMD5Update(&context, (uint8_t*)pKey, TSDB_PASSWORD_LEN);
|
||||
tMD5Update(&context, (uint8_t*)pMsg, msgLen);
|
||||
tMD5Update(&context, (uint8_t*)pKey, TSDB_PASSWORD_LEN);
|
||||
tMD5Final(&context);
|
||||
|
||||
memcpy(pAuth, context.digest, sizeof(context.digest));
|
||||
}
|
||||
|
||||
static int rpcAddAuthPart(SRpcConn* pConn, char* msg, int msgLen) {
|
||||
SRpcHead* pHead = (SRpcHead*)msg;
|
||||
|
||||
if (pConn->spi && pConn->secured == 0) {
|
||||
// add auth part
|
||||
pHead->spi = pConn->spi;
|
||||
SRpcDigest* pDigest = (SRpcDigest*)(msg + msgLen);
|
||||
pDigest->timeStamp = htonl(taosGetTimestampSec());
|
||||
msgLen += sizeof(SRpcDigest);
|
||||
pHead->msgLen = (int32_t)htonl((uint32_t)msgLen);
|
||||
rpcBuildAuthHead(pHead, msgLen - TSDB_AUTH_LEN, pDigest->auth, pConn->secret);
|
||||
} else {
|
||||
pHead->spi = 0;
|
||||
pHead->msgLen = (int32_t)htonl((uint32_t)msgLen);
|
||||
}
|
||||
|
||||
return msgLen;
|
||||
}
|
||||
|
||||
static int32_t rpcCompressRpcMsg(char* pCont, int32_t contLen) {
|
||||
SRpcHead* pHead = rpcHeadFromCont(pCont);
|
||||
int32_t finalLen = 0;
|
||||
int overhead = sizeof(SRpcComp);
|
||||
|
||||
if (!NEEDTO_COMPRESSS_MSG(contLen)) {
|
||||
return contLen;
|
||||
}
|
||||
|
||||
char* buf = malloc(contLen + overhead + 8); // 8 extra bytes
|
||||
if (buf == NULL) {
|
||||
tError("failed to allocate memory for rpc msg compression, contLen:%d", contLen);
|
||||
return contLen;
|
||||
}
|
||||
|
||||
int32_t compLen = LZ4_compress_default(pCont, buf, contLen, contLen + overhead);
|
||||
tDebug("compress rpc msg, before:%d, after:%d, overhead:%d", contLen, compLen, overhead);
|
||||
|
||||
/*
|
||||
* only the compressed size is less than the value of contLen - overhead, the compression is applied
|
||||
* The first four bytes is set to 0, the second four bytes are utilized to keep the original length of message
|
||||
*/
|
||||
if (compLen > 0 && compLen < contLen - overhead) {
|
||||
SRpcComp* pComp = (SRpcComp*)pCont;
|
||||
pComp->reserved = 0;
|
||||
pComp->contLen = htonl(contLen);
|
||||
memcpy(pCont + overhead, buf, compLen);
|
||||
|
||||
pHead->comp = 1;
|
||||
tDebug("compress rpc msg, before:%d, after:%d", contLen, compLen);
|
||||
finalLen = compLen + overhead;
|
||||
} else {
|
||||
finalLen = contLen;
|
||||
}
|
||||
|
||||
free(buf);
|
||||
return finalLen;
|
||||
}
|
||||
|
||||
static SRpcHead* rpcDecompressRpcMsg(SRpcHead* pHead) {
|
||||
int overhead = sizeof(SRpcComp);
|
||||
SRpcHead* pNewHead = NULL;
|
||||
uint8_t* pCont = pHead->content;
|
||||
SRpcComp* pComp = (SRpcComp*)pHead->content;
|
||||
|
||||
if (pHead->comp) {
|
||||
// decompress the content
|
||||
assert(pComp->reserved == 0);
|
||||
int contLen = htonl(pComp->contLen);
|
||||
|
||||
// prepare the temporary buffer to decompress message
|
||||
char* temp = (char*)malloc(contLen + RPC_MSG_OVERHEAD);
|
||||
pNewHead = (SRpcHead*)(temp + sizeof(SRpcReqContext)); // reserve SRpcReqContext
|
||||
|
||||
if (pNewHead) {
|
||||
int compLen = rpcContLenFromMsg(pHead->msgLen) - overhead;
|
||||
int origLen = LZ4_decompress_safe((char*)(pCont + overhead), (char*)pNewHead->content, compLen, contLen);
|
||||
assert(origLen == contLen);
|
||||
|
||||
memcpy(pNewHead, pHead, sizeof(SRpcHead));
|
||||
pNewHead->msgLen = rpcMsgLenFromCont(origLen);
|
||||
/// rpcFreeMsg(pHead); // free the compressed message buffer
|
||||
pHead = pNewHead;
|
||||
tTrace("decomp malloc mem:%p", temp);
|
||||
} else {
|
||||
tError("failed to allocate memory to decompress msg, contLen:%d", contLen);
|
||||
}
|
||||
}
|
||||
|
||||
return pHead;
|
||||
}
|
||||
int32_t rpcInit(void) {
|
||||
// impl later
|
||||
return -1;
|
||||
}
|
||||
|
||||
void rpcCleanup(void) {
|
||||
// impl later
|
||||
return;
|
||||
}
|
||||
#endif
|
|
@ -34,7 +34,8 @@ typedef struct {
|
|||
|
||||
static void processResponse(void *pParent, SRpcMsg *pMsg, SEpSet *pEpSet) {
|
||||
SInfo *pInfo = (SInfo *)pMsg->ahandle;
|
||||
tDebug("thread:%d, response is received, type:%d contLen:%d code:0x%x", pInfo->index, pMsg->msgType, pMsg->contLen, pMsg->code);
|
||||
tDebug("thread:%d, response is received, type:%d contLen:%d code:0x%x", pInfo->index, pMsg->msgType, pMsg->contLen,
|
||||
pMsg->code);
|
||||
|
||||
if (pEpSet) pInfo->epSet = *pEpSet;
|
||||
|
||||
|
@ -185,7 +186,8 @@ int main(int argc, char *argv[]) {
|
|||
// float usedTime = (endTime - startTime) / 1000.0f; // mseconds
|
||||
|
||||
// tInfo("it takes %.3f mseconds to send %d requests to server", usedTime, numOfReqs * appThreads);
|
||||
// tInfo("Performance: %.3f requests per second, msgSize:%d bytes", 1000.0 * numOfReqs * appThreads / usedTime, msgSize);
|
||||
// tInfo("Performance: %.3f requests per second, msgSize:%d bytes", 1000.0 * numOfReqs * appThreads / usedTime,
|
||||
// msgSize);
|
||||
|
||||
int ch = getchar();
|
||||
UNUSED(ch);
|
||||
|
|
Loading…
Reference in New Issue