288 lines
		
	
	
		
			5.2 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			288 lines
		
	
	
		
			5.2 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
/**
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 * Copyright (c) 2021 OceanBase
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 * OceanBase CE is licensed under Mulan PubL v2.
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 * You can use this software according to the terms and conditions of the Mulan PubL v2.
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 * You may obtain a copy of Mulan PubL v2 at:
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 *          http://license.coscl.org.cn/MulanPubL-2.0
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 * THIS SOFTWARE IS PROVIDED ON AN "AS IS" BASIS, WITHOUT WARRANTIES OF ANY KIND,
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 * EITHER EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO NON-INFRINGEMENT,
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 * MERCHANTABILITY OR FIT FOR A PARTICULAR PURPOSE.
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 * See the Mulan PubL v2 for more details.
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 */
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#include <gtest/gtest.h>
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#include <pthread.h>
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#include <string>
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#include "lib/allocator/ob_malloc.h"
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#define TEST_SMART_VAR
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#include "common/ob_smart_var.h"
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#undef TEST_SMART_VAR
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const int64_t s_size = 2 << 20;
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using namespace std;
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namespace oceanbase {
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namespace common {
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bool has_malloc = false;
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bool has_free = false;
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bool make_malloc_fail = false;
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void* smart_alloc(const int64_t nbyte, const char* label)
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{
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  has_malloc = true;
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  return make_malloc_fail ? nullptr : ob_malloc(nbyte, label);
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}
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void smart_free(void* ptr)
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{
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  ob_free(ptr);
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  has_free = true;
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}
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template <int64_t N>
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struct Buffer {
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  char buf[N];
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};
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void* test(void*)
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{
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  int ret = OB_SUCCESS;
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  // basic
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  {
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    int v = 0;
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    SMART_VAR(int, i, 100)
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    {
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      v = i;
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    }
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    EXPECT_EQ(v, 100);
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  }
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  // array
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  {
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    const int LEN = 100;
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    char buf[LEN];
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    char buf_cmp[LEN];
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    memset(buf_cmp, 'A', LEN);
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    SMART_VAR(char[LEN], b)
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    {
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      EXPECT_EQ(LEN, ARRAYSIZEOF(b));
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      memset(b, 'A', LEN);
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      memcpy(buf, b, LEN);
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    }
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    EXPECT_EQ(0, memcmp(buf, buf_cmp, LEN));
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  }
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  // nested
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  {
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    int v1, v2 = 0;
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    SMART_VAR(int, i, 100)
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    {
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      v1 = i;
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      SMART_VAR(int, i, 200)
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      {
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        v2 = i;
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      }
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    }
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    EXPECT_EQ(v1, 100);
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    EXPECT_EQ(v2, 200);
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  }
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  // construct && deconstruct
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  {
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    // scalar
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    class S {
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    public:
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      S(int& k) : k_(k)
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      {
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        k_ += 1;
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      }
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      ~S()
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      {
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        k_ += 2;
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      }
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      int& k_;
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    };
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    int k = 0;
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    {
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      SMART_VAR(S, s, k)
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      {
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        UNUSEDx(s);
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      }
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    }
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    EXPECT_EQ(k, 3);
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    // array
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    class V {
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    public:
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      V() : self_k_(2), k_(nullptr)
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      {}
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      ~V()
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      {
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        *k_ += self_k_;
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      }
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      int self_k_;
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      int* k_;
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    };
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    const int N = 10;
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    int ks[N] = {0};
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    {
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      SMART_VAR(V[N], v)
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      {
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        for (int i = 0; i < N; i++) {
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          v[i].k_ = &ks[i];
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        }
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      }
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    }
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    for (int i = 0; i < N; i++) {
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      EXPECT_EQ(ks[i], 2);
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    }
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  }
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  // stack && heap
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  {
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    // stack
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    bool from_stack = false;
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    has_malloc = false;
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    has_free = false;
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    SMART_VAR(Buffer<s_size / 2>, buf)
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    {
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      int v;
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      from_stack = abs((char*)&buf - (char*)&v) < s_size;
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    }
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    EXPECT_TRUE(from_stack);
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    EXPECT_FALSE(has_malloc);
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    EXPECT_FALSE(has_free);
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    // heap
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    {
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      bool from_heap = false;
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      has_malloc = false;
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      has_free = false;
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      {
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        SMART_VAR(Buffer<s_size / 2>, buf)
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        {
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          int v;
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          from_heap = abs((char*)&buf - (char*)&v) > s_size;
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        }
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      }
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      EXPECT_TRUE(from_heap);
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      EXPECT_TRUE(has_malloc);
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      EXPECT_TRUE(has_free);
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    }
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    // make heap alloc fail
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    {
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      bool has_error = false;
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      make_malloc_fail = true;
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      {
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        SMART_VAR(Buffer<s_size / 2>, buf)
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        {
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          UNUSEDx(buf);
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          EXPECT_TRUE(false);
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        }
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        else
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        {
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          has_error = true;
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        }
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      }
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      EXPECT_TRUE(has_error);
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      make_malloc_fail = false;
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    }
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  }
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  // Overwrite error code
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  {
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    int err = -10000;
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    ret = err;
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    int path = 0;
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    SMART_VAR(int, i)
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    {
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      UNUSEDx(i);
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      path = 1;
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    }
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    else
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    {
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      path = 2;
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    }
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    EXPECT_EQ(ret, OB_SUCCESS);
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    EXPECT_EQ(path, 1);
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  }
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  // direct heap
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  {
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    has_malloc = false;
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    int v = 0;
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    HEAP_VAR(int, i, 10)
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    {
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      v = i;
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    }
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    EXPECT_TRUE(has_malloc);
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    EXPECT_EQ(v, 10);
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  }
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  return nullptr;
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}
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template <int64_t N>
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void do_alloc()
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{
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  int ret = OB_SUCCESS;
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  char b[N];
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  cout << b[0] << endl;
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  has_malloc = false;
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  SMART_VAR(char[(8L << 10) + 1], buf)
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  {
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    UNUSEDx(buf);
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  }
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  EXPECT_TRUE(has_malloc);
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}
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void* test2(void*)
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{
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  cout << "alloc from heap when stack used large than SMART_VAR_MAX_STACK_USE_SIZE" << endl;
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  int ret = OB_SUCCESS;
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  bool is_overflow = false;
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  int64_t used = 0;
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  if (OB_FAIL(check_stack_overflow(is_overflow, get_reserved_stack_size(), &used))) {}
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  ASSERT_EQ(OB_SUCCESS, ret), nullptr;
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  constexpr static int64_t N = SMART_VAR_MAX_STACK_USE_SIZE;
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  EXPECT_LT(used, N);
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  do_alloc<N>();
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  return nullptr;
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}
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TEST(utility, all)
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{
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  pthread_t th;
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  pthread_attr_t attr;
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  pthread_attr_init(&attr);
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  pthread_attr_setstacksize(&attr, s_size);
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  pthread_create(&th, &attr, oceanbase::common::test, nullptr);
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  pthread_join(th, nullptr);
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  pthread_attr_destroy(&attr);
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}
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TEST(utility, used_size)
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{
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  pthread_t th;
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  pthread_attr_t attr;
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  pthread_attr_init(&attr);
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  pthread_attr_setstacksize(&attr, s_size);
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  pthread_create(&th, &attr, oceanbase::common::test2, nullptr);
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  pthread_join(th, nullptr);
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  pthread_attr_destroy(&attr);
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}
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}  // end namespace common
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}  // end namespace oceanbase
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int main(int argc, char** argv)
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{
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  ::testing::InitGoogleTest(&argc, argv);
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  return RUN_ALL_TESTS();
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}
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