347 lines
		
	
	
		
			8.5 KiB
		
	
	
	
		
			C++
		
	
	
	
	
	
			
		
		
	
	
			347 lines
		
	
	
		
			8.5 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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| 
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| #include "lib/container/ob_loser_tree.h"
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| #include "lib/container/ob_se_array.h"
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| #include <gtest/gtest.h>
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| using namespace oceanbase::common;
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| 
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| class ObLoserTreeTest: public ::testing::Test
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| {
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|   public:
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|     ObLoserTreeTest() {};
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|     virtual ~ObLoserTreeTest() {};
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|     virtual void SetUp() {};
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|     virtual void TearDown() {};
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|   private:
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|     // disallow copy
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|     ObLoserTreeTest(const ObLoserTreeTest &other);
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|     ObLoserTreeTest& operator=(const ObLoserTreeTest &other);
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|   private:
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|     // data members
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| };
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| 
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| class TestMaxComp
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| {
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| public:
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|   int cmp(const int64_t &a, const int64_t &b, int64_t &cmp_ret)
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|   {
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|     int ret = OB_SUCCESS;
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|     cmp_ret = 0;
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|     if (a < b) {
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|       cmp_ret = 1;
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|     } else if (a > b) {
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|       cmp_ret = -1;
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|     }
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|     return ret;
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|   }
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| };
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| 
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| TEST_F(ObLoserTreeTest, single)
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| {
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|   int ret = 0;
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|   TestMaxComp tc;
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|   ObArenaAllocator allocator;
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|   ObLoserTree<int64_t, TestMaxComp, 8> tree(tc);
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|   int64_t data = 2019;
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| 
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|   // not init
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|   ret = tree.push(data);
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|   ASSERT_EQ(ret, OB_NOT_INIT);
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_NOT_INIT);
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|   ASSERT_EQ(0, tree.count());
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|   ASSERT_TRUE(tree.is_unique_champion());
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| 
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|   // 0 player
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|   ret = tree.init(0, allocator);
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|   ASSERT_EQ(ret, OB_INVALID_ARGUMENT);
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| 
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|   // init twice
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|   ret = tree.init(1, allocator);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_TRUE(tree.is_unique_champion());
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|   ret = tree.init(1, allocator);
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|   ASSERT_EQ(ret, OB_INIT_TWICE);
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|   ASSERT_EQ(0, tree.count());
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| 
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|   // push twice
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|   ret = tree.push(data);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(1, tree.count());
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|   ASSERT_TRUE(tree.is_unique_champion());
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|   ret = tree.push(data);
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|   ASSERT_EQ(ret, OB_SIZE_OVERFLOW);
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|   ASSERT_EQ(1, tree.count());
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| 
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|   // not rebuild
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|   const int64_t *top = nullptr;
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_ERR_UNEXPECTED);
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_ERR_UNEXPECTED);
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|   ASSERT_EQ(1, tree.count());
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| 
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|   // call rebuild and top twice
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_TRUE(tree.is_unique_champion());
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_TRUE(tree.is_unique_champion());
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(data, *top);
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|   ASSERT_TRUE(tree.is_unique_champion());
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(data, *top);
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|   ASSERT_EQ(1, tree.count());
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|   ASSERT_TRUE(tree.is_unique_champion());
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| 
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_TRUE(tree.is_unique_champion());
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_EMPTY_RESULT);
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|   ASSERT_EQ(0, tree.count());
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| 
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_EMPTY_RESULT);
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|   ASSERT_EQ(0, tree.count());
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| }
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| 
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| TEST_F(ObLoserTreeTest, multiple_players)
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| {
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|   int ret = 0;
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|   TestMaxComp tc;
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|   ObArenaAllocator allocator;
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|   ObLoserTree<int64_t, TestMaxComp, 8> tree(tc);
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|   const int64_t DATA_CNT = 8;
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|   int64_t data[DATA_CNT] = {1, 2, 3, 4, 5, 6, 7, 8};
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| 
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|   // different player
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|   const int64_t *top;
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|   for (int64_t count = 1; count <= DATA_CNT; ++count) {
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|     tree.reset();
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|     ret = tree.init(count, allocator);
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|     ASSERT_EQ(ret, OB_SUCCESS);
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|     ASSERT_TRUE(tree.empty());
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|     for (int64_t i = 0; i < count; ++i) {
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|       ret = tree.push(data[i]);
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|       ASSERT_EQ(ret, OB_SUCCESS);
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|       ASSERT_EQ(i + 1, tree.count());
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|     }
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|     ret = tree.rebuild();
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|     ASSERT_EQ(ret, OB_SUCCESS);
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|     ret = tree.top(top);
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|     ASSERT_EQ(ret, OB_SUCCESS);
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|     ASSERT_EQ(count, *top);
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|     ASSERT_EQ(count, tree.count());
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|     ASSERT_FALSE(tree.empty());
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|   }
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| }
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| 
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| TEST_F(ObLoserTreeTest, basic)
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| {
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|   int ret = 0;
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|   TestMaxComp tc;
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|   ObArenaAllocator allocator;
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|   ObLoserTree<int64_t, TestMaxComp, 8> tree(tc);
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|   const int64_t DATA_CNT = 7;
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|   int64_t data[DATA_CNT] = {0, 8, 12, 3, 14, 7, 5};
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|   ret = tree.init(DATA_CNT, allocator);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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| 
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|   for (int64_t i = 0; i < DATA_CNT; ++i) {
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|     ret = tree.push(data[i]);
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|     ASSERT_EQ(ret, OB_SUCCESS);
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|   }
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| 
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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| 
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|   const int64_t *top = nullptr;
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(*top, 14);
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|   ASSERT_EQ(DATA_CNT, tree.count());
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| 
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|   // {0, 8, 12, 3, null, 7, 5}
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(*top, 12);
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|   ASSERT_EQ(DATA_CNT - 1, tree.count());
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| 
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|   // {0, 8, null, 3, null, 7, 5}
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(*top, 8);
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|   ASSERT_EQ(DATA_CNT - 2, tree.count());
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| 
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|   // {0, null, null, 3, null, 7, 5}
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(*top, 7);
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|   ASSERT_EQ(DATA_CNT - 3, tree.count());
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| 
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|   // {0, 5, null, 3, null, 7, 5}
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|   ret = tree.push(-1);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(DATA_CNT - 2, tree.count());
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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| 
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(*top, 7);
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|   ASSERT_EQ(DATA_CNT - 2, tree.count());
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| 
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|   // {0, 5, null, 3, 18, 7, 5}
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|   ret = tree.push(18);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(DATA_CNT - 1, tree.count());
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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| 
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(*top, 18);
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|   ASSERT_EQ(DATA_CNT - 1, tree.count());
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| }
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| 
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| TEST_F(ObLoserTreeTest, only_one_element)
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| {
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|   int ret = 0;
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|   TestMaxComp tc;
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|   ObArenaAllocator allocator;
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|   ObLoserTree<int64_t, TestMaxComp, 8> tree(tc);
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|   const int64_t DATA_CNT = 7;
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|   int64_t data[DATA_CNT] = {5, 12, 4, 3, 12, 0, 5};
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|   ret = tree.init(DATA_CNT, allocator);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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| 
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|   for (int64_t i = 0; i < DATA_CNT; ++i) {
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|     ret = tree.push(data[i]);
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|     ASSERT_EQ(ret, OB_SUCCESS);
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|   }
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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| 
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|   // only 0 is left
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|   for (int64_t i = 0; i < DATA_CNT - 1; ++i) {
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|     ret = tree.pop();
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|     ASSERT_EQ(ret, OB_SUCCESS);
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|   }
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| 
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|   const int64_t *top = nullptr;
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(0, *top);
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| 
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_EMPTY_RESULT);
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| 
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|   // only 3 is left
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|   ret = tree.push(3);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(1, tree.count());
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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| 
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|   // only 99 is left
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|   ret = tree.push(99);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ret = tree.rebuild();
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|   ret = tree.top(top);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_EQ(99, *top);
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| }
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| 
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| TEST_F(ObLoserTreeTest, unique_champion)
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| {
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|   int ret = 0;
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|   TestMaxComp tc;
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|   ObArenaAllocator allocator;
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|   ObLoserTree<int64_t, TestMaxComp, 8> tree(tc);
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|   const int64_t DATA_CNT = 7;
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|   int64_t data[DATA_CNT] = {4, 4, 7, 3, 12, 5, 12};
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|   ret = tree.init(DATA_CNT, allocator);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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| 
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|   for (int64_t i = 0; i < DATA_CNT; ++i) {
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|     ret = tree.push(data[i]);
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|     ASSERT_EQ(ret, OB_SUCCESS);
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|   }
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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| 
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|   // {4, 4, 7, 3, 12, 5, 12}
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|   ASSERT_FALSE(tree.is_unique_champion());
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| 
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|   // {4, 4, 7, 3, null, 5, 12}
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_TRUE(tree.is_unique_champion());
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| 
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|   // {4, 4, 7, 3, null, 5, null}
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_TRUE(tree.is_unique_champion());
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| 
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|   // {4, 4, null, 3, null, 5, null}
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_TRUE(tree.is_unique_champion());
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| 
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|   // {4, 4, null, 3, null, null, null}
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|   ret = tree.pop();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_FALSE(tree.is_unique_champion());
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| 
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|   // {4, 4, null, 3, -1, null, null}
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|   ret = tree.push(-1);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_FALSE(tree.is_unique_champion());
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| 
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|   // {4, 4, 10, 3, -1, null, null}
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|   ret = tree.push(10);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_TRUE(tree.is_unique_champion());
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| 
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|   // {4, 4, 10, 3, -1, 10, null}
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|   ret = tree.push(10);
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ret = tree.rebuild();
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|   ASSERT_EQ(ret, OB_SUCCESS);
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|   ASSERT_FALSE(tree.is_unique_champion());
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| }
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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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