Coverage Report

Created: 2026-04-22 11:46

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
be/src/util/counts.h
Line
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Source
1
// Licensed to the Apache Software Foundation (ASF) under one
2
// or more contributor license agreements.  See the NOTICE file
3
// distributed with this work for additional information
4
// regarding copyright ownership.  The ASF licenses this file
5
// to you under the Apache License, Version 2.0 (the
6
// "License"); you may not use this file except in compliance
7
// with the License.  You may obtain a copy of the License at
8
//
9
//   http://www.apache.org/licenses/LICENSE-2.0
10
//
11
// Unless required by applicable law or agreed to in writing,
12
// software distributed under the License is distributed on an
13
// "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY
14
// KIND, either express or implied.  See the License for the
15
// specific language governing permissions and limitations
16
// under the License.
17
18
#pragma once
19
20
#include <pdqsort.h>
21
22
#include <algorithm>
23
#include <cmath>
24
#include <queue>
25
26
#include "core/pod_array.h"
27
#include "core/string_buffer.hpp"
28
29
namespace doris {
30
31
template <typename Ty>
32
class Counts {
33
public:
34
3.12k
    Counts() = default;
_ZN5doris6CountsIaEC2Ev
Line
Count
Source
34
49
    Counts() = default;
_ZN5doris6CountsIsEC2Ev
Line
Count
Source
34
152
    Counts() = default;
_ZN5doris6CountsIiEC2Ev
Line
Count
Source
34
1.88k
    Counts() = default;
_ZN5doris6CountsIlEC2Ev
Line
Count
Source
34
778
    Counts() = default;
_ZN5doris6CountsInEC2Ev
Line
Count
Source
34
45
    Counts() = default;
_ZN5doris6CountsIfEC2Ev
Line
Count
Source
34
15
    Counts() = default;
_ZN5doris6CountsIdEC2Ev
Line
Count
Source
34
198
    Counts() = default;
35
36
1.06k
    void merge(Counts* other) {
37
1.06k
        if (other != nullptr && !other->_nums.empty()) {
38
1.06k
            _sorted_nums_vec.emplace_back(std::move(other->_nums));
39
1.06k
        }
40
1.06k
    }
_ZN5doris6CountsIaE5mergeEPS1_
Line
Count
Source
36
6
    void merge(Counts* other) {
37
6
        if (other != nullptr && !other->_nums.empty()) {
38
6
            _sorted_nums_vec.emplace_back(std::move(other->_nums));
39
6
        }
40
6
    }
_ZN5doris6CountsIsE5mergeEPS1_
Line
Count
Source
36
9
    void merge(Counts* other) {
37
9
        if (other != nullptr && !other->_nums.empty()) {
38
9
            _sorted_nums_vec.emplace_back(std::move(other->_nums));
39
9
        }
40
9
    }
_ZN5doris6CountsIiE5mergeEPS1_
Line
Count
Source
36
668
    void merge(Counts* other) {
37
668
        if (other != nullptr && !other->_nums.empty()) {
38
668
            _sorted_nums_vec.emplace_back(std::move(other->_nums));
39
668
        }
40
668
    }
_ZN5doris6CountsIlE5mergeEPS1_
Line
Count
Source
36
314
    void merge(Counts* other) {
37
314
        if (other != nullptr && !other->_nums.empty()) {
38
314
            _sorted_nums_vec.emplace_back(std::move(other->_nums));
39
314
        }
40
314
    }
_ZN5doris6CountsInE5mergeEPS1_
Line
Count
Source
36
6
    void merge(Counts* other) {
37
6
        if (other != nullptr && !other->_nums.empty()) {
38
6
            _sorted_nums_vec.emplace_back(std::move(other->_nums));
39
6
        }
40
6
    }
_ZN5doris6CountsIfE5mergeEPS1_
Line
Count
Source
36
6
    void merge(Counts* other) {
37
6
        if (other != nullptr && !other->_nums.empty()) {
38
6
            _sorted_nums_vec.emplace_back(std::move(other->_nums));
39
6
        }
40
6
    }
_ZN5doris6CountsIdE5mergeEPS1_
Line
Count
Source
36
56
    void merge(Counts* other) {
37
56
        if (other != nullptr && !other->_nums.empty()) {
38
56
            _sorted_nums_vec.emplace_back(std::move(other->_nums));
39
56
        }
40
56
    }
41
42
    void increment(Ty key, uint32_t i) {
43
        auto old_size = _nums.size();
44
        _nums.resize(_nums.size() + i);
45
        for (uint32_t j = 0; j < i; ++j) {
46
            _nums[old_size + j] = key;
47
        }
48
    }
49
50
2.75k
    void increment(Ty key) { _nums.push_back(key); }
_ZN5doris6CountsIaE9incrementEa
Line
Count
Source
50
73
    void increment(Ty key) { _nums.push_back(key); }
_ZN5doris6CountsIsE9incrementEs
Line
Count
Source
50
398
    void increment(Ty key) { _nums.push_back(key); }
_ZN5doris6CountsIiE9incrementEi
Line
Count
Source
50
1.57k
    void increment(Ty key) { _nums.push_back(key); }
_ZN5doris6CountsIlE9incrementEl
Line
Count
Source
50
401
    void increment(Ty key) { _nums.push_back(key); }
_ZN5doris6CountsInE9incrementEn
Line
Count
Source
50
45
    void increment(Ty key) { _nums.push_back(key); }
_ZN5doris6CountsIfE9incrementEf
Line
Count
Source
50
9
    void increment(Ty key) { _nums.push_back(key); }
_ZN5doris6CountsIdE9incrementEd
Line
Count
Source
50
259
    void increment(Ty key) { _nums.push_back(key); }
51
52
5
    void increment_batch(const PaddedPODArray<Ty>& keys) { _nums.insert(keys.begin(), keys.end()); }
Unexecuted instantiation: _ZN5doris6CountsIaE15increment_batchERKNS_8PODArrayIaLm4096ENS_9AllocatorILb0ELb0ELb0ENS_22DefaultMemoryAllocatorELb1EEELm16ELm15EEE
Unexecuted instantiation: _ZN5doris6CountsIsE15increment_batchERKNS_8PODArrayIsLm4096ENS_9AllocatorILb0ELb0ELb0ENS_22DefaultMemoryAllocatorELb1EEELm16ELm15EEE
Unexecuted instantiation: _ZN5doris6CountsIiE15increment_batchERKNS_8PODArrayIiLm4096ENS_9AllocatorILb0ELb0ELb0ENS_22DefaultMemoryAllocatorELb1EEELm16ELm15EEE
_ZN5doris6CountsIlE15increment_batchERKNS_8PODArrayIlLm4096ENS_9AllocatorILb0ELb0ELb0ENS_22DefaultMemoryAllocatorELb1EEELm16ELm15EEE
Line
Count
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52
5
    void increment_batch(const PaddedPODArray<Ty>& keys) { _nums.insert(keys.begin(), keys.end()); }
Unexecuted instantiation: _ZN5doris6CountsInE15increment_batchERKNS_8PODArrayInLm4096ENS_9AllocatorILb0ELb0ELb0ENS_22DefaultMemoryAllocatorELb1EEELm16ELm15EEE
Unexecuted instantiation: _ZN5doris6CountsIfE15increment_batchERKNS_8PODArrayIfLm4096ENS_9AllocatorILb0ELb0ELb0ENS_22DefaultMemoryAllocatorELb1EEELm16ELm15EEE
Unexecuted instantiation: _ZN5doris6CountsIdE15increment_batchERKNS_8PODArrayIdLm4096ENS_9AllocatorILb0ELb0ELb0ENS_22DefaultMemoryAllocatorELb1EEELm16ELm15EEE
53
54
1.48k
    void serialize(BufferWritable& buf) {
55
1.48k
        if (!_nums.empty()) {
56
1.19k
            pdqsort(_nums.begin(), _nums.end());
57
1.19k
            size_t size = _nums.size();
58
1.19k
            buf.write_binary(size);
59
1.19k
            buf.write(reinterpret_cast<const char*>(_nums.data()), sizeof(Ty) * size);
60
1.19k
        } else {
61
            // convert _sorted_nums_vec to _nums and do seiralize again
62
287
            _convert_sorted_num_vec_to_nums();
63
287
            serialize(buf);
64
287
        }
65
1.48k
    }
_ZN5doris6CountsIaE9serializeERNS_14BufferWritableE
Line
Count
Source
54
6
    void serialize(BufferWritable& buf) {
55
6
        if (!_nums.empty()) {
56
6
            pdqsort(_nums.begin(), _nums.end());
57
6
            size_t size = _nums.size();
58
6
            buf.write_binary(size);
59
6
            buf.write(reinterpret_cast<const char*>(_nums.data()), sizeof(Ty) * size);
60
6
        } else {
61
            // convert _sorted_nums_vec to _nums and do seiralize again
62
0
            _convert_sorted_num_vec_to_nums();
63
0
            serialize(buf);
64
0
        }
65
6
    }
_ZN5doris6CountsIsE9serializeERNS_14BufferWritableE
Line
Count
Source
54
9
    void serialize(BufferWritable& buf) {
55
9
        if (!_nums.empty()) {
56
9
            pdqsort(_nums.begin(), _nums.end());
57
9
            size_t size = _nums.size();
58
9
            buf.write_binary(size);
59
9
            buf.write(reinterpret_cast<const char*>(_nums.data()), sizeof(Ty) * size);
60
9
        } else {
61
            // convert _sorted_nums_vec to _nums and do seiralize again
62
0
            _convert_sorted_num_vec_to_nums();
63
0
            serialize(buf);
64
0
        }
65
9
    }
_ZN5doris6CountsIiE9serializeERNS_14BufferWritableE
Line
Count
Source
54
941
    void serialize(BufferWritable& buf) {
55
941
        if (!_nums.empty()) {
56
785
            pdqsort(_nums.begin(), _nums.end());
57
785
            size_t size = _nums.size();
58
785
            buf.write_binary(size);
59
785
            buf.write(reinterpret_cast<const char*>(_nums.data()), sizeof(Ty) * size);
60
785
        } else {
61
            // convert _sorted_nums_vec to _nums and do seiralize again
62
156
            _convert_sorted_num_vec_to_nums();
63
156
            serialize(buf);
64
156
        }
65
941
    }
_ZN5doris6CountsIlE9serializeERNS_14BufferWritableE
Line
Count
Source
54
460
    void serialize(BufferWritable& buf) {
55
460
        if (!_nums.empty()) {
56
329
            pdqsort(_nums.begin(), _nums.end());
57
329
            size_t size = _nums.size();
58
329
            buf.write_binary(size);
59
329
            buf.write(reinterpret_cast<const char*>(_nums.data()), sizeof(Ty) * size);
60
329
        } else {
61
            // convert _sorted_nums_vec to _nums and do seiralize again
62
131
            _convert_sorted_num_vec_to_nums();
63
131
            serialize(buf);
64
131
        }
65
460
    }
_ZN5doris6CountsInE9serializeERNS_14BufferWritableE
Line
Count
Source
54
6
    void serialize(BufferWritable& buf) {
55
6
        if (!_nums.empty()) {
56
6
            pdqsort(_nums.begin(), _nums.end());
57
6
            size_t size = _nums.size();
58
6
            buf.write_binary(size);
59
6
            buf.write(reinterpret_cast<const char*>(_nums.data()), sizeof(Ty) * size);
60
6
        } else {
61
            // convert _sorted_nums_vec to _nums and do seiralize again
62
0
            _convert_sorted_num_vec_to_nums();
63
0
            serialize(buf);
64
0
        }
65
6
    }
_ZN5doris6CountsIfE9serializeERNS_14BufferWritableE
Line
Count
Source
54
6
    void serialize(BufferWritable& buf) {
55
6
        if (!_nums.empty()) {
56
6
            pdqsort(_nums.begin(), _nums.end());
57
6
            size_t size = _nums.size();
58
6
            buf.write_binary(size);
59
6
            buf.write(reinterpret_cast<const char*>(_nums.data()), sizeof(Ty) * size);
60
6
        } else {
61
            // convert _sorted_nums_vec to _nums and do seiralize again
62
0
            _convert_sorted_num_vec_to_nums();
63
0
            serialize(buf);
64
0
        }
65
6
    }
_ZN5doris6CountsIdE9serializeERNS_14BufferWritableE
Line
Count
Source
54
56
    void serialize(BufferWritable& buf) {
55
56
        if (!_nums.empty()) {
56
56
            pdqsort(_nums.begin(), _nums.end());
57
56
            size_t size = _nums.size();
58
56
            buf.write_binary(size);
59
56
            buf.write(reinterpret_cast<const char*>(_nums.data()), sizeof(Ty) * size);
60
56
        } else {
61
            // convert _sorted_nums_vec to _nums and do seiralize again
62
0
            _convert_sorted_num_vec_to_nums();
63
0
            serialize(buf);
64
0
        }
65
56
    }
66
67
1.06k
    void unserialize(BufferReadable& buf) {
68
1.06k
        size_t size;
69
1.06k
        buf.read_binary(size);
70
1.06k
        _nums.resize(size);
71
1.06k
        auto buff = buf.read(sizeof(Ty) * size);
72
1.06k
        memcpy(_nums.data(), buff.data, buff.size);
73
1.06k
    }
_ZN5doris6CountsIaE11unserializeERNS_14BufferReadableE
Line
Count
Source
67
6
    void unserialize(BufferReadable& buf) {
68
6
        size_t size;
69
6
        buf.read_binary(size);
70
6
        _nums.resize(size);
71
6
        auto buff = buf.read(sizeof(Ty) * size);
72
6
        memcpy(_nums.data(), buff.data, buff.size);
73
6
    }
_ZN5doris6CountsIsE11unserializeERNS_14BufferReadableE
Line
Count
Source
67
9
    void unserialize(BufferReadable& buf) {
68
9
        size_t size;
69
9
        buf.read_binary(size);
70
9
        _nums.resize(size);
71
9
        auto buff = buf.read(sizeof(Ty) * size);
72
9
        memcpy(_nums.data(), buff.data, buff.size);
73
9
    }
_ZN5doris6CountsIiE11unserializeERNS_14BufferReadableE
Line
Count
Source
67
668
    void unserialize(BufferReadable& buf) {
68
668
        size_t size;
69
668
        buf.read_binary(size);
70
668
        _nums.resize(size);
71
668
        auto buff = buf.read(sizeof(Ty) * size);
72
668
        memcpy(_nums.data(), buff.data, buff.size);
73
668
    }
_ZN5doris6CountsIlE11unserializeERNS_14BufferReadableE
Line
Count
Source
67
314
    void unserialize(BufferReadable& buf) {
68
314
        size_t size;
69
314
        buf.read_binary(size);
70
314
        _nums.resize(size);
71
314
        auto buff = buf.read(sizeof(Ty) * size);
72
314
        memcpy(_nums.data(), buff.data, buff.size);
73
314
    }
_ZN5doris6CountsInE11unserializeERNS_14BufferReadableE
Line
Count
Source
67
6
    void unserialize(BufferReadable& buf) {
68
6
        size_t size;
69
6
        buf.read_binary(size);
70
6
        _nums.resize(size);
71
6
        auto buff = buf.read(sizeof(Ty) * size);
72
6
        memcpy(_nums.data(), buff.data, buff.size);
73
6
    }
_ZN5doris6CountsIfE11unserializeERNS_14BufferReadableE
Line
Count
Source
67
6
    void unserialize(BufferReadable& buf) {
68
6
        size_t size;
69
6
        buf.read_binary(size);
70
6
        _nums.resize(size);
71
6
        auto buff = buf.read(sizeof(Ty) * size);
72
6
        memcpy(_nums.data(), buff.data, buff.size);
73
6
    }
_ZN5doris6CountsIdE11unserializeERNS_14BufferReadableE
Line
Count
Source
67
56
    void unserialize(BufferReadable& buf) {
68
56
        size_t size;
69
56
        buf.read_binary(size);
70
56
        _nums.resize(size);
71
56
        auto buff = buf.read(sizeof(Ty) * size);
72
56
        memcpy(_nums.data(), buff.data, buff.size);
73
56
    }
74
75
1.00k
    double terminate(double quantile) {
76
1.00k
        if (_sorted_nums_vec.size() <= 1) {
77
971
            if (_sorted_nums_vec.size() == 1) {
78
421
                _nums = std::move(_sorted_nums_vec[0]);
79
421
            }
80
81
971
            if (_nums.empty()) {
82
                // Although set null here, but the value is 0.0 and the call method just
83
                // get val in aggregate_function_percentile_approx.h
84
0
                return 0.0;
85
0
            }
86
87
971
            if (UNLIKELY(!std::is_sorted(_nums.begin(), _nums.end()))) {
88
132
                pdqsort(_nums.begin(), _nums.end());
89
132
            }
90
91
971
            if (quantile == 1 || _nums.size() == 1) {
92
440
                return _nums.back();
93
440
            }
94
95
531
            double u = (_nums.size() - 1) * quantile;
96
531
            auto index = static_cast<uint32_t>(u);
97
531
            return _nums[index] +
98
531
                   (u - static_cast<double>(index)) * (static_cast<double>(_nums[index + 1]) -
99
531
                                                       static_cast<double>(_nums[index]));
100
971
        } else {
101
31
            DCHECK(_nums.empty());
102
31
            size_t rows = 0;
103
75
            for (const auto& i : _sorted_nums_vec) {
104
75
                rows += i.size();
105
75
            }
106
31
            const bool reverse = quantile > 0.5 && rows > 2;
107
31
            double u = (rows - 1) * quantile;
108
31
            auto index = static_cast<uint32_t>(u);
109
            // if reverse, the step of target should start 0 like not reverse
110
            // so here rows need to minus index + 2
111
            // eg: rows = 10, index = 5
112
            // if not reverse, so the first number loc is 5, the second number loc is 6
113
            // if reverse, so the second number is 3, the first number is 4
114
            // 5 + 4 = 3 + 6 = 9 = rows - 1.
115
            // the rows must GE 2 beacuse `_sorted_nums_vec` size GE 2
116
31
            size_t target = reverse ? rows - index - 2 : index;
117
31
            if (quantile == 1) {
118
0
                target = 0;
119
0
            }
120
31
            auto [first_number, second_number] = _merge_sort_and_get_numbers(target, reverse);
121
31
            if (quantile == 1) {
122
0
                return second_number;
123
0
            }
124
31
            return first_number +
125
31
                   (u - static_cast<double>(index)) *
126
31
                           (static_cast<double>(second_number) - static_cast<double>(first_number));
127
31
        }
128
1.00k
    }
_ZN5doris6CountsIaE9terminateEd
Line
Count
Source
75
61
    double terminate(double quantile) {
76
61
        if (_sorted_nums_vec.size() <= 1) {
77
58
            if (_sorted_nums_vec.size() == 1) {
78
0
                _nums = std::move(_sorted_nums_vec[0]);
79
0
            }
80
81
58
            if (_nums.empty()) {
82
                // Although set null here, but the value is 0.0 and the call method just
83
                // get val in aggregate_function_percentile_approx.h
84
0
                return 0.0;
85
0
            }
86
87
58
            if (UNLIKELY(!std::is_sorted(_nums.begin(), _nums.end()))) {
88
24
                pdqsort(_nums.begin(), _nums.end());
89
24
            }
90
91
58
            if (quantile == 1 || _nums.size() == 1) {
92
34
                return _nums.back();
93
34
            }
94
95
24
            double u = (_nums.size() - 1) * quantile;
96
24
            auto index = static_cast<uint32_t>(u);
97
24
            return _nums[index] +
98
24
                   (u - static_cast<double>(index)) * (static_cast<double>(_nums[index + 1]) -
99
24
                                                       static_cast<double>(_nums[index]));
100
58
        } else {
101
3
            DCHECK(_nums.empty());
102
3
            size_t rows = 0;
103
6
            for (const auto& i : _sorted_nums_vec) {
104
6
                rows += i.size();
105
6
            }
106
3
            const bool reverse = quantile > 0.5 && rows > 2;
107
3
            double u = (rows - 1) * quantile;
108
3
            auto index = static_cast<uint32_t>(u);
109
            // if reverse, the step of target should start 0 like not reverse
110
            // so here rows need to minus index + 2
111
            // eg: rows = 10, index = 5
112
            // if not reverse, so the first number loc is 5, the second number loc is 6
113
            // if reverse, so the second number is 3, the first number is 4
114
            // 5 + 4 = 3 + 6 = 9 = rows - 1.
115
            // the rows must GE 2 beacuse `_sorted_nums_vec` size GE 2
116
3
            size_t target = reverse ? rows - index - 2 : index;
117
3
            if (quantile == 1) {
118
0
                target = 0;
119
0
            }
120
3
            auto [first_number, second_number] = _merge_sort_and_get_numbers(target, reverse);
121
3
            if (quantile == 1) {
122
0
                return second_number;
123
0
            }
124
3
            return first_number +
125
3
                   (u - static_cast<double>(index)) *
126
3
                           (static_cast<double>(second_number) - static_cast<double>(first_number));
127
3
        }
128
61
    }
_ZN5doris6CountsIsE9terminateEd
Line
Count
Source
75
212
    double terminate(double quantile) {
76
212
        if (_sorted_nums_vec.size() <= 1) {
77
209
            if (_sorted_nums_vec.size() == 1) {
78
3
                _nums = std::move(_sorted_nums_vec[0]);
79
3
            }
80
81
209
            if (_nums.empty()) {
82
                // Although set null here, but the value is 0.0 and the call method just
83
                // get val in aggregate_function_percentile_approx.h
84
0
                return 0.0;
85
0
            }
86
87
209
            if (UNLIKELY(!std::is_sorted(_nums.begin(), _nums.end()))) {
88
96
                pdqsort(_nums.begin(), _nums.end());
89
96
            }
90
91
209
            if (quantile == 1 || _nums.size() == 1) {
92
66
                return _nums.back();
93
66
            }
94
95
143
            double u = (_nums.size() - 1) * quantile;
96
143
            auto index = static_cast<uint32_t>(u);
97
143
            return _nums[index] +
98
143
                   (u - static_cast<double>(index)) * (static_cast<double>(_nums[index + 1]) -
99
143
                                                       static_cast<double>(_nums[index]));
100
209
        } else {
101
3
            DCHECK(_nums.empty());
102
3
            size_t rows = 0;
103
6
            for (const auto& i : _sorted_nums_vec) {
104
6
                rows += i.size();
105
6
            }
106
3
            const bool reverse = quantile > 0.5 && rows > 2;
107
3
            double u = (rows - 1) * quantile;
108
3
            auto index = static_cast<uint32_t>(u);
109
            // if reverse, the step of target should start 0 like not reverse
110
            // so here rows need to minus index + 2
111
            // eg: rows = 10, index = 5
112
            // if not reverse, so the first number loc is 5, the second number loc is 6
113
            // if reverse, so the second number is 3, the first number is 4
114
            // 5 + 4 = 3 + 6 = 9 = rows - 1.
115
            // the rows must GE 2 beacuse `_sorted_nums_vec` size GE 2
116
3
            size_t target = reverse ? rows - index - 2 : index;
117
3
            if (quantile == 1) {
118
0
                target = 0;
119
0
            }
120
3
            auto [first_number, second_number] = _merge_sort_and_get_numbers(target, reverse);
121
3
            if (quantile == 1) {
122
0
                return second_number;
123
0
            }
124
3
            return first_number +
125
3
                   (u - static_cast<double>(index)) *
126
3
                           (static_cast<double>(second_number) - static_cast<double>(first_number));
127
3
        }
128
212
    }
_ZN5doris6CountsIiE9terminateEd
Line
Count
Source
75
429
    double terminate(double quantile) {
76
429
        if (_sorted_nums_vec.size() <= 1) {
77
426
            if (_sorted_nums_vec.size() == 1) {
78
323
                _nums = std::move(_sorted_nums_vec[0]);
79
323
            }
80
81
426
            if (_nums.empty()) {
82
                // Although set null here, but the value is 0.0 and the call method just
83
                // get val in aggregate_function_percentile_approx.h
84
0
                return 0.0;
85
0
            }
86
87
426
            if (UNLIKELY(!std::is_sorted(_nums.begin(), _nums.end()))) {
88
11
                pdqsort(_nums.begin(), _nums.end());
89
11
            }
90
91
426
            if (quantile == 1 || _nums.size() == 1) {
92
227
                return _nums.back();
93
227
            }
94
95
199
            double u = (_nums.size() - 1) * quantile;
96
199
            auto index = static_cast<uint32_t>(u);
97
199
            return _nums[index] +
98
199
                   (u - static_cast<double>(index)) * (static_cast<double>(_nums[index + 1]) -
99
199
                                                       static_cast<double>(_nums[index]));
100
426
        } else {
101
3
            DCHECK(_nums.empty());
102
3
            size_t rows = 0;
103
6
            for (const auto& i : _sorted_nums_vec) {
104
6
                rows += i.size();
105
6
            }
106
3
            const bool reverse = quantile > 0.5 && rows > 2;
107
3
            double u = (rows - 1) * quantile;
108
3
            auto index = static_cast<uint32_t>(u);
109
            // if reverse, the step of target should start 0 like not reverse
110
            // so here rows need to minus index + 2
111
            // eg: rows = 10, index = 5
112
            // if not reverse, so the first number loc is 5, the second number loc is 6
113
            // if reverse, so the second number is 3, the first number is 4
114
            // 5 + 4 = 3 + 6 = 9 = rows - 1.
115
            // the rows must GE 2 beacuse `_sorted_nums_vec` size GE 2
116
3
            size_t target = reverse ? rows - index - 2 : index;
117
3
            if (quantile == 1) {
118
0
                target = 0;
119
0
            }
120
3
            auto [first_number, second_number] = _merge_sort_and_get_numbers(target, reverse);
121
3
            if (quantile == 1) {
122
0
                return second_number;
123
0
            }
124
3
            return first_number +
125
3
                   (u - static_cast<double>(index)) *
126
3
                           (static_cast<double>(second_number) - static_cast<double>(first_number));
127
3
        }
128
429
    }
_ZN5doris6CountsIlE9terminateEd
Line
Count
Source
75
128
    double terminate(double quantile) {
76
128
        if (_sorted_nums_vec.size() <= 1) {
77
115
            if (_sorted_nums_vec.size() == 1) {
78
45
                _nums = std::move(_sorted_nums_vec[0]);
79
45
            }
80
81
115
            if (_nums.empty()) {
82
                // Although set null here, but the value is 0.0 and the call method just
83
                // get val in aggregate_function_percentile_approx.h
84
0
                return 0.0;
85
0
            }
86
87
115
            if (UNLIKELY(!std::is_sorted(_nums.begin(), _nums.end()))) {
88
1
                pdqsort(_nums.begin(), _nums.end());
89
1
            }
90
91
115
            if (quantile == 1 || _nums.size() == 1) {
92
59
                return _nums.back();
93
59
            }
94
95
56
            double u = (_nums.size() - 1) * quantile;
96
56
            auto index = static_cast<uint32_t>(u);
97
56
            return _nums[index] +
98
56
                   (u - static_cast<double>(index)) * (static_cast<double>(_nums[index + 1]) -
99
56
                                                       static_cast<double>(_nums[index]));
100
115
        } else {
101
13
            DCHECK(_nums.empty());
102
13
            size_t rows = 0;
103
39
            for (const auto& i : _sorted_nums_vec) {
104
39
                rows += i.size();
105
39
            }
106
13
            const bool reverse = quantile > 0.5 && rows > 2;
107
13
            double u = (rows - 1) * quantile;
108
13
            auto index = static_cast<uint32_t>(u);
109
            // if reverse, the step of target should start 0 like not reverse
110
            // so here rows need to minus index + 2
111
            // eg: rows = 10, index = 5
112
            // if not reverse, so the first number loc is 5, the second number loc is 6
113
            // if reverse, so the second number is 3, the first number is 4
114
            // 5 + 4 = 3 + 6 = 9 = rows - 1.
115
            // the rows must GE 2 beacuse `_sorted_nums_vec` size GE 2
116
13
            size_t target = reverse ? rows - index - 2 : index;
117
13
            if (quantile == 1) {
118
0
                target = 0;
119
0
            }
120
13
            auto [first_number, second_number] = _merge_sort_and_get_numbers(target, reverse);
121
13
            if (quantile == 1) {
122
0
                return second_number;
123
0
            }
124
13
            return first_number +
125
13
                   (u - static_cast<double>(index)) *
126
13
                           (static_cast<double>(second_number) - static_cast<double>(first_number));
127
13
        }
128
128
    }
_ZN5doris6CountsInE9terminateEd
Line
Count
Source
75
33
    double terminate(double quantile) {
76
33
        if (_sorted_nums_vec.size() <= 1) {
77
30
            if (_sorted_nums_vec.size() == 1) {
78
0
                _nums = std::move(_sorted_nums_vec[0]);
79
0
            }
80
81
30
            if (_nums.empty()) {
82
                // Although set null here, but the value is 0.0 and the call method just
83
                // get val in aggregate_function_percentile_approx.h
84
0
                return 0.0;
85
0
            }
86
87
30
            if (UNLIKELY(!std::is_sorted(_nums.begin(), _nums.end()))) {
88
0
                pdqsort(_nums.begin(), _nums.end());
89
0
            }
90
91
30
            if (quantile == 1 || _nums.size() == 1) {
92
24
                return _nums.back();
93
24
            }
94
95
6
            double u = (_nums.size() - 1) * quantile;
96
6
            auto index = static_cast<uint32_t>(u);
97
6
            return _nums[index] +
98
6
                   (u - static_cast<double>(index)) * (static_cast<double>(_nums[index + 1]) -
99
6
                                                       static_cast<double>(_nums[index]));
100
30
        } else {
101
3
            DCHECK(_nums.empty());
102
3
            size_t rows = 0;
103
6
            for (const auto& i : _sorted_nums_vec) {
104
6
                rows += i.size();
105
6
            }
106
3
            const bool reverse = quantile > 0.5 && rows > 2;
107
3
            double u = (rows - 1) * quantile;
108
3
            auto index = static_cast<uint32_t>(u);
109
            // if reverse, the step of target should start 0 like not reverse
110
            // so here rows need to minus index + 2
111
            // eg: rows = 10, index = 5
112
            // if not reverse, so the first number loc is 5, the second number loc is 6
113
            // if reverse, so the second number is 3, the first number is 4
114
            // 5 + 4 = 3 + 6 = 9 = rows - 1.
115
            // the rows must GE 2 beacuse `_sorted_nums_vec` size GE 2
116
3
            size_t target = reverse ? rows - index - 2 : index;
117
3
            if (quantile == 1) {
118
0
                target = 0;
119
0
            }
120
3
            auto [first_number, second_number] = _merge_sort_and_get_numbers(target, reverse);
121
3
            if (quantile == 1) {
122
0
                return second_number;
123
0
            }
124
3
            return first_number +
125
3
                   (u - static_cast<double>(index)) *
126
3
                           (static_cast<double>(second_number) - static_cast<double>(first_number));
127
3
        }
128
33
    }
_ZN5doris6CountsIfE9terminateEd
Line
Count
Source
75
3
    double terminate(double quantile) {
76
3
        if (_sorted_nums_vec.size() <= 1) {
77
0
            if (_sorted_nums_vec.size() == 1) {
78
0
                _nums = std::move(_sorted_nums_vec[0]);
79
0
            }
80
81
0
            if (_nums.empty()) {
82
                // Although set null here, but the value is 0.0 and the call method just
83
                // get val in aggregate_function_percentile_approx.h
84
0
                return 0.0;
85
0
            }
86
87
0
            if (UNLIKELY(!std::is_sorted(_nums.begin(), _nums.end()))) {
88
0
                pdqsort(_nums.begin(), _nums.end());
89
0
            }
90
91
0
            if (quantile == 1 || _nums.size() == 1) {
92
0
                return _nums.back();
93
0
            }
94
95
0
            double u = (_nums.size() - 1) * quantile;
96
0
            auto index = static_cast<uint32_t>(u);
97
0
            return _nums[index] +
98
0
                   (u - static_cast<double>(index)) * (static_cast<double>(_nums[index + 1]) -
99
0
                                                       static_cast<double>(_nums[index]));
100
3
        } else {
101
3
            DCHECK(_nums.empty());
102
3
            size_t rows = 0;
103
6
            for (const auto& i : _sorted_nums_vec) {
104
6
                rows += i.size();
105
6
            }
106
3
            const bool reverse = quantile > 0.5 && rows > 2;
107
3
            double u = (rows - 1) * quantile;
108
3
            auto index = static_cast<uint32_t>(u);
109
            // if reverse, the step of target should start 0 like not reverse
110
            // so here rows need to minus index + 2
111
            // eg: rows = 10, index = 5
112
            // if not reverse, so the first number loc is 5, the second number loc is 6
113
            // if reverse, so the second number is 3, the first number is 4
114
            // 5 + 4 = 3 + 6 = 9 = rows - 1.
115
            // the rows must GE 2 beacuse `_sorted_nums_vec` size GE 2
116
3
            size_t target = reverse ? rows - index - 2 : index;
117
3
            if (quantile == 1) {
118
0
                target = 0;
119
0
            }
120
3
            auto [first_number, second_number] = _merge_sort_and_get_numbers(target, reverse);
121
3
            if (quantile == 1) {
122
0
                return second_number;
123
0
            }
124
3
            return first_number +
125
3
                   (u - static_cast<double>(index)) *
126
3
                           (static_cast<double>(second_number) - static_cast<double>(first_number));
127
3
        }
128
3
    }
_ZN5doris6CountsIdE9terminateEd
Line
Count
Source
75
136
    double terminate(double quantile) {
76
136
        if (_sorted_nums_vec.size() <= 1) {
77
133
            if (_sorted_nums_vec.size() == 1) {
78
50
                _nums = std::move(_sorted_nums_vec[0]);
79
50
            }
80
81
133
            if (_nums.empty()) {
82
                // Although set null here, but the value is 0.0 and the call method just
83
                // get val in aggregate_function_percentile_approx.h
84
0
                return 0.0;
85
0
            }
86
87
133
            if (UNLIKELY(!std::is_sorted(_nums.begin(), _nums.end()))) {
88
0
                pdqsort(_nums.begin(), _nums.end());
89
0
            }
90
91
133
            if (quantile == 1 || _nums.size() == 1) {
92
30
                return _nums.back();
93
30
            }
94
95
103
            double u = (_nums.size() - 1) * quantile;
96
103
            auto index = static_cast<uint32_t>(u);
97
103
            return _nums[index] +
98
103
                   (u - static_cast<double>(index)) * (static_cast<double>(_nums[index + 1]) -
99
103
                                                       static_cast<double>(_nums[index]));
100
133
        } else {
101
3
            DCHECK(_nums.empty());
102
3
            size_t rows = 0;
103
6
            for (const auto& i : _sorted_nums_vec) {
104
6
                rows += i.size();
105
6
            }
106
3
            const bool reverse = quantile > 0.5 && rows > 2;
107
3
            double u = (rows - 1) * quantile;
108
3
            auto index = static_cast<uint32_t>(u);
109
            // if reverse, the step of target should start 0 like not reverse
110
            // so here rows need to minus index + 2
111
            // eg: rows = 10, index = 5
112
            // if not reverse, so the first number loc is 5, the second number loc is 6
113
            // if reverse, so the second number is 3, the first number is 4
114
            // 5 + 4 = 3 + 6 = 9 = rows - 1.
115
            // the rows must GE 2 beacuse `_sorted_nums_vec` size GE 2
116
3
            size_t target = reverse ? rows - index - 2 : index;
117
3
            if (quantile == 1) {
118
0
                target = 0;
119
0
            }
120
3
            auto [first_number, second_number] = _merge_sort_and_get_numbers(target, reverse);
121
3
            if (quantile == 1) {
122
0
                return second_number;
123
0
            }
124
3
            return first_number +
125
3
                   (u - static_cast<double>(index)) *
126
3
                           (static_cast<double>(second_number) - static_cast<double>(first_number));
127
3
        }
128
136
    }
129
130
private:
131
    struct Node {
132
        Ty value;
133
        int array_index;
134
        int64_t element_index;
135
136
624
        auto operator<=>(const Node& other) const { return value <=> other.value; }
_ZNK5doris6CountsIaE4NodessERKS2_
Line
Count
Source
136
6
        auto operator<=>(const Node& other) const { return value <=> other.value; }
_ZNK5doris6CountsIsE4NodessERKS2_
Line
Count
Source
136
6
        auto operator<=>(const Node& other) const { return value <=> other.value; }
_ZNK5doris6CountsIiE4NodessERKS2_
Line
Count
Source
136
297
        auto operator<=>(const Node& other) const { return value <=> other.value; }
_ZNK5doris6CountsIlE4NodessERKS2_
Line
Count
Source
136
298
        auto operator<=>(const Node& other) const { return value <=> other.value; }
_ZNK5doris6CountsInE4NodessERKS2_
Line
Count
Source
136
6
        auto operator<=>(const Node& other) const { return value <=> other.value; }
_ZNK5doris6CountsIfE4NodessERKS2_
Line
Count
Source
136
6
        auto operator<=>(const Node& other) const { return value <=> other.value; }
_ZNK5doris6CountsIdE4NodessERKS2_
Line
Count
Source
136
5
        auto operator<=>(const Node& other) const { return value <=> other.value; }
137
    };
138
139
287
    void _convert_sorted_num_vec_to_nums() {
140
287
        size_t rows = 0;
141
569
        for (const auto& i : _sorted_nums_vec) {
142
569
            rows += i.size();
143
569
        }
144
287
        _nums.resize(rows);
145
287
        size_t count = 0;
146
147
287
        std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
148
856
        for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
149
569
            if (!_sorted_nums_vec[i].empty()) {
150
569
                min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
151
569
            }
152
569
        }
153
154
1.01k
        while (!min_heap.empty()) {
155
731
            Node node = min_heap.top();
156
731
            min_heap.pop();
157
731
            _nums[count++] = node.value;
158
731
            if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
159
162
                node.value = _sorted_nums_vec[node.array_index][node.element_index];
160
162
                min_heap.push(node);
161
162
            }
162
731
        }
163
287
        _sorted_nums_vec.clear();
164
287
    }
Unexecuted instantiation: _ZN5doris6CountsIaE31_convert_sorted_num_vec_to_numsEv
Unexecuted instantiation: _ZN5doris6CountsIsE31_convert_sorted_num_vec_to_numsEv
_ZN5doris6CountsIiE31_convert_sorted_num_vec_to_numsEv
Line
Count
Source
139
156
    void _convert_sorted_num_vec_to_nums() {
140
156
        size_t rows = 0;
141
339
        for (const auto& i : _sorted_nums_vec) {
142
339
            rows += i.size();
143
339
        }
144
156
        _nums.resize(rows);
145
156
        size_t count = 0;
146
147
156
        std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
148
495
        for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
149
339
            if (!_sorted_nums_vec[i].empty()) {
150
339
                min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
151
339
            }
152
339
        }
153
154
531
        while (!min_heap.empty()) {
155
375
            Node node = min_heap.top();
156
375
            min_heap.pop();
157
375
            _nums[count++] = node.value;
158
375
            if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
159
36
                node.value = _sorted_nums_vec[node.array_index][node.element_index];
160
36
                min_heap.push(node);
161
36
            }
162
375
        }
163
156
        _sorted_nums_vec.clear();
164
156
    }
_ZN5doris6CountsIlE31_convert_sorted_num_vec_to_numsEv
Line
Count
Source
139
131
    void _convert_sorted_num_vec_to_nums() {
140
131
        size_t rows = 0;
141
230
        for (const auto& i : _sorted_nums_vec) {
142
230
            rows += i.size();
143
230
        }
144
131
        _nums.resize(rows);
145
131
        size_t count = 0;
146
147
131
        std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
148
361
        for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
149
230
            if (!_sorted_nums_vec[i].empty()) {
150
230
                min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
151
230
            }
152
230
        }
153
154
487
        while (!min_heap.empty()) {
155
356
            Node node = min_heap.top();
156
356
            min_heap.pop();
157
356
            _nums[count++] = node.value;
158
356
            if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
159
126
                node.value = _sorted_nums_vec[node.array_index][node.element_index];
160
126
                min_heap.push(node);
161
126
            }
162
356
        }
163
131
        _sorted_nums_vec.clear();
164
131
    }
Unexecuted instantiation: _ZN5doris6CountsInE31_convert_sorted_num_vec_to_numsEv
Unexecuted instantiation: _ZN5doris6CountsIfE31_convert_sorted_num_vec_to_numsEv
Unexecuted instantiation: _ZN5doris6CountsIdE31_convert_sorted_num_vec_to_numsEv
165
166
31
    std::pair<Ty, Ty> _merge_sort_and_get_numbers(int64_t target, bool reverse) {
167
31
        Ty first_number = 0, second_number = 0;
168
31
        size_t count = 0;
169
31
        if (reverse) {
170
14
            std::priority_queue<Node> max_heap;
171
55
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
172
41
                if (!_sorted_nums_vec[i].empty()) {
173
41
                    max_heap.emplace(_sorted_nums_vec[i][_sorted_nums_vec[i].size() - 1], i,
174
41
                                     _sorted_nums_vec[i].size() - 1);
175
41
                }
176
41
            }
177
178
47
            while (!max_heap.empty()) {
179
47
                Node node = max_heap.top();
180
47
                max_heap.pop();
181
47
                if (count == target) {
182
14
                    second_number = node.value;
183
33
                } else if (count == target + 1) {
184
14
                    first_number = node.value;
185
14
                    break;
186
14
                }
187
33
                ++count;
188
33
                if (--node.element_index >= 0) {
189
29
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
190
29
                    max_heap.push(node);
191
29
                }
192
33
            }
193
194
17
        } else {
195
17
            std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
196
51
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
197
34
                if (!_sorted_nums_vec[i].empty()) {
198
34
                    min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
199
34
                }
200
34
            }
201
202
55
            while (!min_heap.empty()) {
203
55
                Node node = min_heap.top();
204
55
                min_heap.pop();
205
55
                if (count == target) {
206
17
                    first_number = node.value;
207
38
                } else if (count == target + 1) {
208
17
                    second_number = node.value;
209
17
                    break;
210
17
                }
211
38
                ++count;
212
38
                if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
213
24
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
214
24
                    min_heap.push(node);
215
24
                }
216
38
            }
217
17
        }
218
219
31
        return {first_number, second_number};
220
31
    }
_ZN5doris6CountsIaE27_merge_sort_and_get_numbersElb
Line
Count
Source
166
3
    std::pair<Ty, Ty> _merge_sort_and_get_numbers(int64_t target, bool reverse) {
167
3
        Ty first_number = 0, second_number = 0;
168
3
        size_t count = 0;
169
3
        if (reverse) {
170
1
            std::priority_queue<Node> max_heap;
171
3
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
172
2
                if (!_sorted_nums_vec[i].empty()) {
173
2
                    max_heap.emplace(_sorted_nums_vec[i][_sorted_nums_vec[i].size() - 1], i,
174
2
                                     _sorted_nums_vec[i].size() - 1);
175
2
                }
176
2
            }
177
178
2
            while (!max_heap.empty()) {
179
2
                Node node = max_heap.top();
180
2
                max_heap.pop();
181
2
                if (count == target) {
182
1
                    second_number = node.value;
183
1
                } else if (count == target + 1) {
184
1
                    first_number = node.value;
185
1
                    break;
186
1
                }
187
1
                ++count;
188
1
                if (--node.element_index >= 0) {
189
1
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
190
1
                    max_heap.push(node);
191
1
                }
192
1
            }
193
194
2
        } else {
195
2
            std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
196
6
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
197
4
                if (!_sorted_nums_vec[i].empty()) {
198
4
                    min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
199
4
                }
200
4
            }
201
202
6
            while (!min_heap.empty()) {
203
6
                Node node = min_heap.top();
204
6
                min_heap.pop();
205
6
                if (count == target) {
206
2
                    first_number = node.value;
207
4
                } else if (count == target + 1) {
208
2
                    second_number = node.value;
209
2
                    break;
210
2
                }
211
4
                ++count;
212
4
                if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
213
2
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
214
2
                    min_heap.push(node);
215
2
                }
216
4
            }
217
2
        }
218
219
3
        return {first_number, second_number};
220
3
    }
_ZN5doris6CountsIsE27_merge_sort_and_get_numbersElb
Line
Count
Source
166
3
    std::pair<Ty, Ty> _merge_sort_and_get_numbers(int64_t target, bool reverse) {
167
3
        Ty first_number = 0, second_number = 0;
168
3
        size_t count = 0;
169
3
        if (reverse) {
170
1
            std::priority_queue<Node> max_heap;
171
3
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
172
2
                if (!_sorted_nums_vec[i].empty()) {
173
2
                    max_heap.emplace(_sorted_nums_vec[i][_sorted_nums_vec[i].size() - 1], i,
174
2
                                     _sorted_nums_vec[i].size() - 1);
175
2
                }
176
2
            }
177
178
2
            while (!max_heap.empty()) {
179
2
                Node node = max_heap.top();
180
2
                max_heap.pop();
181
2
                if (count == target) {
182
1
                    second_number = node.value;
183
1
                } else if (count == target + 1) {
184
1
                    first_number = node.value;
185
1
                    break;
186
1
                }
187
1
                ++count;
188
1
                if (--node.element_index >= 0) {
189
1
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
190
1
                    max_heap.push(node);
191
1
                }
192
1
            }
193
194
2
        } else {
195
2
            std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
196
6
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
197
4
                if (!_sorted_nums_vec[i].empty()) {
198
4
                    min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
199
4
                }
200
4
            }
201
202
6
            while (!min_heap.empty()) {
203
6
                Node node = min_heap.top();
204
6
                min_heap.pop();
205
6
                if (count == target) {
206
2
                    first_number = node.value;
207
4
                } else if (count == target + 1) {
208
2
                    second_number = node.value;
209
2
                    break;
210
2
                }
211
4
                ++count;
212
4
                if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
213
2
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
214
2
                    min_heap.push(node);
215
2
                }
216
4
            }
217
2
        }
218
219
3
        return {first_number, second_number};
220
3
    }
_ZN5doris6CountsIiE27_merge_sort_and_get_numbersElb
Line
Count
Source
166
3
    std::pair<Ty, Ty> _merge_sort_and_get_numbers(int64_t target, bool reverse) {
167
3
        Ty first_number = 0, second_number = 0;
168
3
        size_t count = 0;
169
3
        if (reverse) {
170
1
            std::priority_queue<Node> max_heap;
171
3
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
172
2
                if (!_sorted_nums_vec[i].empty()) {
173
2
                    max_heap.emplace(_sorted_nums_vec[i][_sorted_nums_vec[i].size() - 1], i,
174
2
                                     _sorted_nums_vec[i].size() - 1);
175
2
                }
176
2
            }
177
178
2
            while (!max_heap.empty()) {
179
2
                Node node = max_heap.top();
180
2
                max_heap.pop();
181
2
                if (count == target) {
182
1
                    second_number = node.value;
183
1
                } else if (count == target + 1) {
184
1
                    first_number = node.value;
185
1
                    break;
186
1
                }
187
1
                ++count;
188
1
                if (--node.element_index >= 0) {
189
1
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
190
1
                    max_heap.push(node);
191
1
                }
192
1
            }
193
194
2
        } else {
195
2
            std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
196
6
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
197
4
                if (!_sorted_nums_vec[i].empty()) {
198
4
                    min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
199
4
                }
200
4
            }
201
202
6
            while (!min_heap.empty()) {
203
6
                Node node = min_heap.top();
204
6
                min_heap.pop();
205
6
                if (count == target) {
206
2
                    first_number = node.value;
207
4
                } else if (count == target + 1) {
208
2
                    second_number = node.value;
209
2
                    break;
210
2
                }
211
4
                ++count;
212
4
                if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
213
2
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
214
2
                    min_heap.push(node);
215
2
                }
216
4
            }
217
2
        }
218
219
3
        return {first_number, second_number};
220
3
    }
_ZN5doris6CountsIlE27_merge_sort_and_get_numbersElb
Line
Count
Source
166
13
    std::pair<Ty, Ty> _merge_sort_and_get_numbers(int64_t target, bool reverse) {
167
13
        Ty first_number = 0, second_number = 0;
168
13
        size_t count = 0;
169
13
        if (reverse) {
170
8
            std::priority_queue<Node> max_heap;
171
37
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
172
29
                if (!_sorted_nums_vec[i].empty()) {
173
29
                    max_heap.emplace(_sorted_nums_vec[i][_sorted_nums_vec[i].size() - 1], i,
174
29
                                     _sorted_nums_vec[i].size() - 1);
175
29
                }
176
29
            }
177
178
35
            while (!max_heap.empty()) {
179
35
                Node node = max_heap.top();
180
35
                max_heap.pop();
181
35
                if (count == target) {
182
8
                    second_number = node.value;
183
27
                } else if (count == target + 1) {
184
8
                    first_number = node.value;
185
8
                    break;
186
8
                }
187
27
                ++count;
188
27
                if (--node.element_index >= 0) {
189
24
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
190
24
                    max_heap.push(node);
191
24
                }
192
27
            }
193
194
8
        } else {
195
5
            std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
196
15
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
197
10
                if (!_sorted_nums_vec[i].empty()) {
198
10
                    min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
199
10
                }
200
10
            }
201
202
19
            while (!min_heap.empty()) {
203
19
                Node node = min_heap.top();
204
19
                min_heap.pop();
205
19
                if (count == target) {
206
5
                    first_number = node.value;
207
14
                } else if (count == target + 1) {
208
5
                    second_number = node.value;
209
5
                    break;
210
5
                }
211
14
                ++count;
212
14
                if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
213
12
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
214
12
                    min_heap.push(node);
215
12
                }
216
14
            }
217
5
        }
218
219
13
        return {first_number, second_number};
220
13
    }
_ZN5doris6CountsInE27_merge_sort_and_get_numbersElb
Line
Count
Source
166
3
    std::pair<Ty, Ty> _merge_sort_and_get_numbers(int64_t target, bool reverse) {
167
3
        Ty first_number = 0, second_number = 0;
168
3
        size_t count = 0;
169
3
        if (reverse) {
170
1
            std::priority_queue<Node> max_heap;
171
3
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
172
2
                if (!_sorted_nums_vec[i].empty()) {
173
2
                    max_heap.emplace(_sorted_nums_vec[i][_sorted_nums_vec[i].size() - 1], i,
174
2
                                     _sorted_nums_vec[i].size() - 1);
175
2
                }
176
2
            }
177
178
2
            while (!max_heap.empty()) {
179
2
                Node node = max_heap.top();
180
2
                max_heap.pop();
181
2
                if (count == target) {
182
1
                    second_number = node.value;
183
1
                } else if (count == target + 1) {
184
1
                    first_number = node.value;
185
1
                    break;
186
1
                }
187
1
                ++count;
188
1
                if (--node.element_index >= 0) {
189
1
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
190
1
                    max_heap.push(node);
191
1
                }
192
1
            }
193
194
2
        } else {
195
2
            std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
196
6
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
197
4
                if (!_sorted_nums_vec[i].empty()) {
198
4
                    min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
199
4
                }
200
4
            }
201
202
6
            while (!min_heap.empty()) {
203
6
                Node node = min_heap.top();
204
6
                min_heap.pop();
205
6
                if (count == target) {
206
2
                    first_number = node.value;
207
4
                } else if (count == target + 1) {
208
2
                    second_number = node.value;
209
2
                    break;
210
2
                }
211
4
                ++count;
212
4
                if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
213
2
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
214
2
                    min_heap.push(node);
215
2
                }
216
4
            }
217
2
        }
218
219
3
        return {first_number, second_number};
220
3
    }
_ZN5doris6CountsIfE27_merge_sort_and_get_numbersElb
Line
Count
Source
166
3
    std::pair<Ty, Ty> _merge_sort_and_get_numbers(int64_t target, bool reverse) {
167
3
        Ty first_number = 0, second_number = 0;
168
3
        size_t count = 0;
169
3
        if (reverse) {
170
1
            std::priority_queue<Node> max_heap;
171
3
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
172
2
                if (!_sorted_nums_vec[i].empty()) {
173
2
                    max_heap.emplace(_sorted_nums_vec[i][_sorted_nums_vec[i].size() - 1], i,
174
2
                                     _sorted_nums_vec[i].size() - 1);
175
2
                }
176
2
            }
177
178
2
            while (!max_heap.empty()) {
179
2
                Node node = max_heap.top();
180
2
                max_heap.pop();
181
2
                if (count == target) {
182
1
                    second_number = node.value;
183
1
                } else if (count == target + 1) {
184
1
                    first_number = node.value;
185
1
                    break;
186
1
                }
187
1
                ++count;
188
1
                if (--node.element_index >= 0) {
189
1
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
190
1
                    max_heap.push(node);
191
1
                }
192
1
            }
193
194
2
        } else {
195
2
            std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
196
6
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
197
4
                if (!_sorted_nums_vec[i].empty()) {
198
4
                    min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
199
4
                }
200
4
            }
201
202
6
            while (!min_heap.empty()) {
203
6
                Node node = min_heap.top();
204
6
                min_heap.pop();
205
6
                if (count == target) {
206
2
                    first_number = node.value;
207
4
                } else if (count == target + 1) {
208
2
                    second_number = node.value;
209
2
                    break;
210
2
                }
211
4
                ++count;
212
4
                if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
213
2
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
214
2
                    min_heap.push(node);
215
2
                }
216
4
            }
217
2
        }
218
219
3
        return {first_number, second_number};
220
3
    }
_ZN5doris6CountsIdE27_merge_sort_and_get_numbersElb
Line
Count
Source
166
3
    std::pair<Ty, Ty> _merge_sort_and_get_numbers(int64_t target, bool reverse) {
167
3
        Ty first_number = 0, second_number = 0;
168
3
        size_t count = 0;
169
3
        if (reverse) {
170
1
            std::priority_queue<Node> max_heap;
171
3
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
172
2
                if (!_sorted_nums_vec[i].empty()) {
173
2
                    max_heap.emplace(_sorted_nums_vec[i][_sorted_nums_vec[i].size() - 1], i,
174
2
                                     _sorted_nums_vec[i].size() - 1);
175
2
                }
176
2
            }
177
178
2
            while (!max_heap.empty()) {
179
2
                Node node = max_heap.top();
180
2
                max_heap.pop();
181
2
                if (count == target) {
182
1
                    second_number = node.value;
183
1
                } else if (count == target + 1) {
184
1
                    first_number = node.value;
185
1
                    break;
186
1
                }
187
1
                ++count;
188
1
                if (--node.element_index >= 0) {
189
0
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
190
0
                    max_heap.push(node);
191
0
                }
192
1
            }
193
194
2
        } else {
195
2
            std::priority_queue<Node, std::vector<Node>, std::greater<Node>> min_heap;
196
6
            for (int i = 0; i < _sorted_nums_vec.size(); ++i) {
197
4
                if (!_sorted_nums_vec[i].empty()) {
198
4
                    min_heap.emplace(_sorted_nums_vec[i][0], i, 0);
199
4
                }
200
4
            }
201
202
6
            while (!min_heap.empty()) {
203
6
                Node node = min_heap.top();
204
6
                min_heap.pop();
205
6
                if (count == target) {
206
2
                    first_number = node.value;
207
4
                } else if (count == target + 1) {
208
2
                    second_number = node.value;
209
2
                    break;
210
2
                }
211
4
                ++count;
212
4
                if (++node.element_index < _sorted_nums_vec[node.array_index].size()) {
213
2
                    node.value = _sorted_nums_vec[node.array_index][node.element_index];
214
2
                    min_heap.push(node);
215
2
                }
216
4
            }
217
2
        }
218
219
3
        return {first_number, second_number};
220
3
    }
221
222
    PODArray<Ty> _nums;
223
    std::vector<PODArray<Ty>> _sorted_nums_vec;
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};
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} // namespace doris