Coverage Report

Created: 2026-06-09 18:25

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
be/src/exec/sink/vrow_distribution.cpp
Line
Count
Source
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// 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
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//
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
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// under the License.
17
18
#include "exec/sink/vrow_distribution.h"
19
20
#include <gen_cpp/FrontendService.h>
21
#include <gen_cpp/FrontendService_types.h>
22
#include <glog/logging.h>
23
24
#include <cstdint>
25
#include <memory>
26
#include <string>
27
28
#include "common/cast_set.h"
29
#include "common/logging.h"
30
#include "common/status.h"
31
#include "core/assert_cast.h"
32
#include "core/column/column.h"
33
#include "core/column/column_const.h"
34
#include "core/column/column_nullable.h"
35
#include "core/column/column_vector.h"
36
#include "core/data_type/data_type.h"
37
#include "exec/sink/writer/vtablet_writer.h"
38
#include "runtime/exec_env.h"
39
#include "runtime/query_context.h"
40
#include "runtime/runtime_state.h"
41
#include "service/backend_options.h"
42
#include "util/client_cache.h"
43
#include "util/debug_points.h"
44
#include "util/thrift_rpc_helper.h"
45
46
namespace doris {
47
48
37.6k
std::pair<VExprContextSPtrs, VExprSPtrs> VRowDistribution::_get_partition_function() {
49
37.6k
    return {_vpartition->get_part_func_ctx(), _vpartition->get_partition_function()};
50
37.6k
}
51
52
Status VRowDistribution::_save_missing_values(
53
        const Block& input_block,
54
        std::vector<std::vector<std::string>>& col_strs, // non-const ref for move
55
        int col_size, Block* block, const std::vector<uint32_t>& filter,
56
171
        const std::vector<const NullMap*>& col_null_maps) {
57
    // de-duplication for new partitions but save all rows.
58
171
    RETURN_IF_ERROR(
59
171
            _batching_block->add_rows(&input_block, filter.data(), filter.data() + filter.size()));
60
171
    std::vector<TNullableStringLiteral> cur_row_values;
61
25.1k
    for (int row = 0; row < col_strs[0].size(); ++row) {
62
24.9k
        cur_row_values.clear();
63
49.9k
        for (int col = 0; col < col_size; ++col) {
64
25.0k
            TNullableStringLiteral node;
65
25.0k
            const auto* null_map = col_null_maps[col]; // null map for this col
66
25.0k
            node.__set_is_null((null_map && (*null_map)[filter[row]])
67
25.0k
                                       ? true
68
25.0k
                                       : node.is_null); // if not, dont change(default false)
69
25.0k
            if (!node.is_null) {
70
24.9k
                node.__set_value(col_strs[col][row]);
71
24.9k
            }
72
25.0k
            cur_row_values.push_back(node);
73
25.0k
        }
74
24.9k
        if (!_deduper.contains(cur_row_values)) {
75
353
            _deduper.insert(cur_row_values);
76
353
            _partitions_need_create.emplace_back(cur_row_values);
77
353
        }
78
24.9k
    }
79
80
    // to avoid too large mem use
81
171
    if (_batching_block->rows() > _batch_size) {
82
2
        _deal_batched = true;
83
2
    }
84
171
    _batching_rows = _batching_block->rows();
85
171
    VLOG_NOTICE << "pushed some batching lines, now numbers = " << _batching_rows;
86
87
171
    return Status::OK();
88
171
}
89
90
167
void VRowDistribution::clear_batching_stats() {
91
167
    _partitions_need_create.clear();
92
167
    _batching_rows = 0;
93
167
    _batching_bytes = 0;
94
167
}
95
96
167
Status VRowDistribution::automatic_create_partition() {
97
167
    MonotonicStopWatch timer;
98
167
    if (_state->enable_profile() && _state->profile_level() >= 2) {
99
0
        timer.start();
100
0
    }
101
102
167
    SCOPED_TIMER(_add_partition_request_timer);
103
167
    TCreatePartitionRequest request;
104
167
    TCreatePartitionResult result;
105
167
    bool injected = false;
106
167
    std::string be_endpoint = BackendOptions::get_be_endpoint();
107
167
    request.__set_txn_id(_txn_id);
108
167
    request.__set_db_id(_vpartition->db_id());
109
167
    request.__set_table_id(_vpartition->table_id());
110
167
    request.__set_partitionValues(_partitions_need_create);
111
167
    request.__set_be_endpoint(be_endpoint);
112
167
    request.__set_write_single_replica(_write_single_replica);
113
167
    if (_state && _state->get_query_ctx()) {
114
        // Pass query_id to FE so it can determine if this is a multi-instance load by checking Coordinator
115
167
        request.__set_query_id(_state->get_query_ctx()->query_id());
116
167
    }
117
118
167
    DBUG_EXECUTE_IF("VRowDistribution.automatic_create_partition.inject_result", {
119
167
        DBUG_RUN_CALLBACK(&request, &result);
120
167
        injected = true;
121
167
    });
122
123
167
    VLOG_NOTICE << "automatic partition rpc begin request " << request;
124
167
    if (!injected) {
125
165
        std::shared_ptr<TNetworkAddress> master_addr;
126
165
        if (_vpartition->get_master_address() == nullptr) {
127
165
            auto* cluster_info = ExecEnv::GetInstance()->cluster_info();
128
165
            if (cluster_info == nullptr) {
129
0
                return Status::InternalError("cluster_info is null");
130
0
            }
131
165
            master_addr = std::make_shared<TNetworkAddress>(cluster_info->master_fe_addr);
132
165
        } else {
133
0
            master_addr = _vpartition->get_master_address();
134
0
        }
135
165
        int time_out = _state->execution_timeout() * 1000;
136
165
        RETURN_IF_ERROR(ThriftRpcHelper::rpc<FrontendServiceClient>(
137
165
                master_addr->hostname, master_addr->port,
138
165
                [&request, &result](FrontendServiceConnection& client) {
139
165
                    client->createPartition(result, request);
140
165
                },
141
165
                time_out));
142
165
    }
143
144
167
    Status status(Status::create(result.status));
145
167
    VLOG_NOTICE << "automatic partition rpc end response " << result;
146
167
    if (result.status.status_code == TStatusCode::OK) {
147
167
        RETURN_IF_ERROR(_create_partition_callback(_caller, &result));
148
        // add new created partitions
149
167
        RETURN_IF_ERROR(_vpartition->add_partitions(result.partitions));
150
353
        for (const auto& part : result.partitions) {
151
353
            _new_partition_ids.insert(part.id);
152
353
            VLOG_TRACE << "record new id: " << part.id;
153
353
        }
154
167
    }
155
156
    // Record this request's elapsed time
157
167
    if (_state->enable_profile() && _state->profile_level() >= 2) {
158
0
        int64_t elapsed_ns = timer.elapsed_time();
159
0
        _add_partition_request_times.push_back(elapsed_ns);
160
0
    }
161
167
    return status;
162
167
}
163
164
// for reuse the same create callback of create-partition
165
20
static TCreatePartitionResult cast_as_create_result(const TReplacePartitionResult& arg) {
166
20
    TCreatePartitionResult result;
167
20
    result.status = arg.status;
168
20
    result.nodes = arg.nodes;
169
20
    result.partitions = arg.partitions;
170
20
    result.tablets = arg.tablets;
171
20
    result.slave_tablets = arg.slave_tablets;
172
20
    return result;
173
20
}
174
175
// use _partitions and replace them
176
34
Status VRowDistribution::_replace_overwriting_partition() {
177
34
    SCOPED_TIMER(_add_partition_request_timer); // also for replace_partition
178
34
    TReplacePartitionRequest request;
179
34
    TReplacePartitionResult result;
180
34
    bool injected = false;
181
34
    request.__set_overwrite_group_id(_vpartition->get_overwrite_group_id());
182
34
    request.__set_db_id(_vpartition->db_id());
183
34
    request.__set_table_id(_vpartition->table_id());
184
34
    request.__set_write_single_replica(_write_single_replica);
185
186
    // only request for partitions not recorded for replacement
187
34
    std::set<int64_t> id_deduper;
188
60.0k
    for (const auto* part : _partitions) {
189
60.0k
        if (part != nullptr) {
190
47.7k
            if (_new_partition_ids.contains(part->id)) {
191
                // this is a new partition. dont replace again.
192
39.5k
                VLOG_TRACE << "skip new partition: " << part->id;
193
39.5k
            } else {
194
                // request for replacement
195
8.24k
                id_deduper.insert(part->id);
196
8.24k
            }
197
47.7k
        } else if (_missing_map.empty()) {
198
            // no origin partition. and not allow to create.
199
6
            return Status::InvalidArgument(
200
6
                    "Cannot found origin partitions in auto detect overwriting, stop "
201
6
                    "processing");
202
6
        } // else: part is null and _missing_map is not empty. dealed outside using auto-partition way. nothing to do here.
203
60.0k
    }
204
28
    if (id_deduper.empty()) {
205
8
        return Status::OK(); // no need to request
206
8
    }
207
    // de-duplicate. there's no check in FE
208
20
    std::vector<int64_t> request_part_ids(id_deduper.begin(), id_deduper.end());
209
210
20
    request.__set_partition_ids(request_part_ids);
211
212
20
    std::string be_endpoint = BackendOptions::get_be_endpoint();
213
20
    request.__set_be_endpoint(be_endpoint);
214
20
    if (_state && _state->get_query_ctx()) {
215
        // Pass query_id to FE so it can determine if this is a multi-instance load by checking Coordinator
216
20
        request.__set_query_id(_state->get_query_ctx()->query_id());
217
20
    }
218
219
20
    DBUG_EXECUTE_IF("VRowDistribution.replace_overwriting_partition.inject_result", {
220
20
        DBUG_RUN_CALLBACK(&request, &result);
221
20
        injected = true;
222
20
    });
223
224
20
    VLOG_NOTICE << "auto detect replace partition request: " << request;
225
20
    if (!injected) {
226
19
        std::shared_ptr<TNetworkAddress> master_addr;
227
19
        if (_vpartition->get_master_address() == nullptr) {
228
19
            auto* cluster_info = ExecEnv::GetInstance()->cluster_info();
229
19
            if (cluster_info == nullptr) {
230
0
                return Status::InternalError("cluster_info is null");
231
0
            }
232
19
            master_addr = std::make_shared<TNetworkAddress>(cluster_info->master_fe_addr);
233
19
        } else {
234
0
            master_addr = _vpartition->get_master_address();
235
0
        }
236
19
        int time_out = _state->execution_timeout() * 1000;
237
19
        RETURN_IF_ERROR(ThriftRpcHelper::rpc<FrontendServiceClient>(
238
19
                master_addr->hostname, master_addr->port,
239
19
                [&request, &result](FrontendServiceConnection& client) {
240
19
                    client->replacePartition(result, request);
241
19
                },
242
19
                time_out));
243
19
    }
244
245
20
    Status status(Status::create(result.status));
246
20
    VLOG_NOTICE << "auto detect replace partition result: " << result;
247
20
    if (result.status.status_code == TStatusCode::OK) {
248
        // Reuse the function as the args' structure are same. It adds nodes/locations
249
        // and waits for incremental_open before the new tablets become routable.
250
20
        auto result_as_create = cast_as_create_result(result);
251
20
        RETURN_IF_ERROR(_create_partition_callback(_caller, &result_as_create));
252
        // record new partitions
253
32
        for (const auto& part : result.partitions) {
254
32
            _new_partition_ids.insert(part.id);
255
32
            VLOG_TRACE << "record new id: " << part.id;
256
32
        }
257
        // replace data in _partitions
258
20
        RETURN_IF_ERROR(_vpartition->replace_partitions(request_part_ids, result.partitions));
259
20
    }
260
261
20
    return status;
262
20
}
263
264
void VRowDistribution::_get_tablet_ids(Block* block, int32_t index_idx,
265
38.2k
                                       std::vector<int64_t>& tablet_ids) {
266
38.2k
    tablet_ids.resize(block->rows());
267
35.5M
    for (int row_idx = 0; row_idx < block->rows(); row_idx++) {
268
35.5M
        if (_skip[row_idx]) {
269
25.8k
            continue;
270
25.8k
        }
271
35.5M
        auto& partition = _partitions[row_idx];
272
35.5M
        auto& tablet_index = _tablet_indexes[row_idx];
273
35.5M
        auto& index = partition->indexes[index_idx];
274
275
35.5M
        auto tablet_id = index.tablets[tablet_index];
276
35.5M
        tablet_ids[row_idx] = tablet_id;
277
35.5M
    }
278
38.2k
}
279
280
38.2k
void VRowDistribution::_filter_block_by_skip(Block* block, RowPartTabletIds& row_part_tablet_id) {
281
38.2k
    auto& row_ids = row_part_tablet_id.row_ids;
282
38.2k
    auto& partition_ids = row_part_tablet_id.partition_ids;
283
38.2k
    auto& tablet_ids = row_part_tablet_id.tablet_ids;
284
285
38.2k
    auto rows = block->rows();
286
    // row count of a block should not exceed UINT32_MAX
287
38.2k
    auto rows_uint32 = cast_set<uint32_t>(rows);
288
35.7M
    for (uint32_t i = 0; i < rows_uint32; i++) {
289
35.6M
        if (!_skip[i]) {
290
35.6M
            row_ids.emplace_back(i);
291
35.6M
            partition_ids.emplace_back(_partitions[i]->id);
292
35.6M
            tablet_ids.emplace_back(_tablet_ids[i]);
293
35.6M
        }
294
35.6M
    }
295
38.2k
}
296
297
Status VRowDistribution::_filter_block_by_skip_and_where_clause(
298
35
        Block* block, const VExprContextSPtr& where_clause, RowPartTabletIds& row_part_tablet_id) {
299
    // TODO
300
    //SCOPED_RAW_TIMER(&_stat.where_clause_ns);
301
35
    ColumnPtr filter_column;
302
35
    RETURN_IF_ERROR(where_clause->execute(block, filter_column));
303
304
35
    auto& row_ids = row_part_tablet_id.row_ids;
305
35
    auto& partition_ids = row_part_tablet_id.partition_ids;
306
35
    auto& tablet_ids = row_part_tablet_id.tablet_ids;
307
35
    if (const auto* nullable_column = check_and_get_column<ColumnNullable>(*filter_column)) {
308
29
        auto rows = block->rows();
309
        // row count of a block should not exceed UINT32_MAX
310
29
        auto rows_uint32 = cast_set<uint32_t>(rows);
311
58
        for (uint32_t i = 0; i < rows_uint32; i++) {
312
29
            if (nullable_column->get_bool_inline(i) && !_skip[i]) {
313
12
                row_ids.emplace_back(i);
314
12
                partition_ids.emplace_back(_partitions[i]->id);
315
12
                tablet_ids.emplace_back(_tablet_ids[i]);
316
12
            }
317
29
        }
318
29
    } else if (const auto* const_column = check_and_get_column<ColumnConst>(*filter_column)) {
319
1
        bool ret = const_column->get_bool(0);
320
1
        if (!ret) {
321
1
            return Status::OK();
322
1
        }
323
        // should we optimize?
324
0
        _filter_block_by_skip(block, row_part_tablet_id);
325
5
    } else {
326
5
        const auto& filter = assert_cast<const ColumnUInt8&>(*filter_column).get_data();
327
5
        auto rows = block->rows();
328
        // row count of a block should not exceed UINT32_MAX
329
5
        auto rows_uint32 = cast_set<uint32_t>(rows);
330
15
        for (uint32_t i = 0; i < rows_uint32; i++) {
331
10
            if (filter[i] != 0 && !_skip[i]) {
332
6
                row_ids.emplace_back(i);
333
6
                partition_ids.emplace_back(_partitions[i]->id);
334
6
                tablet_ids.emplace_back(_tablet_ids[i]);
335
6
            }
336
10
        }
337
5
    }
338
339
34
    return Status::OK();
340
35
}
341
342
Status VRowDistribution::_filter_block(Block* block,
343
37.2k
                                       std::vector<RowPartTabletIds>& row_part_tablet_ids) {
344
75.4k
    for (int i = 0; i < _schema->indexes().size(); i++) {
345
38.2k
        _get_tablet_ids(block, i, _tablet_ids);
346
38.2k
        auto& where_clause = _schema->indexes()[i]->where_clause;
347
38.2k
        if (where_clause != nullptr) {
348
35
            RETURN_IF_ERROR(_filter_block_by_skip_and_where_clause(block, where_clause,
349
35
                                                                   row_part_tablet_ids[i]));
350
38.2k
        } else {
351
38.2k
            _filter_block_by_skip(block, row_part_tablet_ids[i]);
352
38.2k
        }
353
38.2k
    }
354
37.2k
    return Status::OK();
355
37.2k
}
356
357
Status VRowDistribution::_generate_rows_distribution_for_non_auto_partition(
358
36.8k
        Block* block, bool has_filtered_rows, std::vector<RowPartTabletIds>& row_part_tablet_ids) {
359
36.8k
    int num_rows = cast_set<int>(block->rows());
360
361
36.8k
    RETURN_IF_ERROR(_tablet_finder->find_tablets(_state, block, num_rows, _partitions,
362
36.8k
                                                 _tablet_indexes, _skip));
363
36.8k
    if (has_filtered_rows) {
364
615
        for (int i = 0; i < num_rows; i++) {
365
539
            _skip[i] = _skip[i] || _block_convertor->filter_map()[i];
366
539
        }
367
76
    }
368
36.8k
    RETURN_IF_ERROR(_filter_block(block, row_part_tablet_ids));
369
36.8k
    return Status::OK();
370
36.8k
}
371
372
Status VRowDistribution::_deal_missing_map(const Block& input_block, Block* block,
373
                                           const std::vector<uint16_t>& partition_cols_idx,
374
171
                                           int64_t& rows_stat_val) {
375
    // for missing partition keys, calc the missing partition and save in _partitions_need_create
376
171
    auto [part_ctxs, part_exprs] = _get_partition_function();
377
171
    int part_col_num = cast_set<int>(part_exprs.size());
378
    // the two vectors are in column-first-order
379
171
    std::vector<std::vector<std::string>> col_strs;
380
171
    std::vector<const NullMap*> col_null_maps;
381
171
    col_strs.resize(part_col_num);
382
171
    col_null_maps.reserve(part_col_num);
383
384
171
    auto format_options = DataTypeSerDe::get_default_format_options();
385
171
    format_options.timezone = &_state->timezone_obj();
386
387
350
    for (int i = 0; i < part_col_num; ++i) {
388
179
        auto return_type = part_exprs[i]->data_type();
389
        // expose the data column. the return type would be nullable
390
179
        const auto& [range_left_col, col_const] =
391
179
                unpack_if_const(block->get_by_position(partition_cols_idx[i]).column);
392
179
        if (range_left_col->is_nullable()) {
393
41
            col_null_maps.push_back(&(
394
41
                    assert_cast<const ColumnNullable*>(range_left_col.get())->get_null_map_data()));
395
138
        } else {
396
138
            col_null_maps.push_back(nullptr);
397
138
        }
398
25.0k
        for (auto row : _missing_map) {
399
25.0k
            col_strs[i].push_back(return_type->to_string(
400
25.0k
                    *range_left_col, index_check_const(row, col_const), format_options));
401
25.0k
        }
402
179
    }
403
404
    // calc the end value and save them. in the end of sending, we will create partitions for them and deal them.
405
    // NOTE: must save old batching stats before calling _save_missing_values(),
406
    // because _save_missing_values() will update _batching_rows internally.
407
171
    size_t old_bt_rows = _batching_rows;
408
171
    size_t old_bt_bytes = _batching_bytes;
409
410
171
    RETURN_IF_ERROR(_save_missing_values(input_block, col_strs, part_col_num, block, _missing_map,
411
171
                                         col_null_maps));
412
413
171
    size_t new_bt_rows = _batching_block->rows();
414
171
    size_t new_bt_bytes = _batching_block->bytes();
415
171
    rows_stat_val -= new_bt_rows - old_bt_rows;
416
171
    _state->update_num_rows_load_total(old_bt_rows - new_bt_rows);
417
171
    _state->update_num_bytes_load_total(old_bt_bytes - new_bt_bytes);
418
419
171
    return Status::OK();
420
171
}
421
422
Status VRowDistribution::_generate_rows_distribution_for_auto_partition(
423
        const Block& input_block, Block* block, const std::vector<uint16_t>& partition_cols_idx,
424
        bool has_filtered_rows, std::vector<RowPartTabletIds>& row_part_tablet_ids,
425
322
        int64_t& rows_stat_val) {
426
322
    int num_rows = cast_set<int>(block->rows());
427
322
    std::vector<uint16_t> partition_keys = _vpartition->get_partition_keys();
428
429
322
    auto& partition_col = block->get_by_position(partition_keys[0]);
430
322
    _missing_map.clear();
431
322
    _missing_map.reserve(partition_col.column->size());
432
433
322
    RETURN_IF_ERROR(_tablet_finder->find_tablets(_state, block, num_rows, _partitions,
434
322
                                                 _tablet_indexes, _skip, &_missing_map));
435
436
    // the missing vals for auto partition are also skipped.
437
322
    if (has_filtered_rows) {
438
4
        for (int i = 0; i < num_rows; i++) {
439
2
            _skip[i] = _skip[i] || _block_convertor->filter_map()[i];
440
2
        }
441
2
    }
442
322
    RETURN_IF_ERROR(_filter_block(block, row_part_tablet_ids));
443
444
322
    if (!_missing_map.empty()) {
445
168
        RETURN_IF_ERROR(_deal_missing_map(input_block, block, partition_cols_idx,
446
168
                                          rows_stat_val)); // send input block to save
447
168
    }
448
322
    return Status::OK();
449
322
}
450
451
Status VRowDistribution::_generate_rows_distribution_for_auto_overwrite(
452
        const Block& input_block, Block* block, const std::vector<uint16_t>& partition_cols_idx,
453
        bool has_filtered_rows, std::vector<RowPartTabletIds>& row_part_tablet_ids,
454
34
        int64_t& rows_stat_val) {
455
34
    int num_rows = cast_set<int>(block->rows());
456
457
    // for non-auto-partition situation, goes into two 'else' branch. just find the origin partitions, replace them by rpc,
458
    //  and find the new partitions to use.
459
    // for auto-partition's, find and save origins in _partitions and replace them. at meanwhile save the missing values for auto
460
    //  partition. then we find partition again to get replaced partitions in _partitions. this time _missing_map is ignored cuz
461
    //  we already saved missing values.
462
34
    if (_vpartition->is_auto_partition() &&
463
34
        _state->query_options().enable_auto_create_when_overwrite) {
464
        // allow auto create partition for missing rows.
465
10
        std::vector<uint16_t> partition_keys = _vpartition->get_partition_keys();
466
10
        auto partition_col = block->get_by_position(partition_keys[0]);
467
10
        _missing_map.clear();
468
10
        _missing_map.reserve(partition_col.column->size());
469
470
10
        RETURN_IF_ERROR(_tablet_finder->find_tablets(_state, block, num_rows, _partitions,
471
10
                                                     _tablet_indexes, _skip, &_missing_map));
472
473
        // allow and really need to create during auto-detect-overwriting.
474
10
        if (!_missing_map.empty()) {
475
3
            RETURN_IF_ERROR(
476
3
                    _deal_missing_map(input_block, block, partition_cols_idx, rows_stat_val));
477
3
        }
478
24
    } else {
479
24
        RETURN_IF_ERROR(_tablet_finder->find_tablets(_state, block, num_rows, _partitions,
480
24
                                                     _tablet_indexes, _skip));
481
24
    }
482
34
    RETURN_IF_ERROR(_replace_overwriting_partition());
483
484
    // regenerate locations for new partitions & tablets
485
28
    _reset_find_tablets(num_rows);
486
28
    if (_vpartition->is_auto_partition() &&
487
28
        _state->query_options().enable_auto_create_when_overwrite) {
488
        // here _missing_map is just a placeholder
489
10
        RETURN_IF_ERROR(_tablet_finder->find_tablets(_state, block, num_rows, _partitions,
490
10
                                                     _tablet_indexes, _skip, &_missing_map));
491
10
        if (VLOG_TRACE_IS_ON) {
492
0
            std::string tmp;
493
0
            for (auto v : _missing_map) {
494
0
                tmp += std::to_string(v).append(", ");
495
0
            }
496
0
            VLOG_TRACE << "Trace missing map of " << this << ':' << tmp;
497
0
        }
498
18
    } else {
499
18
        RETURN_IF_ERROR(_tablet_finder->find_tablets(_state, block, num_rows, _partitions,
500
18
                                                     _tablet_indexes, _skip));
501
18
    }
502
28
    if (has_filtered_rows) {
503
0
        for (int i = 0; i < num_rows; i++) {
504
0
            _skip[i] = _skip[i] || _block_convertor->filter_map()[i];
505
0
        }
506
0
    }
507
28
    RETURN_IF_ERROR(_filter_block(block, row_part_tablet_ids));
508
28
    return Status::OK();
509
28
}
510
511
void VRowDistribution::_reset_row_part_tablet_ids(
512
37.2k
        std::vector<RowPartTabletIds>& row_part_tablet_ids, int64_t rows) {
513
37.2k
    row_part_tablet_ids.resize(_schema->indexes().size());
514
38.2k
    for (auto& row_part_tablet_id : row_part_tablet_ids) {
515
38.2k
        auto& row_ids = row_part_tablet_id.row_ids;
516
38.2k
        auto& partition_ids = row_part_tablet_id.partition_ids;
517
38.2k
        auto& tablet_ids = row_part_tablet_id.tablet_ids;
518
519
38.2k
        row_ids.clear();
520
38.2k
        partition_ids.clear();
521
38.2k
        tablet_ids.clear();
522
        // This is important for performance.
523
38.2k
        row_ids.reserve(rows);
524
38.2k
        partition_ids.reserve(rows);
525
38.2k
        tablet_ids.reserve(rows);
526
38.2k
    }
527
37.2k
}
528
529
Status VRowDistribution::generate_rows_distribution(
530
        Block& input_block, std::shared_ptr<Block>& block,
531
37.2k
        std::vector<RowPartTabletIds>& row_part_tablet_ids, int64_t& rows_stat_val) {
532
37.2k
    auto input_rows = input_block.rows();
533
37.2k
    _reset_row_part_tablet_ids(row_part_tablet_ids, input_rows);
534
535
    // we store the batching block with value of `input_block`. so just do all of these again.
536
37.2k
    bool has_filtered_rows = false;
537
37.2k
    RETURN_IF_ERROR(_block_convertor->validate_and_convert_block(
538
37.2k
            _state, &input_block, block, *_vec_output_expr_ctxs, input_rows, has_filtered_rows));
539
540
    // batching block rows which need new partitions. deal together at finish.
541
37.2k
    if (!_batching_block) [[unlikely]] {
542
29.6k
        std::unique_ptr<Block> tmp_block = input_block.create_same_struct_block(0);
543
29.6k
        _batching_block = MutableBlock::create_unique(std::move(*tmp_block));
544
29.6k
    }
545
546
37.2k
    auto num_rows = block->rows();
547
37.2k
    _reset_find_tablets(num_rows);
548
549
    // if there's projection of partition calc, we need to calc it first.
550
37.2k
    auto [part_ctxs, part_funcs] = _get_partition_function();
551
37.2k
    std::vector<uint16_t> partition_cols_idx;
552
37.2k
    if (_vpartition->is_projection_partition()) {
553
        // calc the start value of missing partition ranges.
554
497
        auto func_size = part_funcs.size();
555
1.11k
        for (int i = 0; i < func_size; ++i) {
556
615
            int result_idx = -1;
557
            // we just calc left range here. leave right to FE to avoid dup calc.
558
615
            RETURN_IF_ERROR(part_funcs[i]->execute(part_ctxs[i].get(), block.get(), &result_idx));
559
560
615
            VLOG_DEBUG << "Partition-calculated block:\n" << block->dump_data(0, 1);
561
615
            DCHECK(result_idx != -1);
562
563
615
            partition_cols_idx.push_back(cast_set<uint16_t>(result_idx));
564
615
        }
565
566
        // change the column to compare to transformed.
567
497
        _vpartition->set_transformed_slots(partition_cols_idx);
568
497
    }
569
570
37.2k
    Status st = Status::OK();
571
37.2k
    if (_vpartition->is_auto_detect_overwrite() && !_deal_batched) {
572
        // when overwrite, no auto create partition allowed.
573
34
        st = _generate_rows_distribution_for_auto_overwrite(input_block, block.get(),
574
34
                                                            partition_cols_idx, has_filtered_rows,
575
34
                                                            row_part_tablet_ids, rows_stat_val);
576
37.2k
    } else if (_vpartition->is_auto_partition() && !_deal_batched) {
577
322
        st = _generate_rows_distribution_for_auto_partition(input_block, block.get(),
578
322
                                                            partition_cols_idx, has_filtered_rows,
579
322
                                                            row_part_tablet_ids, rows_stat_val);
580
36.8k
    } else { // not auto partition
581
36.8k
        st = _generate_rows_distribution_for_non_auto_partition(block.get(), has_filtered_rows,
582
36.8k
                                                                row_part_tablet_ids);
583
36.8k
    }
584
585
37.2k
    return st;
586
37.2k
}
587
588
// reuse vars for find_tablets
589
37.2k
void VRowDistribution::_reset_find_tablets(int64_t rows) {
590
37.2k
    _tablet_finder->filter_bitmap().Reset(rows);
591
37.2k
    _partitions.assign(rows, nullptr);
592
37.2k
    _skip.assign(rows, false);
593
37.2k
    _tablet_indexes.assign(rows, 0);
594
37.2k
}
595
596
} // namespace doris