Coverage Report

Created: 2026-07-29 00:19

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
be/src/format_v2/table_reader.h
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Count
Source
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// Licensed to the Apache Software Foundation (ASF) under one
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// or more contributor license agreements.  See the NOTICE file
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// distributed with this work for additional information
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// regarding copyright ownership.  The ASF licenses this file
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// to you under the Apache License, Version 2.0 (the
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// "License"); you may not use this file except in compliance
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// with the License.  You may obtain a copy of the License at
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//
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//   http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing,
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// software distributed under the License is distributed on an
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// "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY
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// KIND, either express or implied.  See the License for the
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// specific language governing permissions and limitations
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// under the License.
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#pragma once
19
20
#include <bvar/status.h>
21
22
#include <algorithm>
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#include <exception>
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#include <map>
25
#include <memory>
26
#include <optional>
27
#include <string>
28
#include <string_view>
29
#include <utility>
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#include <vector>
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32
#include "common/cast_set.h"
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#include "common/exception.h"
34
#include "common/logging.h"
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#include "common/status.h"
36
#include "core/assert_cast.h"
37
#include "core/block/block.h"
38
#include "core/column/column_array.h"
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#include "core/column/column_const.h"
40
#include "core/column/column_map.h"
41
#include "core/column/column_nullable.h"
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#include "core/column/column_struct.h"
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#include "core/column/column_vector.h"
44
#include "core/data_type/data_type.h"
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#include "core/data_type/data_type_array.h"
46
#include "core/data_type/data_type_map.h"
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#include "core/data_type/data_type_nullable.h"
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#include "core/data_type/data_type_number.h"
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#include "core/data_type/data_type_string.h"
50
#include "core/data_type/data_type_struct.h"
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#include "core/field.h"
52
#include "exec/common/stringop_substring.h"
53
#include "exprs/vexpr.h"
54
#include "exprs/vexpr_context.h"
55
#include "exprs/vexpr_fwd.h"
56
#include "exprs/vslot_ref.h"
57
#include "format/table/deletion_vector.h"
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#include "format_v2/column_data.h"
59
#include "format_v2/column_mapper.h"
60
#include "format_v2/expr/cast.h"
61
#include "format_v2/expr/delete_predicate.h"
62
#include "format_v2/file_reader.h"
63
#include "format_v2/parquet/reader/column_reader.h"
64
#include "format_v2/schema_projection.h"
65
#include "gen_cpp/PlanNodes_types.h"
66
#include "io/io_common.h"
67
#include "runtime/descriptors.h"
68
#include "storage/segment/condition_cache.h"
69
70
namespace doris {
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class Block;
72
struct DeleteFileDesc;
73
class RuntimeState;
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} // namespace doris
75
76
namespace doris::format {
77
78
using DeleteRows = std::vector<int64_t>;
79
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// Row-level predicates on table/global schema. They are rewritten to file-local expressions when
81
// possible, and remain the source of row-level filtering after localization.
82
struct TableFilter {
83
    VExprContextSPtr conjunct;
84
    std::vector<GlobalIndex> global_indices;
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};
86
87
struct ScanTask {
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161
    virtual ~ScanTask() = default;
89
90
    std::unique_ptr<io::FileDescription> data_file;
91
};
92
93
struct ProjectedColumnBuildContext {
94
    const TFileScanRangeParams* scan_params = nullptr;
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    const TFileRangeDesc* range = nullptr;
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    RuntimeState* runtime_state = nullptr;
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    const SlotDescriptor* slot_desc = nullptr;
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    std::optional<ColumnDefinition> schema_column = std::nullopt;
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    size_t next_file_column_idx = 0;
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};
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struct ReadProfile {
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    RuntimeProfile::Counter* total_timer = nullptr;
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    RuntimeProfile::Counter* init_timer = nullptr;
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    RuntimeProfile::Counter* num_delete_files = nullptr;
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    RuntimeProfile::Counter* num_delete_rows = nullptr;
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    RuntimeProfile::Counter* parse_delete_file_time = nullptr;
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    RuntimeProfile::Counter* decoded_dv_cache_hit_count = nullptr;
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    RuntimeProfile::Counter* decoded_dv_cache_miss_count = nullptr;
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    RuntimeProfile::Counter* dv_file_cache_hit_count = nullptr;
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    RuntimeProfile::Counter* dv_file_cache_miss_count = nullptr;
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    RuntimeProfile::Counter* dv_file_cache_peer_read_count = nullptr;
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    RuntimeProfile::Counter* exec_timer = nullptr;
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    RuntimeProfile::Counter* prepare_split_timer = nullptr;
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    RuntimeProfile::Counter* finalize_timer = nullptr;
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    RuntimeProfile::Counter* create_reader_timer = nullptr;
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    RuntimeProfile::Counter* pushdown_agg_timer = nullptr;
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    RuntimeProfile::Counter* open_reader_timer = nullptr;
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    RuntimeProfile::Counter* runtime_filter_partition_prune_timer = nullptr;
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    RuntimeProfile::Counter* runtime_filter_partition_pruned_range_counter = nullptr;
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    RuntimeProfile::Counter* close_timer = nullptr;
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    RuntimeProfile::Counter* file_reader_total_timer = nullptr;
123
    RuntimeProfile::Counter* file_reader_init_timer = nullptr;
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    RuntimeProfile::Counter* file_reader_schema_timer = nullptr;
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    RuntimeProfile::Counter* file_reader_mapper_timer = nullptr;
126
    RuntimeProfile::Counter* file_reader_open_timer = nullptr;
127
    RuntimeProfile::Counter* file_reader_get_block_timer = nullptr;
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    RuntimeProfile::Counter* file_reader_aggregate_timer = nullptr;
129
    RuntimeProfile::Counter* file_reader_close_timer = nullptr;
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};
131
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struct TableReadOptions {
133
    // Columns need to be read from file and output by table reader. They are all in table/global
134
    // schema semantics.
135
    const std::vector<ColumnDefinition> projected_columns;
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    // All complex conjuncts from scan operator
137
    const VExprContextSPtrs conjuncts;
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    // File format of the underlying data files, needed for reader initialization and reader-level
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    // filter pushdown.
140
    const FileFormat format;
141
    TFileScanRangeParams* scan_params;
142
    std::shared_ptr<io::IOContext> io_ctx;
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    RuntimeState* runtime_state;
144
    RuntimeProfile* scanner_profile;
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    // File formats without complete self-describing metadata, such as CSV, Text, and JSON, need
146
    // the FE-planned physical file slots to build their file-local schema and deserialize values.
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    const std::vector<SlotDescriptor*>* file_slot_descs = nullptr;
148
    // Push-down aggregate type.
149
    const TPushAggOp::type push_down_agg_type = TPushAggOp::type::NONE;
150
    // Table/global indices of explicit COUNT arguments. nullopt means an old FE did not send the
151
    // semantic argument field, while an explicit empty vector means COUNT(*)/COUNT(1). Keeping
152
    // those states separate prevents a rolling-upgrade plan from being reinterpreted by a new BE.
153
    const std::optional<std::vector<GlobalIndex>> push_down_count_columns = std::nullopt;
154
    // Initial digest of predicates available during scanner open. Scanner-driven splits override it
155
    // with SplitReadOptions::condition_cache_digest after collecting late-arrival runtime filters.
156
    // A zero digest disables condition cache.
157
    uint64_t condition_cache_digest = 0;
158
};
159
160
struct SplitReadOptions {
161
    // Split-level information for reader initialization, which may include file path, partition values, delete file info, etc. The content is table format specific and opaque to table reader base class; it's the responsibility of the concrete table reader implementation to parse necessary information for reader initialization and filter pushdown.
162
    std::map<std::string, Field> partition_values;
163
    // Latest scanner conjuncts rewritten to table/global column indices. Runtime filters may
164
    // arrive after TableReader::init(), so scanner-driven splits replace the initial snapshot.
165
    // nullopt preserves the initial snapshot for standalone TableReader callers.
166
    std::optional<VExprContextSPtrs> conjuncts = std::nullopt;
167
    // Independent clones used for partition pruning because evaluation prepares and opens them
168
    // against a synthetic partition block before the file reader opens its row-level conjuncts.
169
    VExprContextSPtrs partition_prune_conjuncts;
170
    // Table-level COUNT may emit one metadata-derived batch and resume on a later scheduler turn.
171
    // It is safe only after every runtime filter assigned to the scanner has arrived; otherwise a
172
    // filter could arrive after synthetic rows have already been returned and those rows cannot be
173
    // retracted. Standalone TableReader callers have no scanner runtime-filter lifecycle.
174
    bool all_runtime_filters_applied = true;
175
    // Digest for the exact scanner conjunct snapshot attached to this split. FileScannerV2 rebuilds
176
    // it after collecting late-arrival RFs, so different RF payloads cannot share a cache entry. A
177
    // zero value explicitly disables condition cache for this split.
178
    std::optional<uint64_t> condition_cache_digest;
179
    ShardedKVCache* cache = nullptr;
180
    TFileRangeDesc current_range;
181
    FileFormat current_split_format = FileFormat::PARQUET;
182
    std::optional<GlobalRowIdContext> global_rowid_context;
183
};
184
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// Base class for table-level readers.
186
// This layer owns common table-level orchestration, such as split iteration, dynamic partition
187
// pruning, delete handling and conversion from file-local blocks to table-schema blocks. Concrete
188
// table-format readers only need to provide format-specific hooks for opening readers and parsing
189
// split metadata.
190
class TableReader {
191
public:
192
255
    virtual ~TableReader() = default;
193
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    // Initialize common runtime options for the table reader. Subclasses may call this from their
195
    // own init(options); table-format schema and split metadata are provided later per split.
196
    virtual Status init(TableReadOptions&& options);
197
198
    // FileScannerV2 adjusts this before each get_block() using an adaptive bytes-per-row estimate.
199
    // Store it here as well as forwarding to the current reader so newly opened split readers start
200
    // with the latest predicted batch size.
201
10
    virtual void set_batch_size(size_t batch_size) {
202
10
        _batch_size = std::max<size_t>(1, batch_size);
203
10
        if (_data_reader.reader != nullptr) {
204
0
            _data_reader.reader->set_batch_size(_batch_size);
205
0
        }
206
10
    }
207
208
#ifdef BE_TEST
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10
    size_t TEST_batch_size() const { return _batch_size; }
210
4
    void TEST_set_condition_cache_hit_count(int64_t hits) { _condition_cache_hit_count = hits; }
211
4
    bool TEST_current_data_file_is_immutable() const {
212
4
        DORIS_CHECK(_current_task != nullptr);
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4
        DORIS_CHECK(_current_task->data_file != nullptr);
214
4
        DORIS_CHECK(_current_file_description.has_value());
215
4
        DORIS_CHECK(_current_task->data_file->is_immutable ==
216
4
                    _current_file_description->is_immutable);
217
4
        return _current_task->data_file->is_immutable;
218
4
    }
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#endif
220
221
    // Prepare for reading a new split/task.
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    // 1. Pass a new split/task to reader, which will be used in subsequent open_reader() to initialize the underlying file reader.
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    // 2. Parse delete predicates from split/task information, which will be used for later dynamic filtering and delete handling.
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    virtual Status prepare_split(const SplitReadOptions& options);
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226
79
    virtual bool current_split_pruned() const { return _current_split_pruned; }
227
6
    virtual bool current_split_uses_metadata_count() const {
228
6
        return _current_split_uses_metadata_count;
229
6
    }
230
231
    // Discard the active split after the caller decides an error is ignorable, for example a
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    // stale external-table file listing that returns NOT_FOUND. The next prepare_split() must start
233
    // with no concrete reader or split-local state left from the failed split.
234
1
    virtual Status abort_split() {
235
        // Ignored open failures still spend time closing partially initialized readers. Include
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        // that recovery path in the common lifecycle profile so NOT_FOUND cannot become invisible.
237
1
        SCOPED_TIMER(_profile.total_timer);
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1
        SCOPED_TIMER(_profile.close_timer);
239
1
        if (_data_reader.reader != nullptr) {
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1
            RETURN_IF_ERROR(close_current_reader());
241
1
        } else {
242
0
            _current_task.reset();
243
0
            _current_file_description.reset();
244
0
        }
245
1
        _delete_rows = nullptr;
246
1
        _remaining_table_level_count = -1;
247
1
        _remaining_file_level_count = -1;
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1
        _current_split_uses_metadata_count = false;
249
1
        _current_split_pruned = false;
250
1
        return Status::OK();
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1
    }
252
253
    // Public entry point for reading a table-schema block. The base class opens the current reader,
254
    // advances across EOF, and closes exhausted readers. Subclasses provide protected hooks for
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    // table-format-specific behavior.
256
173
    virtual Status get_block(Block* block, bool* eos) {
257
173
        SCOPED_TIMER(_profile.total_timer);
258
173
        SCOPED_TIMER(_profile.exec_timer);
259
173
        DORIS_CHECK(block->columns() == _projected_columns.size());
260
173
        block->clear_column_data(_projected_columns.size());
261
262
214
        while (true) {
263
214
            if (*eos) {
264
0
                return Status::OK();
265
0
            }
266
214
            if (_io_ctx != nullptr && _io_ctx->should_stop) {
267
0
                *eos = true;
268
0
                return Status::OK();
269
0
            }
270
214
            if (!_data_reader.reader) {
271
181
                if (_is_table_level_count_active()) {
272
6
                    RETURN_IF_ERROR(_read_table_level_count(block, eos));
273
6
                    return Status::OK();
274
6
                }
275
175
                if (_is_file_level_count_active()) {
276
4
                    RETURN_IF_ERROR(_read_file_level_count(block, eos));
277
4
                    return Status::OK();
278
4
                }
279
171
                RETURN_IF_ERROR(create_next_reader(eos));
280
169
                if (!_data_reader.reader) {
281
42
                    DCHECK(*eos);
282
42
                    return Status::OK();
283
42
                }
284
169
            }
285
286
            // Materialize a reduced row set for upper aggregate operators when aggregate
287
            // pushdown can be applied. This is not the final aggregate result: COUNT emits
288
            // `count` default rows for the upper COUNT(*), and MIN/MAX emits two rows containing
289
            // file-level min/max values for the upper MIN/MAX.
290
160
            if (!_aggregate_pushdown_tried) {
291
127
                SCOPED_TIMER(_profile.pushdown_agg_timer);
292
127
                bool pushed_down = false;
293
127
                const auto status = _try_materialize_aggregate_pushdown_rows(block, &pushed_down);
294
127
                if (!status.ok()) {
295
1
                    if (_io_ctx != nullptr && _io_ctx->should_stop &&
296
1
                        status.is<ErrorCode::END_OF_FILE>()) {
297
1
                        *eos = true;
298
1
                        return Status::OK();
299
1
                    }
300
0
                    return status;
301
1
                }
302
126
                if (pushed_down) {
303
11
                    return Status::OK();
304
11
                }
305
126
            }
306
307
148
            bool current_eof = false;
308
148
            _data_reader.block_template.clear_column_data(
309
148
                    cast_set<int64_t>(_data_reader.file_block_layout.size()));
310
148
            size_t current_rows = 0;
311
148
            {
312
148
                SCOPED_TIMER(_profile.file_reader_total_timer);
313
148
                SCOPED_TIMER(_profile.file_reader_get_block_timer);
314
148
                RETURN_IF_ERROR(_data_reader.reader->get_block(&_data_reader.block_template,
315
148
                                                               &current_rows, &current_eof));
316
148
            }
317
148
            const bool stopped_during_read = _io_ctx != nullptr && _io_ctx->should_stop;
318
148
            if (current_rows == 0) {
319
41
                if (current_eof) {
320
40
                    _current_reader_reached_eof = !stopped_during_read;
321
40
                    RETURN_IF_ERROR(close_current_reader());
322
40
                }
323
41
                continue;
324
41
            }
325
148
            DCHECK_EQ(_data_reader.block_template.columns(), _data_reader.file_block_layout.size())
326
0
                    << _data_reader.block_template.dump_structure();
327
107
#ifndef NDEBUG
328
107
            RETURN_IF_ERROR(_check_file_block_columns("after file reader get_block", current_rows));
329
107
#endif
330
107
            DORIS_CHECK(block->columns() == _data_reader.column_mapper->mappings().size());
331
107
            RETURN_IF_ERROR(finalize_chunk(block, current_rows));
332
107
#ifndef NDEBUG
333
107
            RETURN_IF_ERROR(
334
107
                    _check_table_block_columns("after finalize_chunk", block, current_rows));
335
107
#endif
336
107
            if (current_eof) {
337
20
                _current_reader_reached_eof = !stopped_during_read;
338
20
                RETURN_IF_ERROR(close_current_reader());
339
20
            }
340
107
            return Status::OK();
341
107
        }
342
173
    }
343
344
    // Close the table reader and the currently active file reader. Subclasses that hold additional
345
    // table-format resources should override this and call TableReader::close() first.
346
135
    virtual Status close() {
347
135
        SCOPED_TIMER(_profile.total_timer);
348
135
        SCOPED_TIMER(_profile.close_timer);
349
135
        if (_data_reader.reader) {
350
56
            RETURN_IF_ERROR(close_current_reader());
351
56
        }
352
135
        _current_task.reset();
353
135
        _current_file_description.reset();
354
135
        _remaining_table_level_count = -1;
355
135
        _remaining_file_level_count = -1;
356
135
        _current_split_uses_metadata_count = false;
357
135
        return Status::OK();
358
135
    }
359
360
8
    virtual int64_t condition_cache_hit_count() const { return _condition_cache_hit_count; }
361
362
    virtual std::string debug_string() const;
363
364
    virtual Status annotate_projected_column(const TFileScanSlotInfo& slot_info,
365
                                             ProjectedColumnBuildContext* context,
366
                                             ColumnDefinition* column) const;
367
368
0
    virtual Status validate_projected_columns(const ProjectedColumnBuildContext& context) const {
369
0
        (void)context;
370
0
        return Status::OK();
371
0
    }
372
373
protected:
374
    // TableReader keeps the active file description both in the scan task and separately for
375
    // creating the physical reader. Table-format readers must update both copies when their
376
    // snapshot protocol guarantees that a file path is never overwritten with different bytes.
377
    // This guarantee lets readers safely build cache keys without mtime; it must not be used for
378
    // ordinary Hive/TVF files whose paths may be overwritten in place.
379
74
    void mark_current_data_file_immutable() {
380
74
        DORIS_CHECK(_current_task != nullptr);
381
74
        DORIS_CHECK(_current_task->data_file != nullptr);
382
74
        DORIS_CHECK(_current_file_description.has_value());
383
74
        _current_task->data_file->is_immutable = true;
384
74
        _current_file_description->is_immutable = true;
385
74
    }
386
387
    std::optional<ColumnDefinition> _find_table_column_by_field_id(
388
            int32_t field_id, DataTypePtr type, bool include_historical_schemas) const;
389
390
    // Parse deletion vector information from table format specific file description.
391
    virtual Status _parse_deletion_vector_file(const TTableFormatFileDesc& t_desc,
392
90
                                               DeleteFileDesc* desc, bool* has_delete_file) {
393
90
        *has_delete_file = false;
394
90
        return Status::OK();
395
90
    }
396
397
    // Advance to the next reader. This closes the current reader first and then opens the next
398
    // concrete reader. Subclasses should not duplicate this loop.
399
    Status create_next_reader(bool* eos);
400
    virtual Status create_file_reader(std::unique_ptr<FileReader>* reader);
401
70
    virtual TableColumnMappingMode mapping_mode() const { return TableColumnMappingMode::BY_NAME; }
402
73
    virtual void configure_mapper_options(TableColumnMapperOptions*) const {}
403
126
    virtual Status annotate_file_schema(std::vector<ColumnDefinition>* file_schema) {
404
126
        DORIS_CHECK(file_schema != nullptr);
405
126
        return Status::OK();
406
126
    }
407
408
    // Open the concrete reader for the current split/task and build the file-local scan request.
409
129
    virtual Status open_reader() {
410
129
        SCOPED_TIMER(_profile.open_reader_timer);
411
        // 1. Get file schema and create column mapping.
412
129
        std::vector<ColumnDefinition> file_schema;
413
129
        {
414
129
            SCOPED_TIMER(_profile.file_reader_total_timer);
415
129
            SCOPED_TIMER(_profile.file_reader_schema_timer);
416
129
            RETURN_IF_ERROR(_data_reader.reader->get_schema(&file_schema));
417
129
        }
418
        // For Paimon/Hudi, FE can provide field ids through `history_schema_info`. Annotate the
419
        // file schema before column mapping when the table format maps columns by field id.
420
129
        RETURN_IF_ERROR(annotate_file_schema(&file_schema));
421
129
        _data_reader.file_schema = file_schema;
422
129
        _mapper_options.mode = mapping_mode();
423
129
        configure_mapper_options(&_mapper_options);
424
425
129
        {
426
129
            SCOPED_TIMER(_profile.file_reader_total_timer);
427
129
            SCOPED_TIMER(_profile.file_reader_mapper_timer);
428
129
            _data_reader.column_mapper = _data_reader.reader->create_column_mapper(_mapper_options);
429
129
        }
430
129
        DORIS_CHECK(_data_reader.column_mapper != nullptr);
431
129
        RETURN_IF_ERROR(_data_reader.column_mapper->create_mapping(_projected_columns,
432
129
                                                                   _partition_values, file_schema));
433
129
        DORIS_CHECK(_data_reader.column_mapper->mappings().size() == _projected_columns.size());
434
435
        // 2. Build table filters based on conjuncts and column predicates.
436
129
        RETURN_IF_ERROR(_build_table_filters_from_conjuncts());
437
438
        // 3. Create file scan request based on column mapping and table filters, then open file
439
        // reader with the request. File scan request carries row-level expression filters and
440
        // file-level pruning hints. Only expression filters decide returned rows.
441
129
        auto file_request = std::make_shared<FileScanRequest>();
442
129
        RETURN_IF_ERROR(_data_reader.column_mapper->create_scan_request(
443
129
                _table_filters, _projected_columns, file_request.get(), _runtime_state));
444
129
        bool constant_filter_pruned_split = false;
445
129
        RETURN_IF_ERROR(_evaluate_constant_filters(&constant_filter_pruned_split));
446
129
        if (constant_filter_pruned_split) {
447
1
            RETURN_IF_ERROR(close_current_reader());
448
1
            return Status::OK();
449
1
        }
450
        // COUNT(*) has no semantic column argument, but Nereids retains a minimum-width scan slot
451
        // so the scan node still has an output tuple. Record only the current non-predicate file
452
        // columns before table-format hooks add row-position or equality-delete dependencies. This
453
        // marker is independent of aggregate eligibility: with position deletes, for example,
454
        // metadata COUNT must fall back to reading rows, but an arbitrary unsupported TIME_MILLIS
455
        // placeholder still must not be validated or decoded merely to carry the surviving count.
456
128
        if (_push_down_agg_type == TPushAggOp::type::COUNT &&
457
128
            _push_down_count_columns.has_value() && _push_down_count_columns->empty()) {
458
11
            file_request->count_star_placeholder_columns.reserve(
459
11
                    file_request->non_predicate_columns.size());
460
11
            for (const auto& column : file_request->non_predicate_columns) {
461
8
                file_request->count_star_placeholder_columns.push_back(column.column_id());
462
8
            }
463
11
        }
464
128
        RETURN_IF_ERROR(customize_file_scan_request(file_request.get()));
465
127
        RETURN_IF_ERROR(_open_local_filter_exprs(*file_request));
466
127
        _data_reader.file_block_layout.clear();
467
127
        _data_reader.block_template.clear();
468
127
        _data_reader.file_block_layout.resize(file_request->local_positions.size());
469
470
        // 4. Build file block layout from file schema and column mapping. The layout describes
471
        // the block returned by file reader before table-column materialization.
472
183
        for (const auto& [file_column_id, block_position] : file_request->local_positions) {
473
183
            DORIS_CHECK(block_position.value() < _data_reader.file_block_layout.size());
474
183
            const auto* field = _find_column_definition(_data_reader.file_schema, file_column_id);
475
183
            DORIS_CHECK(field != nullptr);
476
477
183
            ColumnDefinition projected_field;
478
183
            {
479
183
                auto it = std::find_if(
480
183
                        file_request->non_predicate_columns.begin(),
481
183
                        file_request->non_predicate_columns.end(),
482
202
                        [&](const LocalColumnIndex& p) { return p.column_id() == file_column_id; });
483
183
                if (it != file_request->non_predicate_columns.end()) {
484
121
                    RETURN_IF_ERROR(project_column_definition(*field, *it, &projected_field));
485
121
                }
486
183
            }
487
183
            {
488
183
                auto it = std::find_if(
489
183
                        file_request->predicate_columns.begin(),
490
183
                        file_request->predicate_columns.end(),
491
183
                        [&](const LocalColumnIndex& p) { return p.column_id() == file_column_id; });
492
183
                if (it != file_request->predicate_columns.end()) {
493
62
                    RETURN_IF_ERROR(project_column_definition(*field, *it, &projected_field));
494
62
                }
495
183
            }
496
183
            _data_reader.file_block_layout[block_position.value()] = {
497
183
                    .file_column_id = file_column_id,
498
183
                    .name = projected_field.name,
499
183
                    .type = projected_field.type,
500
183
            };
501
183
            DORIS_CHECK(_data_reader.file_block_layout[block_position.value()].type != nullptr);
502
183
        }
503
504
        // 5. Prepare block template from file block layout. The block template stores the block
505
        // returned by file reader before table-column materialization.
506
127
        _data_reader.block_template.reserve(_data_reader.file_block_layout.size());
507
183
        for (const auto& column : _data_reader.file_block_layout) {
508
183
            _data_reader.block_template.insert(
509
183
                    {column.type->create_column(), column.type, column.name});
510
183
        }
511
127
        if (VLOG_DEBUG_IS_ON) {
512
0
            VLOG_DEBUG << "TableReader debug: " << debug_string();
513
0
        }
514
127
        RETURN_IF_ERROR(_open_mapping_exprs());
515
127
        {
516
127
            SCOPED_TIMER(_profile.file_reader_total_timer);
517
127
            SCOPED_TIMER(_profile.file_reader_open_timer);
518
127
            RETURN_IF_ERROR(_data_reader.reader->open(file_request));
519
127
        }
520
127
        RETURN_IF_ERROR(_init_reader_condition_cache(*file_request));
521
127
        return Status::OK();
522
127
    }
523
524
    Status _build_table_filters_from_conjuncts();
525
    Status _evaluate_partition_prune_conjuncts(const VExprContextSPtrs& conjuncts,
526
                                               bool* can_filter_all);
527
    static bool _is_safe_to_pre_execute(const VExprContextSPtr& conjunct);
528
    Status _build_partition_prune_block(Block* block) const;
529
    Status _open_local_filter_exprs(const FileScanRequest& file_request);
530
    Status _init_reader_condition_cache(const FileScanRequest& file_request);
531
    void _finalize_reader_condition_cache();
532
    bool _should_enable_condition_cache(const FileScanRequest& file_request) const;
533
534
129
    Status _evaluate_constant_filters(bool* can_filter_all) {
535
129
        DORIS_CHECK(can_filter_all != nullptr);
536
129
        DORIS_CHECK_LE(_constant_pruning_safe_filter_count, _table_filters.size());
537
129
        *can_filter_all = false;
538
        // The bound was derived from the original `_conjuncts` order, which includes slotless
539
        // expressions omitted from `_table_filters`. Iterating only this prefix therefore cannot
540
        // skip an unsafe row-level predicate and pre-execute a later constant predicate.
541
156
        for (size_t i = 0; i < _constant_pruning_safe_filter_count; ++i) {
542
28
            const auto& table_filter = _table_filters[i];
543
28
            if (table_filter.conjunct == nullptr) {
544
0
                continue;
545
0
            }
546
28
            DORIS_CHECK(_is_safe_to_pre_execute(table_filter.conjunct));
547
            // RuntimeFilterExpr does not implement execute_column_impl(); it is evaluated by the
548
            // row-level filter path through execute_filter(). Constant split pruning uses
549
            // VExprContext::execute() on a one-row synthetic block, so runtime filters must not be
550
            // pre-executed here even when their referenced slot maps to a constant value.
551
28
            if (table_filter.conjunct->root()->is_rf_wrapper() ||
552
28
                !_table_filter_has_only_constant_entries(table_filter)) {
553
26
                continue;
554
26
            }
555
2
            Block eval_block;
556
2
            RETURN_IF_ERROR(_build_constant_filter_block(table_filter, &eval_block));
557
2
            RowDescriptor row_desc;
558
2
            RETURN_IF_ERROR(table_filter.conjunct->prepare(_runtime_state, row_desc));
559
2
            RETURN_IF_ERROR(table_filter.conjunct->open(_runtime_state));
560
2
            int result_column_id = -1;
561
2
            RETURN_IF_ERROR(table_filter.conjunct->execute(&eval_block, &result_column_id));
562
2
            DORIS_CHECK(result_column_id >= 0);
563
2
            if (_filter_result_filters_all(eval_block.get_by_position(result_column_id).column)) {
564
1
                *can_filter_all = true;
565
1
                return Status::OK();
566
1
            }
567
2
        }
568
128
        return Status::OK();
569
129
    }
570
571
23
    bool _table_filter_has_only_constant_entries(const TableFilter& table_filter) const {
572
23
        const auto& filter_entries = _data_reader.column_mapper->filter_entries();
573
23
        for (const auto global_index : table_filter.global_indices) {
574
23
            const auto entry_it = filter_entries.find(global_index);
575
23
            if (entry_it == filter_entries.end() || !entry_it->second.is_constant()) {
576
21
                return false;
577
21
            }
578
23
        }
579
2
        return !table_filter.global_indices.empty();
580
23
    }
581
582
2
    Status _build_constant_filter_block(const TableFilter& table_filter, Block* eval_block) {
583
2
        DORIS_CHECK(eval_block != nullptr);
584
2
        eval_block->clear();
585
2
        const auto& mappings = _data_reader.column_mapper->mappings();
586
2
        const auto& filter_entries = _data_reader.column_mapper->filter_entries();
587
2
        DORIS_CHECK(mappings.size() == _projected_columns.size());
588
4
        for (size_t column_idx = 0; column_idx < mappings.size(); ++column_idx) {
589
2
            const auto global_index = GlobalIndex(column_idx);
590
2
            const auto& mapping = mappings[column_idx];
591
2
            const auto entry_it = filter_entries.find(global_index);
592
2
            const bool referenced_by_filter =
593
2
                    std::find(table_filter.global_indices.begin(),
594
2
                              table_filter.global_indices.end(),
595
2
                              global_index) != table_filter.global_indices.end();
596
2
            if (referenced_by_filter && entry_it != filter_entries.end() &&
597
2
                entry_it->second.is_constant()) {
598
2
                ColumnPtr constant_column;
599
2
                RETURN_IF_ERROR(_materialize_constant_filter_column(
600
2
                        entry_it->second.constant_index(), &constant_column));
601
2
                eval_block->insert({std::move(constant_column), mapping.table_type,
602
2
                                    mapping.table_column_name});
603
2
            } else {
604
0
                eval_block->insert({mapping.table_type->create_column_const_with_default_value(1),
605
0
                                    mapping.table_type, mapping.table_column_name});
606
0
            }
607
2
        }
608
2
        return Status::OK();
609
2
    }
610
611
2
    Status _materialize_constant_filter_column(ConstantIndex constant_index, ColumnPtr* column) {
612
2
        DORIS_CHECK(column != nullptr);
613
2
        const auto& constant_entry = _data_reader.column_mapper->constant_map().get(constant_index);
614
2
        DORIS_CHECK(constant_entry.expr != nullptr);
615
2
        DORIS_CHECK(constant_entry.type != nullptr);
616
2
        RowDescriptor row_desc;
617
2
        RETURN_IF_ERROR(constant_entry.expr->prepare(_runtime_state, row_desc));
618
2
        RETURN_IF_ERROR(constant_entry.expr->open(_runtime_state));
619
2
        Block eval_block;
620
2
        eval_block.insert({constant_entry.type->create_column_const_with_default_value(1),
621
2
                           constant_entry.type, "__table_reader_constant_filter"});
622
2
        int result_column_id = -1;
623
2
        RETURN_IF_ERROR(constant_entry.expr->execute(&eval_block, &result_column_id));
624
2
        DORIS_CHECK(result_column_id >= 0);
625
2
        *column = eval_block.get_by_position(result_column_id).column;
626
2
        DORIS_CHECK((*column)->size() == 1);
627
2
        return Status::OK();
628
2
    }
629
630
2
    static bool _filter_result_filters_all(const ColumnPtr& filter_column) {
631
2
        DORIS_CHECK(filter_column.get() != nullptr);
632
2
        DORIS_CHECK(filter_column->size() == 1);
633
2
        return !filter_column->get_bool(0);
634
2
    }
635
636
129
    virtual Status customize_file_scan_request(FileScanRequest* file_request) {
637
129
        return _append_delete_predicate(file_request);
638
129
    }
639
640
408
    bool _is_table_level_count_active() const { return _remaining_table_level_count >= 0; }
641
642
175
    bool _is_file_level_count_active() const { return _remaining_file_level_count >= 0; }
643
644
14
    Status _materialize_count_rows(size_t rows, Block* block) const {
645
14
        DORIS_CHECK(block != nullptr);
646
14
        DORIS_CHECK(block->columns() > 0 || rows == 0);
647
28
        for (size_t column_idx = 0; column_idx < block->columns(); ++column_idx) {
648
14
            auto column = block->get_by_position(column_idx).type->create_column();
649
14
            if (auto* nullable = check_and_get_column<ColumnNullable>(*column)) {
650
                // Metadata COUNT emits synthetic input rows for the unchanged upper aggregate.
651
                // They must be non-NULL for COUNT(nullable_col), and constructing them explicitly
652
                // also keeps every nullable null map boolean-valid in debug/ASAN block checks.
653
14
                nullable->get_nested_column().insert_many_defaults(rows);
654
14
                nullable->get_null_map_data().resize_fill(rows, 0);
655
14
            } else {
656
0
                column->insert_many_defaults(rows);
657
0
            }
658
14
            block->replace_by_position(column_idx, std::move(column));
659
14
        }
660
14
        return Status::OK();
661
14
    }
662
663
14
    Status _materialize_next_count_batch(int64_t* remaining_rows, Block* block) const {
664
14
        DORIS_CHECK(remaining_rows != nullptr);
665
14
        DORIS_CHECK(*remaining_rows > 0);
666
14
        const int64_t batch_size = _runtime_state == nullptr
667
14
                                           ? *remaining_rows
668
14
                                           : static_cast<int64_t>(_runtime_state->batch_size());
669
14
        const auto rows = std::min(*remaining_rows, batch_size);
670
14
        RETURN_IF_ERROR(_materialize_count_rows(cast_set<size_t>(rows), block));
671
14
        *remaining_rows -= rows;
672
14
        return Status::OK();
673
14
    }
674
675
10
    Status _read_count_batch(int64_t* remaining_rows, Block* block, bool* eos) {
676
10
        DORIS_CHECK(block != nullptr);
677
10
        DORIS_CHECK(eos != nullptr);
678
10
        DORIS_CHECK(_push_down_agg_type == TPushAggOp::type::COUNT);
679
10
        DORIS_CHECK(remaining_rows != nullptr);
680
10
        DORIS_CHECK(*remaining_rows >= 0);
681
10
        if (*remaining_rows == 0) {
682
4
            *remaining_rows = -1;
683
4
            _current_task.reset();
684
4
            *eos = true;
685
4
            return Status::OK();
686
4
        }
687
6
        RETURN_IF_ERROR(_materialize_next_count_batch(remaining_rows, block));
688
6
        *eos = false;
689
6
        return Status::OK();
690
6
    }
691
692
6
    Status _read_table_level_count(Block* block, bool* eos) {
693
6
        return _read_count_batch(&_remaining_table_level_count, block, eos);
694
6
    }
695
696
4
    Status _read_file_level_count(Block* block, bool* eos) {
697
4
        return _read_count_batch(&_remaining_file_level_count, block, eos);
698
4
    }
699
700
    void _append_file_scan_column(FileScanRequest* request, LocalColumnId column_id,
701
50
                                  std::vector<LocalColumnIndex>* scan_columns) {
702
50
        DORIS_CHECK(request != nullptr);
703
50
        DORIS_CHECK(scan_columns != nullptr);
704
50
        FileScanRequestBuilder builder(request);
705
50
        Status status;
706
50
        if (scan_columns == &request->predicate_columns) {
707
39
            status = builder.add_predicate_column(column_id);
708
39
        } else {
709
11
            DORIS_CHECK(scan_columns == &request->non_predicate_columns);
710
11
            status = builder.add_non_predicate_column(column_id);
711
11
        }
712
50
        DORIS_CHECK(status.ok()) << status.to_string();
713
50
        if (column_id == LocalColumnId(ROW_POSITION_COLUMN_ID) &&
714
50
            _find_column_definition(_data_reader.file_schema, column_id) == nullptr) {
715
33
            _data_reader.file_schema.push_back(row_position_column_definition());
716
33
        }
717
50
    }
718
719
    // Append DeletePredicate to file scan request if there are deletes. The predicate will be evaluated in file reader level and filter out deleted rows before returning data to table reader.
720
129
    Status _append_delete_predicate(FileScanRequest* request) {
721
129
        DORIS_CHECK(request != nullptr);
722
129
        if ((_delete_rows == nullptr || _delete_rows->empty()) &&
723
129
            (_deletion_vector == nullptr || _deletion_vector->isEmpty())) {
724
113
            return Status::OK();
725
113
        }
726
16
        const auto row_position_column_id = LocalColumnId(ROW_POSITION_COLUMN_ID);
727
16
        _append_file_scan_column(request, row_position_column_id, &request->predicate_columns);
728
729
16
        const auto block_position = request->local_positions.at(row_position_column_id);
730
16
        auto append_predicate = [&](auto& deleted_rows) {
731
16
            auto delete_predicate = std::make_shared<DeletePredicate>(deleted_rows);
732
16
            delete_predicate->add_child(VSlotRef::create_shared(
733
16
                    cast_set<int>(block_position.value()), cast_set<int>(block_position.value()),
734
16
                    -1, std::make_shared<DataTypeInt64>(), ROW_POSITION_COLUMN_NAME));
735
16
            request->delete_conjuncts.push_back(
736
16
                    VExprContext::create_shared(std::move(delete_predicate)));
737
16
        };
_ZZN5doris6format11TableReader24_append_delete_predicateEPNS0_15FileScanRequestEENKUlRT_E_clISt6vectorIlSaIlEEEEDaS5_
Line
Count
Source
730
12
        auto append_predicate = [&](auto& deleted_rows) {
731
12
            auto delete_predicate = std::make_shared<DeletePredicate>(deleted_rows);
732
12
            delete_predicate->add_child(VSlotRef::create_shared(
733
12
                    cast_set<int>(block_position.value()), cast_set<int>(block_position.value()),
734
12
                    -1, std::make_shared<DataTypeInt64>(), ROW_POSITION_COLUMN_NAME));
735
12
            request->delete_conjuncts.push_back(
736
12
                    VExprContext::create_shared(std::move(delete_predicate)));
737
12
        };
_ZZN5doris6format11TableReader24_append_delete_predicateEPNS0_15FileScanRequestEENKUlRT_E_clIN7roaring12Roaring64MapEEEDaS5_
Line
Count
Source
730
4
        auto append_predicate = [&](auto& deleted_rows) {
731
4
            auto delete_predicate = std::make_shared<DeletePredicate>(deleted_rows);
732
4
            delete_predicate->add_child(VSlotRef::create_shared(
733
4
                    cast_set<int>(block_position.value()), cast_set<int>(block_position.value()),
734
4
                    -1, std::make_shared<DataTypeInt64>(), ROW_POSITION_COLUMN_NAME));
735
4
            request->delete_conjuncts.push_back(
736
4
                    VExprContext::create_shared(std::move(delete_predicate)));
737
4
        };
738
16
        if (_delete_rows != nullptr && !_delete_rows->empty()) {
739
12
            append_predicate(*_delete_rows);
740
12
        }
741
16
        if (_deletion_vector != nullptr && !_deletion_vector->isEmpty()) {
742
4
            append_predicate(*_deletion_vector);
743
4
        }
744
16
        return Status::OK();
745
129
    }
746
747
    // Close the current concrete reader. This hook is called by both create_next_reader() and
748
    // close(), so it should remain idempotent.
749
129
    virtual Status close_current_reader() {
750
129
        _finalize_reader_condition_cache();
751
129
        {
752
129
            SCOPED_TIMER(_profile.file_reader_total_timer);
753
129
            SCOPED_TIMER(_profile.file_reader_close_timer);
754
129
            RETURN_IF_ERROR(_data_reader.reader->close());
755
129
        }
756
129
        _data_reader.reader.reset();
757
129
        if (_data_reader.column_mapper != nullptr) {
758
128
            _data_reader.column_mapper->clear();
759
128
            _data_reader.column_mapper.reset();
760
128
        }
761
129
        _table_filters.clear();
762
129
        _constant_pruning_safe_filter_count = 0;
763
129
        _data_reader.file_schema.clear();
764
129
        _data_reader.file_block_layout.clear();
765
129
        _data_reader.block_template.clear();
766
129
        _current_task.reset();
767
129
        _current_file_description.reset();
768
129
        _current_reader_reached_eof = false;
769
129
        return Status::OK();
770
129
    }
771
772
2
    void _record_scan_rows(size_t rows) {
773
2
        if (_io_ctx != nullptr && _io_ctx->file_reader_stats != nullptr) {
774
2
            _io_ctx->file_reader_stats->read_rows += rows;
775
2
        }
776
2
    }
777
778
    // Finalize file-local block to table/global schema block.
779
107
    Status finalize_chunk(Block* block, const size_t rows) {
780
107
        SCOPED_TIMER(_profile.finalize_timer);
781
107
        size_t idx = 0;
782
107
        const auto& mappings = _data_reader.column_mapper->mappings();
783
149
        for (const auto& mapping : mappings) {
784
149
            ColumnPtr column;
785
149
            RETURN_IF_ERROR(_materialize_mapping_column(mapping, &_data_reader.block_template, rows,
786
149
                                                        &column, idx + 1 == mappings.size()));
787
149
            block->replace_by_position(idx, IColumn::mutate(std::move(column)));
788
149
            idx++;
789
149
        }
790
107
        RETURN_IF_ERROR(materialize_virtual_columns(block));
791
        // Enforce CHAR/VARCHAR length declared by the table schema after all file-to-table
792
        // materialization has finished.
793
107
        RETURN_IF_ERROR(_truncate_char_or_varchar_columns(block));
794
107
        return Status::OK();
795
107
    }
796
797
    // Materialize virtual columns in the table block, such as Iceberg _row_id and
798
    // _last_updated_sequence_number. This runs after normal column materialization so finalize
799
    // expressions can reference those virtual columns.
800
64
    virtual Status materialize_virtual_columns(Block* table_block) { return Status::OK(); }
801
802
#ifndef NDEBUG
803
107
    Status _check_file_block_columns(std::string_view stage, size_t rows) {
804
107
        DORIS_CHECK(_data_reader.block_template.columns() == _data_reader.file_block_layout.size());
805
260
        for (size_t idx = 0; idx < _data_reader.block_template.columns(); ++idx) {
806
153
            const auto& file_block_column = _data_reader.file_block_layout[idx];
807
153
            const auto& column_with_type = _data_reader.block_template.get_by_position(idx);
808
153
            const auto* column = column_with_type.column.get();
809
153
            try {
810
153
                if (column == nullptr) {
811
0
                    auto st = Status::InternalError(
812
0
                            "Invalid file block column {} at {}: file_column_id={}, name='{}', "
813
0
                            "type={}, column=null, expected_rows={}, reader={}",
814
0
                            idx, stage, file_block_column.file_column_id.value(),
815
0
                            file_block_column.name,
816
0
                            file_block_column.type == nullptr ? "null"
817
0
                                                              : file_block_column.type->get_name(),
818
0
                            rows, debug_string());
819
0
                    LOG(WARNING) << st;
820
0
                    return st;
821
0
                }
822
153
                column->sanity_check();
823
153
                auto st = column_with_type.check_type_and_column_match();
824
153
                if (!st.ok()) {
825
0
                    auto contextual_status = Status::InternalError(
826
0
                            "Invalid file block column {} at {}: file_column_id={}, name='{}', "
827
0
                            "type={}, column={}, column_size={}, expected_rows={}, error={}, "
828
0
                            "reader={}",
829
0
                            idx, stage, file_block_column.file_column_id.value(),
830
0
                            file_block_column.name,
831
0
                            file_block_column.type == nullptr ? "null"
832
0
                                                              : file_block_column.type->get_name(),
833
0
                            column->get_name(), column->size(), rows, st.to_string(),
834
0
                            debug_string());
835
0
                    LOG(WARNING) << contextual_status;
836
0
                    return contextual_status;
837
0
                }
838
153
            } catch (const Exception& e) {
839
0
                auto st = Status::InternalError(
840
0
                        "Invalid file block column {} at {}: file_column_id={}, name='{}', "
841
0
                        "type={}, column={}, column_size={}, expected_rows={}, error={}, "
842
0
                        "reader={}",
843
0
                        idx, stage, file_block_column.file_column_id.value(),
844
0
                        file_block_column.name,
845
0
                        file_block_column.type == nullptr ? "null"
846
0
                                                          : file_block_column.type->get_name(),
847
0
                        column == nullptr ? "null" : column->get_name(),
848
0
                        column == nullptr ? 0 : column->size(), rows, e.to_string(),
849
0
                        debug_string());
850
0
                LOG(WARNING) << st;
851
0
                return st;
852
0
            } catch (const std::exception& e) {
853
0
                auto st = Status::InternalError(
854
0
                        "Invalid file block column {} at {}: file_column_id={}, name='{}', "
855
0
                        "type={}, column={}, column_size={}, expected_rows={}, error={}, "
856
0
                        "reader={}",
857
0
                        idx, stage, file_block_column.file_column_id.value(),
858
0
                        file_block_column.name,
859
0
                        file_block_column.type == nullptr ? "null"
860
0
                                                          : file_block_column.type->get_name(),
861
0
                        column == nullptr ? "null" : column->get_name(),
862
0
                        column == nullptr ? 0 : column->size(), rows, e.what(), debug_string());
863
0
                LOG(WARNING) << st;
864
0
                return st;
865
0
            }
866
153
        }
867
107
        return Status::OK();
868
107
    }
869
870
107
    Status _check_table_block_columns(std::string_view stage, const Block* block, size_t rows) {
871
107
        DORIS_CHECK(block != nullptr);
872
107
        DORIS_CHECK(block->columns() == _data_reader.column_mapper->mappings().size());
873
256
        for (size_t idx = 0; idx < block->columns(); ++idx) {
874
149
            const auto& mapping = _data_reader.column_mapper->mappings()[idx];
875
149
            const auto& column_with_type = block->get_by_position(idx);
876
149
            const auto* column = column_with_type.column.get();
877
149
            try {
878
149
                if (column == nullptr) {
879
0
                    auto st = Status::InternalError(
880
0
                            "Invalid table block column {} at {}: table_column='{}', "
881
0
                            "global_index={}, type={}, column=null, expected_rows={}, mapping={}",
882
0
                            idx, stage, mapping.table_column_name, mapping.global_index.value(),
883
0
                            mapping.table_type == nullptr ? "null" : mapping.table_type->get_name(),
884
0
                            rows, mapping.debug_string());
885
0
                    LOG(WARNING) << st;
886
0
                    return st;
887
0
                }
888
149
                column->sanity_check();
889
149
                auto st = column_with_type.check_type_and_column_match();
890
149
                if (!st.ok()) {
891
0
                    auto contextual_status = Status::InternalError(
892
0
                            "Invalid table block column {} at {}: table_column='{}', "
893
0
                            "global_index={}, type={}, column={}, column_size={}, "
894
0
                            "expected_rows={}, error={}, mapping={}",
895
0
                            idx, stage, mapping.table_column_name, mapping.global_index.value(),
896
0
                            mapping.table_type == nullptr ? "null" : mapping.table_type->get_name(),
897
0
                            column->get_name(), column->size(), rows, st.to_string(),
898
0
                            mapping.debug_string());
899
0
                    LOG(WARNING) << contextual_status;
900
0
                    return contextual_status;
901
0
                }
902
149
            } catch (const Exception& e) {
903
0
                auto st = Status::InternalError(
904
0
                        "Invalid table block column {} at {}: table_column='{}', global_index={}, "
905
0
                        "type={}, column={}, column_size={}, expected_rows={}, error={}, "
906
0
                        "mapping={}",
907
0
                        idx, stage, mapping.table_column_name, mapping.global_index.value(),
908
0
                        mapping.table_type == nullptr ? "null" : mapping.table_type->get_name(),
909
0
                        column == nullptr ? "null" : column->get_name(),
910
0
                        column == nullptr ? 0 : column->size(), rows, e.to_string(),
911
0
                        mapping.debug_string());
912
0
                LOG(WARNING) << st;
913
0
                return st;
914
0
            } catch (const std::exception& e) {
915
0
                auto st = Status::InternalError(
916
0
                        "Invalid table block column {} at {}: table_column='{}', global_index={}, "
917
0
                        "type={}, column={}, column_size={}, expected_rows={}, error={}, "
918
0
                        "mapping={}",
919
0
                        idx, stage, mapping.table_column_name, mapping.global_index.value(),
920
0
                        mapping.table_type == nullptr ? "null" : mapping.table_type->get_name(),
921
0
                        column == nullptr ? "null" : column->get_name(),
922
0
                        column == nullptr ? 0 : column->size(), rows, e.what(),
923
0
                        mapping.debug_string());
924
0
                LOG(WARNING) << st;
925
0
                return st;
926
0
            }
927
149
        }
928
107
        return Status::OK();
929
107
    }
930
#endif
931
932
107
    Status _truncate_char_or_varchar_columns(Block* block) {
933
107
        DORIS_CHECK(block != nullptr);
934
107
        if (_runtime_state == nullptr ||
935
107
            !_runtime_state->query_options().truncate_char_or_varchar_columns) {
936
107
            return Status::OK();
937
107
        }
938
0
        DORIS_CHECK(block->columns() == _data_reader.column_mapper->mappings().size());
939
0
        for (size_t idx = 0; idx < _data_reader.column_mapper->mappings().size(); ++idx) {
940
0
            const auto& mapping = _data_reader.column_mapper->mappings()[idx];
941
0
            if (!_should_truncate_char_or_varchar_column(mapping)) {
942
0
                continue;
943
0
            }
944
0
            const auto target_len =
945
0
                    assert_cast<const DataTypeString*>(remove_nullable(mapping.table_type).get())
946
0
                            ->len();
947
0
            _truncate_char_or_varchar_column(block, idx, target_len);
948
0
        }
949
0
        return Status::OK();
950
107
    }
951
952
    // Return true when the table schema has a bounded CHAR/VARCHAR length that is stricter than
953
    // the file-side type. Examples:
954
    // - table VARCHAR(10), file VARCHAR(20): truncate to 10;
955
    // - table VARCHAR(10), file STRING: truncate to 10 because STRING has no declared bound;
956
    // - table STRING, any file type: no truncation because the target has no bound.
957
5
    static bool _should_truncate_char_or_varchar_column(const ColumnMapping& mapping) {
958
5
        if (mapping.table_type == nullptr) {
959
0
            return false;
960
0
        }
961
5
        const auto table_type = remove_nullable(mapping.table_type);
962
5
        const auto primitive_type = table_type->get_primitive_type();
963
5
        if (primitive_type != TYPE_VARCHAR && primitive_type != TYPE_CHAR) {
964
1
            return false;
965
1
        }
966
4
        const auto target_len = assert_cast<const DataTypeString*>(table_type.get())->len();
967
4
        if (target_len <= 0) {
968
0
            return false;
969
0
        }
970
4
        if (mapping.file_type == nullptr) {
971
0
            return true;
972
0
        }
973
4
        const auto file_type = remove_nullable(mapping.file_type);
974
4
        DORIS_CHECK(file_type != nullptr);
975
4
        int file_len = -1;
976
4
        if (file_type->get_primitive_type() == TYPE_VARCHAR ||
977
4
            file_type->get_primitive_type() == TYPE_CHAR ||
978
4
            file_type->get_primitive_type() == TYPE_STRING) {
979
3
            file_len = assert_cast<const DataTypeString*>(file_type.get())->len();
980
3
        }
981
982
4
        return file_len < 0 || target_len < file_len;
983
4
    }
984
985
    // Truncate a materialized CHAR/VARCHAR column in place by reusing the vectorized substring
986
    // implementation: substring(column, 1, len). Nullable columns are unwrapped before substring
987
    // execution and wrapped back with the original null map afterward, because substring operates
988
    // on the nested string payload only.
989
1
    static void _truncate_char_or_varchar_column(Block* block, size_t idx, int len) {
990
1
        DORIS_CHECK(block != nullptr);
991
1
        auto int_type = std::make_shared<DataTypeInt32>();
992
1
        const auto num_columns_without_result = cast_set<uint32_t>(block->columns());
993
1
        auto& target = block->get_by_position(idx);
994
1
        const bool is_nullable = target.type->is_nullable();
995
1
        ColumnPtr input_column = target.column;
996
1
        ColumnPtr null_map_column;
997
1
        if (is_nullable) {
998
1
            const auto* nullable_column = assert_cast<const ColumnNullable*>(target.column.get());
999
1
            input_column = nullable_column->get_nested_column_ptr();
1000
1
            null_map_column = nullable_column->get_null_map_column_ptr();
1001
1
        }
1002
1
        block->replace_by_position(idx, std::move(input_column));
1003
1
        block->insert({int_type->create_column_const(block->rows(), to_field<TYPE_INT>(1)),
1004
1
                       int_type, "const 1"});
1005
1
        block->insert({int_type->create_column_const(block->rows(), to_field<TYPE_INT>(len)),
1006
1
                       int_type, "const len"});
1007
1
        block->insert({nullptr, std::make_shared<DataTypeString>(), "result"});
1008
1009
1
        ColumnNumbers temp_arguments(3);
1010
1
        temp_arguments[0] = cast_set<uint32_t>(idx);
1011
1
        temp_arguments[1] = num_columns_without_result;
1012
1
        temp_arguments[2] = num_columns_without_result + 1;
1013
1
        const uint32_t result_column_id = num_columns_without_result + 2;
1014
1
        SubstringUtil::substring_execute(*block, temp_arguments, result_column_id, block->rows());
1015
1016
1
        ColumnPtr result_column = block->get_by_position(result_column_id).column;
1017
1
        if (is_nullable) {
1018
1
            result_column = ColumnNullable::create(std::move(result_column), null_map_column);
1019
1
        }
1020
1
        block->replace_by_position(idx, std::move(result_column));
1021
1
        block->erase_tail(num_columns_without_result);
1022
1
    }
1023
1024
127
    Status _try_materialize_aggregate_pushdown_rows(Block* block, bool* pushed_down) {
1025
127
        DORIS_CHECK(block != nullptr);
1026
127
        DORIS_CHECK(pushed_down != nullptr);
1027
127
        *pushed_down = false;
1028
127
        block->clear_column_data(_projected_columns.size());
1029
127
        _aggregate_pushdown_tried = true;
1030
127
        if (!_supports_aggregate_pushdown(_push_down_agg_type)) {
1031
114
            return Status::OK();
1032
114
        }
1033
1034
13
        FileAggregateRequest file_request;
1035
13
        RETURN_IF_ERROR(_build_file_aggregate_request(_push_down_agg_type, &file_request));
1036
13
        FileAggregateResult file_result;
1037
13
        Status status;
1038
13
        {
1039
13
            SCOPED_TIMER(_profile.file_reader_total_timer);
1040
13
            SCOPED_TIMER(_profile.file_reader_aggregate_timer);
1041
13
            status = _data_reader.reader->get_aggregate_result(file_request, &file_result);
1042
13
        }
1043
13
        if (status.is<ErrorCode::NOT_IMPLEMENTED_ERROR>()) {
1044
1
            return Status::OK();
1045
1
        }
1046
12
        RETURN_IF_ERROR(status);
1047
11
        if (_push_down_agg_type == TPushAggOp::type::COUNT) {
1048
8
            DORIS_CHECK(file_result.count >= 0);
1049
            // The upper aggregate consumes synthetic input rows, but emitting the whole metadata
1050
            // count in one block bypasses the runtime batch contract and can allocate by file size.
1051
            // Keep the remaining cardinality as split state and expose at most one batch per call.
1052
8
            _remaining_file_level_count = file_result.count;
1053
8
            _current_split_uses_metadata_count = true;
1054
8
            if (_remaining_file_level_count > 0) {
1055
8
                RETURN_IF_ERROR(_materialize_next_count_batch(&_remaining_file_level_count, block));
1056
8
            }
1057
8
        } else {
1058
3
            RETURN_IF_ERROR(
1059
3
                    _materialize_aggregate_pushdown_rows(_push_down_agg_type, file_result, block));
1060
3
        }
1061
11
        *pushed_down = true;
1062
11
        RETURN_IF_ERROR(close_current_reader());
1063
11
        return Status::OK();
1064
11
    }
1065
1066
140
    virtual bool _supports_aggregate_pushdown(TPushAggOp::type agg_type) const {
1067
        // Only COUNT and MIN/MAX can be push down.
1068
140
        if (agg_type != TPushAggOp::type::COUNT && agg_type != TPushAggOp::type::MINMAX) {
1069
95
            return false;
1070
95
        }
1071
        // Aggregate pushdown returns reduced synthetic rows and may close the physical reader
1072
        // before the next scheduler turn. If a runtime filter is still pending, those rows could
1073
        // escape before the filter arrives and cannot later be reconstructed from real file rows.
1074
        // This is the same irreversibility constraint as table-level metadata COUNT, and applies
1075
        // to COUNT and MIN/MAX for Parquet/ORC as well as COUNT for text readers.
1076
45
        if (!_all_runtime_filters_applied_for_split) {
1077
2
            return false;
1078
2
        }
1079
        // Scanner owns the original conjunct list and evaluates it after TableReader finalizes
1080
        // rows. Even a slotless conjunct that cannot become a TableFilter must see every source
1081
        // row before an aggregate reduces the stream to synthetic COUNT/MINMAX rows.
1082
43
        if (!_conjuncts.empty()) {
1083
5
            return false;
1084
5
        }
1085
        // Only support aggregate pushdown when there is no delete or filter, so
1086
        // the reduced rows consumed by the upper aggregate remain semantically equivalent to a
1087
        // normal scan.
1088
38
        if ((_delete_rows != nullptr && !_delete_rows->empty()) ||
1089
38
            (_deletion_vector != nullptr && !_deletion_vector->isEmpty())) {
1090
3
            return false;
1091
3
        }
1092
35
        if (!_table_filters.empty()) {
1093
0
            return false;
1094
0
        }
1095
35
        if (agg_type == TPushAggOp::type::COUNT) {
1096
            // Old FEs do not serialize push_down_count_slot_ids. During the supported BE-first
1097
            // rolling upgrade, nullopt therefore means "COUNT semantics are unknown", not
1098
            // COUNT(*). Fall back to reading rows until the FE explicitly sends either an empty
1099
            // list for COUNT(*) or one slot for COUNT(col).
1100
24
            if (!_push_down_count_columns.has_value()) {
1101
3
                return false;
1102
3
            }
1103
            // COUNT(*) needs no column metadata. COUNT(col) currently supports one direct file
1104
            // column; multiple COUNT arguments fall back to the normal scan so every upper
1105
            // aggregate receives the original rows.
1106
21
            if (_push_down_count_columns->empty()) {
1107
10
                return true;
1108
10
            }
1109
11
            if (_push_down_count_columns->size() != 1) {
1110
1
                return false;
1111
1
            }
1112
10
            const auto& mapping = _push_down_count_mapping();
1113
            // Metadata COUNT skips TableReader's normal materialization path. Only a trivial
1114
            // mapping is safe: for example, a nullable Parquet INT mapped to a NOT NULL table
1115
            // BIGINT normally needs both an INT->BIGINT cast and nullability validation. Counting
1116
            // footer values directly would bypass both operations and could hide invalid data.
1117
10
            return mapping.file_local_id.has_value() && mapping.file_type != nullptr &&
1118
10
                   mapping.table_type != nullptr && mapping.is_trivial &&
1119
10
                   mapping.virtual_column_type == TableVirtualColumnType::INVALID &&
1120
10
                   mapping.default_expr == nullptr;
1121
11
        }
1122
        // For MIN/MAX, only support direct file-to-table column mappings. The two emitted rows
1123
        // must be enough for the upper MIN/MAX aggregate without evaluating default expressions or
1124
        // virtual columns.
1125
13
        for (const auto& mapping : _data_reader.column_mapper->mappings()) {
1126
13
            if (!mapping.file_local_id.has_value() ||
1127
13
                mapping.virtual_column_type != TableVirtualColumnType::INVALID ||
1128
13
                mapping.default_expr != nullptr || mapping.file_type == nullptr ||
1129
13
                mapping.table_type == nullptr) {
1130
1
                return false;
1131
1
            }
1132
12
            if (!_can_push_down_minmax_for_mapping(mapping)) {
1133
2
                return false;
1134
2
            }
1135
12
        }
1136
8
        return true;
1137
11
    }
1138
1139
167
    static ColumnPtr _detach_column(ColumnPtr column) {
1140
167
        DORIS_CHECK(column.get() != nullptr);
1141
167
        return IColumn::mutate(std::move(column));
1142
167
    }
1143
1144
97
    static ColumnPtr _take_and_detach_block_column(Block* block, int position) {
1145
97
        DORIS_CHECK(block != nullptr);
1146
97
        DORIS_CHECK(position >= 0 && position < static_cast<int>(block->columns()));
1147
97
        auto& source = block->get_by_position(position);
1148
97
        ColumnPtr column = source.column;
1149
        // The final mapping no longer needs the file block. Release its COW owner before mutate(),
1150
        // otherwise nested MAP/STRING columns are deep-copied and a multi-GB payload can OOM.
1151
97
        block->replace_by_position(position, source.type->create_column());
1152
97
        return _detach_column(std::move(column));
1153
97
    }
1154
1155
111
    static Status _align_column_nullability(ColumnPtr* column, const DataTypePtr& table_type) {
1156
111
        DORIS_CHECK(column != nullptr);
1157
111
        DORIS_CHECK(column->get() != nullptr);
1158
111
        DORIS_CHECK(table_type != nullptr);
1159
        // Must return non-const column
1160
111
        *column = (*column)->convert_to_full_column_if_const();
1161
111
        if (table_type->is_nullable()) {
1162
46
            const auto& nested_type =
1163
46
                    assert_cast<const DataTypeNullable&>(*table_type).get_nested_type();
1164
46
            if (!(*column)->is_nullable()) {
1165
2
                RETURN_IF_ERROR(_align_column_nullability(column, nested_type));
1166
2
                *column = make_nullable(*column);
1167
2
                return Status::OK();
1168
2
            }
1169
44
            const auto& nullable_column = assert_cast<const ColumnNullable&>(**column);
1170
44
            ColumnPtr nested_column = nullable_column.get_nested_column_ptr();
1171
44
            RETURN_IF_ERROR(_align_column_nullability(&nested_column, nested_type));
1172
44
            *column = ColumnNullable::create(nested_column,
1173
44
                                             nullable_column.get_null_map_column_ptr());
1174
44
            return Status::OK();
1175
44
        }
1176
65
        if ((*column)->is_nullable()) {
1177
4
            const auto& nullable_column = assert_cast<const ColumnNullable&>(**column);
1178
4
            if (nullable_column.has_null()) {
1179
1
                return Status::InternalError(
1180
1
                        "Default expression produced NULL for non-nullable table column");
1181
1
            }
1182
3
            ColumnPtr nested_column = nullable_column.get_nested_column_ptr();
1183
3
            RETURN_IF_ERROR(_align_column_nullability(&nested_column, table_type));
1184
3
            *column = nested_column;
1185
3
            return Status::OK();
1186
3
        }
1187
61
        if (const auto* array_type = typeid_cast<const DataTypeArray*>(table_type.get())) {
1188
1
            const auto& array_column = assert_cast<const ColumnArray&>(**column);
1189
1
            ColumnPtr nested_column = array_column.get_data_ptr();
1190
1
            RETURN_IF_ERROR(
1191
1
                    _align_column_nullability(&nested_column, array_type->get_nested_type()));
1192
1
            *column = ColumnArray::create(nested_column, array_column.get_offsets_ptr());
1193
1
            return Status::OK();
1194
1
        }
1195
60
        if (const auto* map_type = typeid_cast<const DataTypeMap*>(table_type.get())) {
1196
0
            const auto& map_column = assert_cast<const ColumnMap&>(**column);
1197
0
            ColumnPtr key_column = map_column.get_keys_ptr();
1198
0
            ColumnPtr value_column = map_column.get_values_ptr();
1199
0
            RETURN_IF_ERROR(_align_column_nullability(&key_column, map_type->get_key_type()));
1200
0
            RETURN_IF_ERROR(_align_column_nullability(&value_column, map_type->get_value_type()));
1201
0
            *column = ColumnMap::create(key_column, value_column, map_column.get_offsets_ptr());
1202
0
            return Status::OK();
1203
0
        }
1204
60
        if (const auto* struct_type = typeid_cast<const DataTypeStruct*>(table_type.get())) {
1205
7
            const auto& struct_column = assert_cast<const ColumnStruct&>(**column);
1206
7
            Columns columns = struct_column.get_columns_copy();
1207
7
            DORIS_CHECK(columns.size() == struct_type->get_elements().size());
1208
22
            for (size_t i = 0; i < columns.size(); ++i) {
1209
15
                RETURN_IF_ERROR(
1210
15
                        _align_column_nullability(&columns[i], struct_type->get_element(i)));
1211
15
            }
1212
7
            *column = ColumnStruct::create(columns);
1213
7
            return Status::OK();
1214
7
        }
1215
53
        return Status::OK();
1216
60
    }
1217
1218
    static Status _execute_default_expr_without_root_type_check(
1219
            const VExprContextSPtr& default_expr, const Block* block,
1220
16
            ColumnWithTypeAndName* result_data) {
1221
16
        DORIS_CHECK(default_expr != nullptr);
1222
16
        DORIS_CHECK(block != nullptr);
1223
16
        DORIS_CHECK(result_data != nullptr);
1224
16
        ColumnPtr result_column;
1225
16
        Status st;
1226
16
        RETURN_IF_CATCH_EXCEPTION({
1227
16
            st = default_expr->root()->execute_column_impl(default_expr.get(), block, nullptr,
1228
16
                                                           block->rows(), result_column);
1229
16
        });
1230
16
        RETURN_IF_ERROR(st);
1231
16
        DORIS_CHECK(result_column.get() != nullptr);
1232
16
        if (result_column->size() != block->rows()) {
1233
0
            return Status::InternalError(
1234
0
                    "Default expr {} return column size {} not equal to expected size {}",
1235
0
                    default_expr->expr_name(), result_column->size(), block->rows());
1236
0
        }
1237
16
        result_data->column = result_column;
1238
16
        result_data->type = default_expr->execute_type(block);
1239
16
        result_data->name = default_expr->expr_name();
1240
16
        return Status::OK();
1241
16
    }
1242
1243
    Status _cast_column_to_type(ColumnPtr* column, const DataTypePtr& file_type,
1244
                                const DataTypePtr& table_type,
1245
7
                                const std::string& column_name) const {
1246
7
        DORIS_CHECK(column != nullptr);
1247
7
        DORIS_CHECK(column->get() != nullptr);
1248
7
        DORIS_CHECK(file_type != nullptr);
1249
7
        DORIS_CHECK(table_type != nullptr);
1250
7
        if (file_type->equals(*table_type) ||
1251
7
            remove_nullable(file_type)->equals(*remove_nullable(table_type))) {
1252
5
            return Status::OK();
1253
5
        }
1254
1255
2
        DataTypePtr input_type = file_type;
1256
        // Cast wrappers unwrap nullable inputs according to the declared input type, so keep the
1257
        // root nullability of the declared input aligned with the actual column shape. When the
1258
        // runtime column is nullable, also keep the cast target nullable; the caller applies the
1259
        // table's final nullability after value conversion. Casting a nullable runtime column
1260
        // directly to a non-nullable target would pass ColumnNullable to CastToImpl.
1261
2
        if ((*column)->is_nullable() && !input_type->is_nullable()) {
1262
0
            input_type = make_nullable(input_type);
1263
2
        } else if (!(*column)->is_nullable() && input_type->is_nullable()) {
1264
1
            input_type = remove_nullable(input_type);
1265
1
        }
1266
2
        DataTypePtr cast_type = table_type;
1267
2
        if ((*column)->is_nullable() && !cast_type->is_nullable()) {
1268
1
            cast_type = make_nullable(cast_type);
1269
1
        }
1270
2
        Block cast_block;
1271
2
        cast_block.insert({*column, input_type, column_name});
1272
2
        auto slot_ref = VSlotRef::create_shared(0, 0, -1, input_type, column_name);
1273
2
        auto cast_expr = Cast::create_shared(cast_type);
1274
2
        cast_expr->add_child(std::move(slot_ref));
1275
2
        auto cast_ctx = VExprContext::create_shared(std::move(cast_expr));
1276
2
        RowDescriptor row_desc;
1277
2
        RETURN_IF_ERROR(cast_ctx->prepare(_runtime_state, row_desc));
1278
2
        RETURN_IF_ERROR(cast_ctx->open(_runtime_state));
1279
2
        ColumnPtr cast_column;
1280
2
        RETURN_IF_ERROR(cast_ctx->execute(&cast_block, cast_column));
1281
2
        *column = std::move(cast_column);
1282
2
        return Status::OK();
1283
2
    }
1284
1285
    Status _try_materialize_scalar_cast_with_runtime_nullability(const ColumnMapping& mapping,
1286
                                                                 const Block* current_block,
1287
                                                                 ColumnPtr* column,
1288
146
                                                                 bool* handled) const {
1289
146
        DORIS_CHECK(column != nullptr);
1290
146
        DORIS_CHECK(handled != nullptr);
1291
146
        *handled = false;
1292
146
        if (mapping.projection == nullptr || !mapping.file_local_id.has_value() ||
1293
146
            !mapping.child_mappings.empty()) {
1294
32
            return Status::OK();
1295
32
        }
1296
1297
114
        const auto& root = mapping.projection->root();
1298
114
        if (root == nullptr || root->node_type() != TExprNodeType::CAST_EXPR) {
1299
105
            return Status::OK();
1300
105
        }
1301
9
        DORIS_CHECK(root->get_num_children() == 1);
1302
9
        const auto* slot = dynamic_cast<const VSlotRef*>(root->get_child(0).get());
1303
9
        DORIS_CHECK(slot != nullptr);
1304
9
        DORIS_CHECK(current_block != nullptr);
1305
9
        DORIS_CHECK(slot->column_id() >= 0);
1306
9
        DORIS_CHECK(cast_set<size_t>(slot->column_id()) < current_block->columns());
1307
9
        const auto& source = current_block->get_by_position(slot->column_id());
1308
9
        DORIS_CHECK(source.column.get() != nullptr);
1309
9
        DORIS_CHECK(slot->data_type() != nullptr);
1310
9
        DORIS_CHECK(mapping.table_type != nullptr);
1311
9
        const bool runtime_input_mismatch =
1312
9
                source.column->is_nullable() != slot->data_type()->is_nullable();
1313
9
        const bool nullable_input_to_required_table =
1314
9
                source.column->is_nullable() && !mapping.table_type->is_nullable();
1315
9
        if (!runtime_input_mismatch && !nullable_input_to_required_table) {
1316
4
            return Status::OK();
1317
4
        }
1318
1319
        // File readers can return a nullable runtime column even when the physical schema marks the
1320
        // leaf required. A pre-built Cast binds to the declared file type and can therefore pass a
1321
        // ColumnNullable to a non-nullable CastToImpl. Rebuild only when that runtime shape differs
1322
        // from the declared input, or when a declared nullable file field maps to a required table
1323
        // field. Keep the cast target nullable while converting values, then let
1324
        // _align_column_nullability() reject an actual NULL before removing the wrapper.
1325
5
        ColumnPtr result_column = source.column;
1326
5
        RETURN_IF_ERROR(_cast_column_to_type(&result_column, slot->data_type(), mapping.table_type,
1327
5
                                             mapping.file_column_name));
1328
5
        RETURN_IF_ERROR(_align_column_nullability(&result_column, mapping.table_type));
1329
4
        *column = _detach_column(std::move(result_column));
1330
4
        *handled = true;
1331
4
        return Status::OK();
1332
5
    }
1333
1334
    Status _materialize_present_child_mapping_column(const ColumnMapping& mapping,
1335
                                                     const ColumnPtr& file_column,
1336
25
                                                     const size_t rows, ColumnPtr* column) {
1337
25
        DORIS_CHECK(column != nullptr);
1338
25
        DORIS_CHECK(mapping.file_type != nullptr);
1339
25
        DORIS_CHECK(mapping.table_type != nullptr);
1340
25
        *column = file_column;
1341
25
        if (!mapping.is_trivial) {
1342
7
            if (!mapping.child_mappings.empty()) {
1343
7
                RETURN_IF_ERROR(
1344
7
                        _materialize_complex_mapping_column(mapping, *column, rows, column));
1345
7
            } else {
1346
0
                RETURN_IF_ERROR(_cast_column_to_type(column, mapping.file_type, mapping.table_type,
1347
0
                                                     mapping.file_column_name));
1348
0
            }
1349
7
        }
1350
25
        RETURN_IF_ERROR(_align_column_nullability(column, mapping.table_type));
1351
25
        return Status::OK();
1352
25
    }
1353
1354
    Status _materialize_default_or_missing_column(const ColumnMapping& mapping,
1355
                                                  const Block* current_block, const size_t rows,
1356
35
                                                  ColumnPtr* column) {
1357
35
        DORIS_CHECK(mapping.table_type != nullptr);
1358
35
        DORIS_CHECK(column != nullptr);
1359
35
        if (mapping.default_expr != nullptr) {
1360
16
            Block synthetic_block;
1361
16
            const Block* eval_block = current_block;
1362
16
            if (eval_block == nullptr || eval_block->rows() != rows) {
1363
                // Nested ARRAY/MAP children use element/entry cardinality rather than the root
1364
                // block's row count. Iceberg initial defaults are typed literals, so a synthetic
1365
                // block with the desired row count is sufficient and avoids a top-level
1366
                // ConstantMap dependency for nested mappings.
1367
14
                synthetic_block.insert(
1368
14
                        {mapping.table_type->create_column_const_with_default_value(rows),
1369
14
                         mapping.table_type, "__table_reader_nested_default_rows"});
1370
14
                eval_block = &synthetic_block;
1371
14
            }
1372
16
            ColumnWithTypeAndName result;
1373
16
            RETURN_IF_ERROR(_execute_default_expr_without_root_type_check(mapping.default_expr,
1374
16
                                                                          eval_block, &result));
1375
16
            ColumnPtr result_column = result.column;
1376
16
            RETURN_IF_ERROR(_align_column_nullability(&result_column, mapping.table_type));
1377
16
            *column = _detach_column(std::move(result_column));
1378
16
            return Status::OK();
1379
16
        }
1380
19
        ColumnPtr result_column = mapping.table_type->create_column_const_with_default_value(rows);
1381
19
        *column = _detach_column(std::move(result_column));
1382
19
        return Status::OK();
1383
35
    }
1384
1385
    Status _materialize_mapping_column(const ColumnMapping& mapping, Block* current_block,
1386
                                       const size_t rows, ColumnPtr* column,
1387
158
                                       bool take_projection_result = false) {
1388
158
        if (!mapping.is_trivial && mapping.file_local_id.has_value() &&
1389
158
            !mapping.child_mappings.empty()) {
1390
12
            DCHECK(mapping.projection != nullptr);
1391
12
            int res_id;
1392
12
            auto st = mapping.projection->execute(current_block, &res_id);
1393
12
            if (!st.ok()) {
1394
0
                return Status::InternalError(
1395
0
                        "Failed to execute complex mapping projection for table column '{}' "
1396
0
                        "(global_index={}, file_local_id={}, rows={}): {}, mapping={}",
1397
0
                        mapping.table_column_name, mapping.global_index.value(),
1398
0
                        *mapping.file_local_id, rows, st.to_string(), mapping.debug_string());
1399
0
            }
1400
12
            ColumnPtr result_column = take_projection_result
1401
12
                                              ? _take_and_detach_block_column(current_block, res_id)
1402
12
                                              : current_block->get_by_position(res_id).column;
1403
12
            RETURN_IF_ERROR(
1404
12
                    _materialize_complex_mapping_column(mapping, result_column, rows, column));
1405
12
            return Status::OK();
1406
12
        }
1407
146
        bool runtime_nullability_cast_handled = false;
1408
146
        RETURN_IF_ERROR(_try_materialize_scalar_cast_with_runtime_nullability(
1409
146
                mapping, current_block, column, &runtime_nullability_cast_handled));
1410
145
        if (runtime_nullability_cast_handled) {
1411
4
            return Status::OK();
1412
4
        }
1413
141
        if (mapping.projection != nullptr) {
1414
118
            int res_id;
1415
118
            auto st = mapping.projection->execute(current_block, &res_id);
1416
118
            if (!st.ok()) {
1417
0
                std::string file_local_id = "null";
1418
0
                if (mapping.file_local_id.has_value()) {
1419
0
                    file_local_id = std::to_string(*mapping.file_local_id);
1420
0
                }
1421
0
                return Status::InternalError(
1422
0
                        "Failed to execute mapping projection for table column '{}' "
1423
0
                        "(global_index={}, file_local_id={}, rows={}): {}, mapping={}",
1424
0
                        mapping.table_column_name, mapping.global_index.value(), file_local_id,
1425
0
                        rows, st.to_string(), mapping.debug_string());
1426
0
            }
1427
118
            if (take_projection_result) {
1428
87
                *column = _take_and_detach_block_column(current_block, res_id);
1429
87
            } else {
1430
31
                ColumnPtr result_column = current_block->get_by_position(res_id).column;
1431
31
                *column = _detach_column(std::move(result_column));
1432
31
            }
1433
118
            return Status::OK();
1434
118
        }
1435
23
        return _materialize_default_or_missing_column(mapping, current_block, rows, column);
1436
141
    }
1437
1438
    Status _materialize_complex_mapping_column(const ColumnMapping& mapping,
1439
                                               const ColumnPtr& file_column, const size_t rows,
1440
19
                                               ColumnPtr* column) {
1441
19
        DORIS_CHECK(mapping.table_type != nullptr);
1442
19
        DORIS_CHECK(file_column.get() != nullptr);
1443
19
        const auto table_type = remove_nullable(mapping.table_type);
1444
19
        switch (table_type->get_primitive_type()) {
1445
14
        case TYPE_STRUCT:
1446
14
            RETURN_IF_ERROR(_materialize_struct_mapping_column(mapping, file_column, rows, column));
1447
14
            break;
1448
14
        case TYPE_ARRAY:
1449
3
            RETURN_IF_ERROR(_materialize_array_mapping_column(mapping, file_column, rows, column));
1450
3
            break;
1451
3
        case TYPE_MAP:
1452
2
            RETURN_IF_ERROR(_materialize_map_mapping_column(mapping, file_column, rows, column));
1453
2
            break;
1454
2
        default:
1455
0
            *column = _detach_column(file_column);
1456
0
            break;
1457
19
        }
1458
19
        return Status::OK();
1459
19
    }
1460
1461
    static std::vector<const ColumnMapping*> _present_child_mappings_in_file_order(
1462
14
            const std::vector<ColumnMapping>& child_mappings) {
1463
14
        std::vector<const ColumnMapping*> result;
1464
14
        result.reserve(child_mappings.size());
1465
28
        for (const auto& child_mapping : child_mappings) {
1466
28
            if (child_mapping.file_local_id.has_value()) {
1467
16
                result.push_back(&child_mapping);
1468
16
            }
1469
28
        }
1470
14
        std::ranges::sort(result, [](const ColumnMapping* lhs, const ColumnMapping* rhs) {
1471
6
            DORIS_CHECK(lhs->file_local_id.has_value());
1472
6
            DORIS_CHECK(rhs->file_local_id.has_value());
1473
6
            return *lhs->file_local_id < *rhs->file_local_id;
1474
6
        });
1475
14
        return result;
1476
14
    }
1477
1478
    static size_t _file_child_ordinal_for_mapping(
1479
            const ColumnMapping& mapping, const ColumnMapping& child_mapping,
1480
16
            const std::vector<const ColumnMapping*>& file_ordered_children) {
1481
16
        DORIS_CHECK(child_mapping.file_local_id.has_value());
1482
16
        if (!mapping.projected_file_children.empty()) {
1483
12
            const auto child_it = std::ranges::find_if(
1484
15
                    mapping.projected_file_children, [&](const ColumnDefinition& file_child) {
1485
15
                        return file_child.file_local_id() == *child_mapping.file_local_id;
1486
15
                    });
1487
12
            DORIS_CHECK(child_it != mapping.projected_file_children.end());
1488
12
            return static_cast<size_t>(
1489
12
                    std::distance(mapping.projected_file_children.begin(), child_it));
1490
12
        }
1491
4
        const auto child_it = std::ranges::find(file_ordered_children, &child_mapping);
1492
4
        DORIS_CHECK(child_it != file_ordered_children.end());
1493
4
        return static_cast<size_t>(std::distance(file_ordered_children.begin(), child_it));
1494
16
    }
1495
1496
    static std::vector<const ColumnMapping*> _child_mappings_in_table_type_order(
1497
14
            const ColumnMapping& mapping, const DataTypeStruct& table_type) {
1498
14
        std::vector<const ColumnMapping*> result;
1499
14
        result.reserve(mapping.child_mappings.size());
1500
42
        for (size_t child_idx = 0; child_idx < table_type.get_elements().size(); ++child_idx) {
1501
28
            const auto& child_name = table_type.get_element_name(child_idx);
1502
28
            const auto child_it = std::ranges::find_if(
1503
45
                    mapping.child_mappings, [&](const ColumnMapping& child_mapping) {
1504
45
                        return child_mapping.table_column_name == child_name;
1505
45
                    });
1506
28
            DORIS_CHECK(child_it != mapping.child_mappings.end())
1507
0
                    << mapping.debug_string() << ", table_child_name=" << child_name;
1508
28
            result.push_back(&*child_it);
1509
28
        }
1510
14
        return result;
1511
14
    }
1512
1513
    static const IColumn* _nested_column_if_nullable(const ColumnPtr& column,
1514
21
                                                     const NullMap** null_map) {
1515
21
        DORIS_CHECK(column.get() != nullptr);
1516
21
        if (const auto* nullable_column = check_and_get_column<ColumnNullable>(*column)) {
1517
17
            if (null_map != nullptr) {
1518
17
                *null_map = &nullable_column->get_null_map_data();
1519
17
            }
1520
17
            return &nullable_column->get_nested_column();
1521
17
        }
1522
4
        return column.get();
1523
21
    }
1524
1525
    Status _materialize_struct_mapping_column(const ColumnMapping& mapping,
1526
                                              const ColumnPtr& file_column, const size_t rows,
1527
14
                                              ColumnPtr* column) {
1528
14
        DORIS_CHECK(mapping.table_type != nullptr);
1529
14
        const auto* table_type =
1530
14
                assert_cast<const DataTypeStruct*>(remove_nullable(mapping.table_type).get());
1531
14
        const auto full_file_column = file_column->convert_to_full_column_if_const();
1532
14
        const NullMap* parent_null_map = nullptr;
1533
14
        const auto* nested_file_column =
1534
14
                _nested_column_if_nullable(full_file_column, &parent_null_map);
1535
14
        const auto* file_struct = assert_cast<const ColumnStruct*>(nested_file_column);
1536
14
        DORIS_CHECK(table_type->get_elements().size() == mapping.child_mappings.size());
1537
1538
14
        Columns child_columns;
1539
14
        child_columns.reserve(mapping.child_mappings.size());
1540
14
        const auto file_ordered_children =
1541
14
                _present_child_mappings_in_file_order(mapping.child_mappings);
1542
14
        const auto table_ordered_children =
1543
14
                _child_mappings_in_table_type_order(mapping, *table_type);
1544
28
        for (const auto* child_mapping : table_ordered_children) {
1545
28
            DORIS_CHECK(child_mapping != nullptr);
1546
28
            if (!child_mapping->file_local_id.has_value()) {
1547
12
                ColumnPtr child_column;
1548
12
                RETURN_IF_ERROR(_materialize_default_or_missing_column(*child_mapping, nullptr,
1549
12
                                                                       rows, &child_column));
1550
12
                child_columns.push_back(child_column->convert_to_full_column_if_const());
1551
12
                continue;
1552
12
            }
1553
16
            const auto file_child_idx =
1554
16
                    _file_child_ordinal_for_mapping(mapping, *child_mapping, file_ordered_children);
1555
16
            DORIS_CHECK(file_child_idx < file_struct->get_columns().size());
1556
16
            ColumnPtr child_column = file_struct->get_column_ptr(file_child_idx);
1557
16
            RETURN_IF_ERROR(_materialize_present_child_mapping_column(*child_mapping, child_column,
1558
16
                                                                      rows, &child_column));
1559
16
            child_columns.push_back(std::move(child_column));
1560
16
        }
1561
14
        MutableColumns mutable_child_columns;
1562
14
        mutable_child_columns.reserve(child_columns.size());
1563
28
        for (auto& child_column : child_columns) {
1564
28
            mutable_child_columns.push_back(IColumn::mutate(std::move(child_column)));
1565
28
        }
1566
14
        auto result = ColumnStruct::create(std::move(mutable_child_columns));
1567
14
        if (mapping.table_type->is_nullable()) {
1568
12
            auto null_map = ColumnUInt8::create();
1569
12
            auto& null_map_data = null_map->get_data();
1570
12
            null_map_data.resize(rows);
1571
12
            if (parent_null_map != nullptr) {
1572
12
                DORIS_CHECK(parent_null_map->size() == rows);
1573
12
                null_map_data.assign(parent_null_map->begin(), parent_null_map->end());
1574
12
            } else {
1575
0
                std::fill(null_map_data.begin(), null_map_data.end(), 0);
1576
0
            }
1577
12
            *column = ColumnNullable::create(std::move(result), std::move(null_map));
1578
12
        } else {
1579
2
            *column = std::move(result);
1580
2
        }
1581
14
        return Status::OK();
1582
14
    }
1583
1584
    Status _materialize_array_mapping_column(const ColumnMapping& mapping,
1585
                                             const ColumnPtr& file_column, const size_t rows,
1586
3
                                             ColumnPtr* column) {
1587
3
        DORIS_CHECK(mapping.child_mappings.size() == 1);
1588
3
        const auto full_file_column = file_column->convert_to_full_column_if_const();
1589
3
        const NullMap* parent_null_map = nullptr;
1590
3
        const auto* nested_file_column =
1591
3
                _nested_column_if_nullable(full_file_column, &parent_null_map);
1592
3
        const auto* file_array = assert_cast<const ColumnArray*>(nested_file_column);
1593
3
        ColumnPtr nested_column = file_array->get_data_ptr();
1594
3
        const auto& element_mapping = mapping.child_mappings[0];
1595
3
        RETURN_IF_ERROR(_materialize_present_child_mapping_column(
1596
3
                element_mapping, nested_column, nested_column->size(), &nested_column));
1597
3
        auto offsets_column = file_array->get_offsets_ptr()->convert_to_full_column_if_const();
1598
3
        auto result = ColumnArray::create(IColumn::mutate(std::move(nested_column)),
1599
3
                                          IColumn::mutate(std::move(offsets_column)));
1600
3
        if (mapping.table_type->is_nullable()) {
1601
3
            auto null_map = ColumnUInt8::create();
1602
3
            auto& null_map_data = null_map->get_data();
1603
3
            null_map_data.resize(rows);
1604
3
            if (parent_null_map != nullptr) {
1605
3
                DORIS_CHECK(parent_null_map->size() == rows);
1606
3
                null_map_data.assign(parent_null_map->begin(), parent_null_map->end());
1607
3
            } else {
1608
0
                std::fill(null_map_data.begin(), null_map_data.end(), 0);
1609
0
            }
1610
3
            *column = ColumnNullable::create(std::move(result), std::move(null_map));
1611
3
        } else {
1612
0
            *column = std::move(result);
1613
0
        }
1614
3
        return Status::OK();
1615
3
    }
1616
1617
    Status _materialize_map_mapping_column(const ColumnMapping& mapping,
1618
                                           const ColumnPtr& file_column, const size_t rows,
1619
4
                                           ColumnPtr* column) {
1620
4
        const auto full_file_column = file_column->convert_to_full_column_if_const();
1621
4
        const NullMap* parent_null_map = nullptr;
1622
4
        const auto* nested_file_column =
1623
4
                _nested_column_if_nullable(full_file_column, &parent_null_map);
1624
4
        const auto* file_map = assert_cast<const ColumnMap*>(nested_file_column);
1625
4
        ColumnPtr key_column = file_map->get_keys_ptr();
1626
4
        ColumnPtr value_column = file_map->get_values_ptr();
1627
1628
4
        const ColumnMapping* key_mapping = nullptr;
1629
4
        const ColumnMapping* value_mapping = nullptr;
1630
6
        for (const auto& child_mapping : mapping.child_mappings) {
1631
6
            if (!child_mapping.file_local_id.has_value()) {
1632
0
                continue;
1633
0
            }
1634
6
            if (*child_mapping.file_local_id == 0) {
1635
2
                key_mapping = &child_mapping;
1636
4
            } else if (*child_mapping.file_local_id == 1) {
1637
4
                value_mapping = &child_mapping;
1638
4
            }
1639
6
        }
1640
1641
4
        if (key_mapping != nullptr) {
1642
2
            RETURN_IF_ERROR(_materialize_present_child_mapping_column(
1643
2
                    *key_mapping, key_column, key_column->size(), &key_column));
1644
2
        }
1645
4
        if (value_mapping != nullptr) {
1646
4
            RETURN_IF_ERROR(_materialize_present_child_mapping_column(
1647
4
                    *value_mapping, value_column, value_column->size(), &value_column));
1648
4
        }
1649
4
        auto offsets_column = file_map->get_offsets_ptr()->convert_to_full_column_if_const();
1650
4
        auto result = ColumnMap::create(IColumn::mutate(std::move(key_column)),
1651
4
                                        IColumn::mutate(std::move(value_column)),
1652
4
                                        IColumn::mutate(std::move(offsets_column)));
1653
4
        if (mapping.table_type->is_nullable()) {
1654
2
            auto null_map = ColumnUInt8::create();
1655
2
            auto& null_map_data = null_map->get_data();
1656
2
            null_map_data.resize(rows);
1657
2
            if (parent_null_map != nullptr) {
1658
2
                DORIS_CHECK(parent_null_map->size() == rows);
1659
2
                null_map_data.assign(parent_null_map->begin(), parent_null_map->end());
1660
2
            } else {
1661
0
                std::fill(null_map_data.begin(), null_map_data.end(), 0);
1662
0
            }
1663
2
            *column = ColumnNullable::create(std::move(result), std::move(null_map));
1664
2
        } else {
1665
2
            *column = std::move(result);
1666
2
        }
1667
4
        return Status::OK();
1668
4
    }
1669
1670
214
    Status _open_mapping_expr_tree(const ColumnMapping& mapping, const RowDescriptor& row_desc) {
1671
214
        if (mapping.projection != nullptr) {
1672
147
            RETURN_IF_ERROR(mapping.projection->prepare(_runtime_state, row_desc));
1673
147
            RETURN_IF_ERROR(mapping.projection->open(_runtime_state));
1674
147
        }
1675
214
        if (mapping.default_expr != nullptr) {
1676
16
            RETURN_IF_ERROR(mapping.default_expr->prepare(_runtime_state, row_desc));
1677
16
            RETURN_IF_ERROR(mapping.default_expr->open(_runtime_state));
1678
16
        }
1679
214
        for (const auto& child_mapping : mapping.child_mappings) {
1680
44
            RETURN_IF_ERROR(_open_mapping_expr_tree(child_mapping, row_desc));
1681
44
        }
1682
214
        return Status::OK();
1683
214
    }
1684
1685
127
    Status _open_mapping_exprs() {
1686
127
        RowDescriptor row_desc;
1687
170
        for (const auto& mapping : _data_reader.column_mapper->mappings()) {
1688
170
            RETURN_IF_ERROR(_open_mapping_expr_tree(mapping, row_desc));
1689
170
        }
1690
127
        return Status::OK();
1691
127
    }
1692
1693
    Status _build_file_aggregate_request(TPushAggOp::type agg_type,
1694
13
                                         FileAggregateRequest* request) const {
1695
13
        DORIS_CHECK(request != nullptr);
1696
13
        DORIS_CHECK(_supports_aggregate_pushdown(agg_type));
1697
13
        request->agg_type = agg_type;
1698
13
        request->columns.clear();
1699
13
        if (agg_type == TPushAggOp::type::COUNT) {
1700
9
            DORIS_CHECK(_push_down_count_columns.has_value());
1701
            // An empty explicit list is the semantic signal for COUNT(*). Do not inspect the
1702
            // mapping count: `SELECT COUNT(*) FROM t` may still project one nullable column because
1703
            // the planner keeps a placeholder slot. In a 10,000-row file where that arbitrary slot
1704
            // has 9,015 non-null values, passing the slot would ask Parquet/ORC metadata for
1705
            // COUNT(slot)=9,015 instead of the required row count 10,000.
1706
9
            if (!_push_down_count_columns->empty()) {
1707
4
                const auto& mapping = _push_down_count_mapping();
1708
4
                DORIS_CHECK(mapping.file_local_id.has_value());
1709
4
                FileAggregateRequest::Column column;
1710
4
                column.projection =
1711
4
                        LocalColumnIndex::top_level(LocalColumnId(*mapping.file_local_id));
1712
4
                request->columns.push_back(std::move(column));
1713
4
            }
1714
9
            return Status::OK();
1715
9
        }
1716
4
        request->columns.reserve(_data_reader.column_mapper->mappings().size());
1717
5
        for (const auto& mapping : _data_reader.column_mapper->mappings()) {
1718
5
            DORIS_CHECK(mapping.file_local_id.has_value());
1719
5
            FileAggregateRequest::Column column;
1720
5
            column.projection = LocalColumnIndex::top_level(LocalColumnId(*mapping.file_local_id));
1721
5
            if (!mapping.child_mappings.empty()) {
1722
1
                RETURN_IF_ERROR(build_aggregate_projection(mapping, &column.projection));
1723
1
            }
1724
5
            request->columns.push_back(std::move(column));
1725
5
        }
1726
4
        return Status::OK();
1727
4
    }
1728
1729
14
    const ColumnMapping& _push_down_count_mapping() const {
1730
14
        DORIS_CHECK(_push_down_count_columns.has_value());
1731
14
        DORIS_CHECK(_push_down_count_columns->size() == 1);
1732
14
        const auto mapping_it =
1733
14
                std::ranges::find(_data_reader.column_mapper->mappings(),
1734
14
                                  _push_down_count_columns->front(), &ColumnMapping::global_index);
1735
        // FileScannerV2 translates FE SlotIds through the same projected-column list used to build
1736
        // the mapper, so a missing mapping is an FE/BE contract violation rather than a fallback.
1737
14
        DORIS_CHECK(mapping_it != _data_reader.column_mapper->mappings().end());
1738
14
        return *mapping_it;
1739
14
    }
1740
1741
    Status _materialize_aggregate_pushdown_rows(TPushAggOp::type agg_type,
1742
                                                const FileAggregateResult& file_result,
1743
3
                                                Block* block) {
1744
3
        DORIS_CHECK(agg_type == TPushAggOp::type::MINMAX);
1745
        // MIN/MAX pushdown emits two rows, min first and max second, for each projected column.
1746
        // The upper MIN/MAX aggregate consumes those two rows to produce the final aggregate value.
1747
3
        DORIS_CHECK(file_result.columns.size() == _data_reader.column_mapper->mappings().size());
1748
3
        DORIS_CHECK(block->columns() == _data_reader.column_mapper->mappings().size());
1749
3
        Block file_block;
1750
3
        file_block.reserve(_data_reader.file_block_layout.size());
1751
4
        for (const auto& column : _data_reader.file_block_layout) {
1752
4
            file_block.insert({column.type->create_column(), column.type, column.name});
1753
4
        }
1754
7
        for (size_t column_idx = 0; column_idx < file_result.columns.size(); ++column_idx) {
1755
4
            const auto& result_column = file_result.columns[column_idx];
1756
4
            if (!result_column.has_min || !result_column.has_max) {
1757
0
                return Status::NotSupported("Missing min/max aggregate result for column {}",
1758
0
                                            _projected_columns[column_idx].name);
1759
0
            }
1760
4
            bool found_file_column = false;
1761
5
            for (size_t block_position = 0; block_position < _data_reader.file_block_layout.size();
1762
5
                 ++block_position) {
1763
5
                if (_data_reader.file_block_layout[block_position].file_column_id ==
1764
5
                    file_result.columns[column_idx].projection.column_id()) {
1765
4
                    found_file_column = true;
1766
4
                    auto column = file_block.get_by_position(block_position)
1767
4
                                          .type->create_column()
1768
4
                                          ->assert_mutable();
1769
4
                    RETURN_IF_ERROR(_insert_aggregate_projection_value(
1770
4
                            file_result.columns[column_idx].projection, result_column.min_value,
1771
4
                            column.get()));
1772
4
                    RETURN_IF_ERROR(_insert_aggregate_projection_value(
1773
4
                            file_result.columns[column_idx].projection, result_column.max_value,
1774
4
                            column.get()));
1775
4
                    file_block.replace_by_position(block_position, std::move(column));
1776
4
                    break;
1777
4
                }
1778
5
            }
1779
4
            DORIS_CHECK(found_file_column);
1780
4
        }
1781
7
        for (size_t column_idx = 0; column_idx < _data_reader.column_mapper->mappings().size();
1782
4
             ++column_idx) {
1783
4
            ColumnPtr table_column;
1784
4
            RETURN_IF_ERROR(_materialize_mapping_column(
1785
4
                    _data_reader.column_mapper->mappings()[column_idx], &file_block, 2,
1786
4
                    &table_column,
1787
4
                    column_idx + 1 == _data_reader.column_mapper->mappings().size()));
1788
4
            block->replace_by_position(column_idx, std::move(table_column));
1789
4
        }
1790
3
        return Status::OK();
1791
3
    }
1792
1793
    struct FileBlockColumn {
1794
        LocalColumnId file_column_id = LocalColumnId::invalid();
1795
        std::string name;
1796
        DataTypePtr type;
1797
    };
1798
1799
    struct DataReader {
1800
        std::unique_ptr<FileReader> reader;
1801
        std::unique_ptr<TableColumnMapper> column_mapper;
1802
        // Schema of the data file, also including virtual column (row position).
1803
        std::vector<ColumnDefinition> file_schema;
1804
        // Layout of the block returned by file reader, determined by column mapping and file
1805
        // schema. It is used for file reader to materialize columns into correct type and position.
1806
        std::vector<FileBlockColumn> file_block_layout;
1807
        Block block_template;
1808
    };
1809
    DataReader _data_reader;
1810
    std::vector<ColumnDefinition> _projected_columns;
1811
    std::unique_ptr<ScanTask> _current_task;
1812
    std::optional<io::FileDescription> _current_file_description;
1813
    // Range-level compression has higher priority than scan-param compression. TVF/load can keep
1814
    // the logical format as CSV/TEXT while carrying the concrete compression such as GZ or LZO on
1815
    // each TFileRangeDesc, matching the old FileScanner reader contract.
1816
    TFileCompressType::type _current_range_compress_type = TFileCompressType::UNKNOWN;
1817
    std::optional<TUniqueId> _current_range_load_id;
1818
    TFileRangeDesc _current_file_range_desc;
1819
    std::shared_ptr<io::FileSystemProperties> _system_properties;
1820
    // partition key -> value
1821
    std::map<std::string, Field> _partition_values;
1822
    // Predicates built from scan conjuncts before file-level localization.
1823
    std::vector<TableFilter> _table_filters;
1824
    // Number of localized filters before the first unsafe conjunct in the original row-level
1825
    // order. This differs from scanning `_table_filters` for safety because slotless predicates are
1826
    // intentionally absent from that vector but must still act as ordering barriers.
1827
    size_t _constant_pruning_safe_filter_count = 0;
1828
    VExprContextSPtrs _conjuncts;
1829
    ReadProfile _profile;
1830
    // Parsed from row-position based delete files, including position delete and deletion vector.
1831
    DeleteRows* _delete_rows = nullptr;
1832
    DeletionVector* _deletion_vector = nullptr;
1833
    TFileScanRangeParams* _scan_params;
1834
    std::shared_ptr<io::IOContext> _io_ctx;
1835
    RuntimeState* _runtime_state;
1836
    RuntimeProfile* _scanner_profile;
1837
    const std::vector<SlotDescriptor*>* _file_slot_descs = nullptr;
1838
    FileFormat _format;
1839
    TPushAggOp::type _push_down_agg_type = TPushAggOp::type::NONE;
1840
    std::optional<std::vector<GlobalIndex>> _push_down_count_columns;
1841
    size_t _batch_size = 0;
1842
    uint64_t _initial_condition_cache_digest = 0;
1843
    uint64_t _condition_cache_digest = 0;
1844
    // True only when prepare_split() received a digest for the exact conjunct snapshot used by
1845
    // this split. Standalone callers that only supplied TableReadOptions::condition_cache_digest
1846
    // keep the conservative runtime-filter guard.
1847
    bool _condition_cache_digest_covers_current_split = false;
1848
    segment_v2::ConditionCache::ExternalCacheKey _condition_cache_key;
1849
    std::shared_ptr<std::vector<bool>> _condition_cache;
1850
    std::shared_ptr<ConditionCacheContext> _condition_cache_ctx;
1851
    int64_t _condition_cache_hit_count = 0;
1852
    bool _current_reader_reached_eof = false;
1853
    int64_t _remaining_table_level_count = -1;
1854
    int64_t _remaining_file_level_count = -1;
1855
    // True only after the active split selects a table-level row-count shortcut or successfully
1856
    // materializes COUNT rows from file metadata. FileScannerV2 uses this result, rather than the
1857
    // raw aggregate opcode, to keep adaptive batching enabled for normal row-scan fallbacks.
1858
    bool _current_split_uses_metadata_count = false;
1859
    // Snapshot supplied by FileScannerV2 for the active split. It gates every shortcut that emits
1860
    // irreversible aggregate rows, not only the table-level row-count shortcut in prepare_split().
1861
    bool _all_runtime_filters_applied_for_split = true;
1862
    std::optional<GlobalRowIdContext> _global_rowid_context;
1863
    bool _aggregate_pushdown_tried = false;
1864
    bool _current_split_pruned = false;
1865
    TableColumnMapperOptions _mapper_options;
1866
1867
private:
1868
    static const ColumnDefinition* _find_column_definition(
1869
218
            const std::vector<ColumnDefinition>& schema, LocalColumnId column_id) {
1870
378
        for (const auto& field : schema) {
1871
378
            if (field.file_local_id() == column_id.value()) {
1872
185
                return &field;
1873
185
            }
1874
378
        }
1875
33
        return nullptr;
1876
218
    }
1877
1878
14
    static bool _can_push_down_minmax_for_mapping(const ColumnMapping& mapping) {
1879
14
        if (mapping.child_mappings.empty()) {
1880
            // Direct mappings use a slot-ref projection to materialize the file column. The
1881
            // projection does not transform ordering; casts and other conversions are already
1882
            // represented by a non-trivial mapping and must fall back to row scanning.
1883
11
            return mapping.is_trivial;
1884
11
        }
1885
3
        const auto primitive_type = remove_nullable(mapping.file_type)->get_primitive_type();
1886
3
        if (primitive_type != TYPE_STRUCT) {
1887
1
            return false;
1888
1
        }
1889
2
        size_t mapped_children = 0;
1890
2
        const ColumnMapping* mapped_child = nullptr;
1891
2
        for (const auto& child_mapping : mapping.child_mappings) {
1892
2
            if (!child_mapping.file_local_id.has_value()) {
1893
0
                continue;
1894
0
            }
1895
2
            ++mapped_children;
1896
2
            mapped_child = &child_mapping;
1897
2
        }
1898
2
        return mapped_children == 1 && mapped_child != nullptr &&
1899
2
               _can_push_down_minmax_for_mapping(*mapped_child);
1900
3
    }
1901
1902
    static Status build_aggregate_projection(const ColumnMapping& mapping,
1903
2
                                             LocalColumnIndex* projection) {
1904
2
        DORIS_CHECK(projection != nullptr);
1905
2
        DORIS_CHECK(mapping.file_local_id.has_value());
1906
2
        *projection = LocalColumnIndex::local(*mapping.file_local_id);
1907
2
        projection->children.clear();
1908
2
        projection->project_all_children = true;
1909
2
        if (mapping.child_mappings.empty()) {
1910
1
            return Status::OK();
1911
1
        }
1912
1
        projection->project_all_children = false;
1913
1
        for (const auto& child_mapping : mapping.child_mappings) {
1914
1
            if (!child_mapping.file_local_id.has_value()) {
1915
0
                continue;
1916
0
            }
1917
1
            LocalColumnIndex child_projection;
1918
1
            RETURN_IF_ERROR(build_aggregate_projection(child_mapping, &child_projection));
1919
1
            projection->children.push_back(std::move(child_projection));
1920
1
        }
1921
1
        DORIS_CHECK(projection->children.size() == 1);
1922
1
        return Status::OK();
1923
1
    }
1924
1925
    static Status _insert_aggregate_projection_value(const LocalColumnIndex& projection,
1926
20
                                                     const Field& value, IColumn* column) {
1927
20
        DORIS_CHECK(column != nullptr);
1928
20
        if (auto* nullable_column = check_and_get_column<ColumnNullable>(*column)) {
1929
10
            RETURN_IF_ERROR(_insert_aggregate_projection_value(
1930
10
                    projection, value, &nullable_column->get_nested_column()));
1931
10
            nullable_column->get_null_map_data().push_back(0);
1932
10
            return Status::OK();
1933
10
        }
1934
10
        if (projection.project_all_children || projection.children.empty()) {
1935
8
            column->insert(value);
1936
8
            return Status::OK();
1937
8
        }
1938
2
        auto* struct_column = assert_cast<ColumnStruct*>(column);
1939
2
        DORIS_CHECK(projection.children.size() == 1);
1940
2
        const auto& child_projection = projection.children[0];
1941
2
        DORIS_CHECK(struct_column->get_columns().size() == 1);
1942
2
        RETURN_IF_ERROR(_insert_aggregate_projection_value(child_projection, value,
1943
2
                                                           &struct_column->get_column(0)));
1944
2
        return Status::OK();
1945
2
    }
1946
1947
    // Parse a DV into its compressed bitmap. Position delete files continue to use _delete_rows.
1948
    Status _parse_delete_predicates(const SplitReadOptions& options);
1949
};
1950
1951
} // namespace doris::format