Coverage Report

Created: 2026-08-08 02:22

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
be/src/format_v2/table_reader.h
Line
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
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#include <algorithm>
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#include <exception>
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#include <map>
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#include <memory>
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#include <optional>
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#include <string>
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#include <string_view>
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#include <utility>
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#include <vector>
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#include "common/cast_set.h"
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#include "common/exception.h"
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#include "common/logging.h"
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#include "common/status.h"
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#include "core/assert_cast.h"
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#include "core/block/block.h"
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#include "core/column/column_array.h"
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#include "core/column/column_const.h"
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#include "core/column/column_map.h"
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#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"
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#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"
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#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"
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#include "exprs/vexpr_context.h"
55
#include "exprs/vexpr_fwd.h"
56
#include "exprs/vslot_ref.h"
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#include "format/table/deletion_vector.h"
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#include "format_v2/column_data.h"
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#include "format_v2/column_mapper.h"
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#include "format_v2/expr/cast.h"
61
#include "format_v2/expr/delete_predicate.h"
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#include "format_v2/file_reader.h"
63
#include "format_v2/parquet/reader/column_reader.h"
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#include "format_v2/schema_projection.h"
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#include "gen_cpp/PlanNodes_types.h"
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#include "io/io_common.h"
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#include "runtime/descriptors.h"
68
#include "storage/segment/condition_cache.h"
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namespace doris {
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class Block;
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struct DeleteFileDesc;
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class RuntimeState;
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} // namespace doris
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76
namespace doris::format {
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using DeleteRows = std::vector<int64_t>;
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// Row-level predicates on table/global schema. They are rewritten to file-local expressions when
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// possible, and remain the source of row-level filtering after localization.
82
struct TableFilter {
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    VExprContextSPtr conjunct;
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    std::vector<GlobalIndex> global_indices;
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};
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struct ScanTask {
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185
    virtual ~ScanTask() = default;
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90
    std::unique_ptr<io::FileDescription> data_file;
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};
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* refresh_conjuncts_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;
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    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;
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    RuntimeProfile::Counter* file_reader_open_timer = nullptr;
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    RuntimeProfile::Counter* file_reader_refresh_timer = nullptr;
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    RuntimeProfile::Counter* file_reader_get_block_timer = nullptr;
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    RuntimeProfile::Counter* file_reader_aggregate_timer = nullptr;
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    RuntimeProfile::Counter* file_reader_close_timer = nullptr;
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};
133
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struct TableReadOptions {
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    // Columns need to be read from file and output by table reader. They are all in table/global
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    // schema semantics.
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    const std::vector<ColumnDefinition> projected_columns;
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    // All complex conjuncts from scan operator
139
    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.
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    const FileFormat format;
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    TFileScanRangeParams* scan_params;
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    std::shared_ptr<io::IOContext> io_ctx;
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    RuntimeState* runtime_state;
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    RuntimeProfile* scanner_profile;
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    // File formats without complete self-describing metadata, such as CSV, Text, and JSON, need
148
    // the FE-planned physical file slots to build their file-local schema and deserialize values.
149
    const std::vector<SlotDescriptor*>* file_slot_descs = nullptr;
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    // Push-down aggregate type.
151
    const TPushAggOp::type push_down_agg_type = TPushAggOp::type::NONE;
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    // Table/global indices of explicit COUNT arguments. nullopt means an old FE did not send the
153
    // semantic argument field, while an explicit empty vector means COUNT(*)/COUNT(1). Keeping
154
    // those states separate prevents a rolling-upgrade plan from being reinterpreted by a new BE.
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    const std::optional<std::vector<GlobalIndex>> push_down_count_columns = std::nullopt;
156
    // Initial digest of predicates available during scanner open. Scanner-driven splits override it
157
    // with SplitReadOptions::condition_cache_digest after collecting late-arrival runtime filters.
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    // A zero digest disables condition cache.
159
    uint64_t condition_cache_digest = 0;
160
};
161
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struct SplitReadOptions {
163
    // 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.
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    std::map<std::string, Field> partition_values;
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    // Latest scanner conjuncts rewritten to table/global column indices. Runtime filters may
166
    // arrive after TableReader::init(), so scanner-driven splits replace the initial snapshot.
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    // nullopt preserves the initial snapshot for standalone TableReader callers.
168
    std::optional<VExprContextSPtrs> conjuncts = std::nullopt;
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    // Independent clones used for partition pruning because evaluation prepares and opens them
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    // against a synthetic partition block before the file reader opens its row-level conjuncts.
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    VExprContextSPtrs partition_prune_conjuncts;
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    // Table-level COUNT may emit one metadata-derived batch and resume on a later scheduler turn.
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    // It is safe only after every runtime filter assigned to the scanner has arrived; otherwise a
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    // filter could arrive after synthetic rows have already been returned and those rows cannot be
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    // retracted. Standalone TableReader callers have no scanner runtime-filter lifecycle.
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    bool all_runtime_filters_applied = true;
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    // Digest for the exact scanner conjunct snapshot attached to this split. FileScannerV2 rebuilds
178
    // it after collecting late-arrival RFs, so different RF payloads cannot share a cache entry. A
179
    // zero value explicitly disables condition cache for this split.
180
    std::optional<uint64_t> condition_cache_digest;
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    ShardedKVCache* cache = nullptr;
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    TFileRangeDesc current_range;
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    FileFormat current_split_format = FileFormat::PARQUET;
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    std::optional<GlobalRowIdContext> global_rowid_context;
185
};
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// Base class for table-level readers.
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// This layer owns common table-level orchestration, such as split iteration, dynamic partition
189
// pruning, delete handling and conversion from file-local blocks to table-schema blocks. Concrete
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// table-format readers only need to provide format-specific hooks for opening readers and parsing
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// split metadata.
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class TableReader {
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public:
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    virtual ~TableReader() = default;
195
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    // Initialize common runtime options for the table reader. Subclasses may call this from their
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    // own init(options); table-format schema and split metadata are provided later per split.
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    virtual Status init(TableReadOptions&& options);
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    // FileScannerV2 adjusts this before each get_block() using an adaptive bytes-per-row estimate.
201
    // Store it here as well as forwarding to the current reader so newly opened split readers start
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    // with the latest predicted batch size.
203
10
    virtual void set_batch_size(size_t batch_size) {
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10
        _batch_size = std::max<size_t>(1, batch_size);
205
10
        if (_data_reader.reader != nullptr) {
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0
            _data_reader.reader->set_batch_size(_batch_size);
207
0
        }
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10
    }
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#ifdef BE_TEST
211
11
    size_t TEST_batch_size() const { return _batch_size; }
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4
    void TEST_set_condition_cache_hit_count(int64_t hits) { _condition_cache_hit_count = hits; }
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4
    bool TEST_current_data_file_is_immutable() const {
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4
        DORIS_CHECK(_current_task != nullptr);
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4
        DORIS_CHECK(_current_task->data_file != nullptr);
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4
        DORIS_CHECK(_current_file_description.has_value());
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4
        DORIS_CHECK(_current_task->data_file->is_immutable ==
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4
                    _current_file_description->is_immutable);
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4
        return _current_task->data_file->is_immutable;
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4
    }
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#endif
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    // 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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    // Refresh row-level predicates for an already prepared split. Physical readers that support
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    // this operation decide the safe boundary at which the new immutable request becomes active.
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    virtual Status refresh_conjuncts(VExprContextSPtrs conjuncts);
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    virtual bool current_split_pruned() const { return _current_split_pruned; }
233
6
    virtual bool current_split_uses_metadata_count() const {
234
6
        return _current_split_uses_metadata_count;
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6
    }
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    // 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
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    // with no concrete reader or split-local state left from the failed split.
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1
    virtual Status abort_split() {
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        // 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.
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1
        SCOPED_TIMER(_profile.total_timer);
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1
        SCOPED_TIMER(_profile.close_timer);
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1
        if (_data_reader.reader != nullptr) {
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1
            RETURN_IF_ERROR(close_current_reader());
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1
        } else {
248
0
            _current_task.reset();
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0
            _current_file_description.reset();
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0
        }
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1
        _delete_rows = nullptr;
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1
        _remaining_table_level_count = -1;
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1
        _remaining_file_level_count = -1;
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1
        _current_split_uses_metadata_count = false;
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1
        _current_split_pruned = false;
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1
        return Status::OK();
257
1
    }
258
259
    // Public entry point for reading a table-schema block. The base class opens the current reader,
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    // advances across EOF, and closes exhausted readers. Subclasses provide protected hooks for
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    // table-format-specific behavior.
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213
    virtual Status get_block(Block* block, bool* eos) {
263
213
        SCOPED_TIMER(_profile.total_timer);
264
213
        SCOPED_TIMER(_profile.exec_timer);
265
213
        DORIS_CHECK(block->columns() == _projected_columns.size());
266
213
        block->clear_column_data(_projected_columns.size());
267
268
274
        while (true) {
269
274
            if (*eos) {
270
0
                return Status::OK();
271
0
            }
272
274
            if (_io_ctx != nullptr && _io_ctx->should_stop) {
273
0
                *eos = true;
274
0
                return Status::OK();
275
0
            }
276
274
            if (!_data_reader.reader) {
277
222
                if (_is_table_level_count_active()) {
278
6
                    RETURN_IF_ERROR(_read_table_level_count(block, eos));
279
6
                    return Status::OK();
280
6
                }
281
216
                if (_is_file_level_count_active()) {
282
4
                    RETURN_IF_ERROR(_read_file_level_count(block, eos));
283
4
                    return Status::OK();
284
4
                }
285
212
                RETURN_IF_ERROR(create_next_reader(eos));
286
210
                if (!_data_reader.reader) {
287
61
                    DCHECK(*eos);
288
61
                    return Status::OK();
289
61
                }
290
210
            }
291
292
            // Materialize a reduced row set for upper aggregate operators when aggregate
293
            // pushdown can be applied. This is not the final aggregate result: COUNT emits
294
            // `count` default rows for the upper COUNT(*), and MIN/MAX emits two rows containing
295
            // file-level min/max values for the upper MIN/MAX.
296
201
            if (!_aggregate_pushdown_tried) {
297
149
                SCOPED_TIMER(_profile.pushdown_agg_timer);
298
149
                bool pushed_down = false;
299
149
                const auto status = _try_materialize_aggregate_pushdown_rows(block, &pushed_down);
300
149
                if (!status.ok()) {
301
1
                    if (_io_ctx != nullptr && _io_ctx->should_stop &&
302
1
                        status.is<ErrorCode::END_OF_FILE>()) {
303
1
                        *eos = true;
304
1
                        return Status::OK();
305
1
                    }
306
0
                    return status;
307
1
                }
308
148
                if (pushed_down) {
309
11
                    return Status::OK();
310
11
                }
311
148
            }
312
313
189
            bool current_eof = false;
314
189
            _data_reader.block_template.clear_column_data(
315
189
                    cast_set<int64_t>(_data_reader.file_block_layout.size()));
316
189
            size_t current_rows = 0;
317
189
            {
318
189
                SCOPED_TIMER(_profile.file_reader_total_timer);
319
189
                SCOPED_TIMER(_profile.file_reader_get_block_timer);
320
189
                RETURN_IF_ERROR(_data_reader.reader->get_block(&_data_reader.block_template,
321
189
                                                               &current_rows, &current_eof));
322
189
            }
323
189
            const bool stopped_during_read = _io_ctx != nullptr && _io_ctx->should_stop;
324
189
            if (current_rows == 0) {
325
61
                if (current_eof) {
326
59
                    _current_reader_reached_eof = !stopped_during_read;
327
59
                    RETURN_IF_ERROR(close_current_reader());
328
59
                }
329
61
                continue;
330
61
            }
331
189
            DCHECK_EQ(_data_reader.block_template.columns(), _data_reader.file_block_layout.size())
332
0
                    << _data_reader.block_template.dump_structure();
333
128
#ifndef NDEBUG
334
128
            RETURN_IF_ERROR(_check_file_block_columns("after file reader get_block", current_rows));
335
128
#endif
336
128
            DORIS_CHECK(block->columns() == _data_reader.column_mapper->mappings().size());
337
128
            RETURN_IF_ERROR(finalize_chunk(block, current_rows));
338
128
#ifndef NDEBUG
339
128
            RETURN_IF_ERROR(
340
128
                    _check_table_block_columns("after finalize_chunk", block, current_rows));
341
128
#endif
342
128
            if (current_eof) {
343
20
                _current_reader_reached_eof = !stopped_during_read;
344
20
                RETURN_IF_ERROR(close_current_reader());
345
20
            }
346
128
            return Status::OK();
347
128
        }
348
213
    }
349
350
    // Close the table reader and the currently active file reader. Subclasses that hold additional
351
    // table-format resources should override this and call TableReader::close() first.
352
157
    virtual Status close() {
353
157
        SCOPED_TIMER(_profile.total_timer);
354
157
        SCOPED_TIMER(_profile.close_timer);
355
157
        if (_data_reader.reader) {
356
59
            RETURN_IF_ERROR(close_current_reader());
357
59
        }
358
157
        _current_task.reset();
359
157
        _current_file_description.reset();
360
157
        _remaining_table_level_count = -1;
361
157
        _remaining_file_level_count = -1;
362
157
        _current_split_uses_metadata_count = false;
363
157
        return Status::OK();
364
157
    }
365
366
8
    virtual int64_t condition_cache_hit_count() const { return _condition_cache_hit_count; }
367
368
    virtual std::string debug_string() const;
369
370
    virtual Status annotate_projected_column(const TFileScanSlotInfo& slot_info,
371
                                             ProjectedColumnBuildContext* context,
372
                                             ColumnDefinition* column) const;
373
374
0
    virtual Status validate_projected_columns(const ProjectedColumnBuildContext& context) const {
375
0
        (void)context;
376
0
        return Status::OK();
377
0
    }
378
379
protected:
380
    // TableReader keeps the active file description both in the scan task and separately for
381
    // creating the physical reader. Table-format readers must update both copies when their
382
    // snapshot protocol guarantees that a file path is never overwritten with different bytes.
383
    // This guarantee lets readers safely build cache keys without mtime; it must not be used for
384
    // ordinary Hive/TVF files whose paths may be overwritten in place.
385
93
    void mark_current_data_file_immutable() {
386
93
        DORIS_CHECK(_current_task != nullptr);
387
93
        DORIS_CHECK(_current_task->data_file != nullptr);
388
93
        DORIS_CHECK(_current_file_description.has_value());
389
93
        _current_task->data_file->is_immutable = true;
390
93
        _current_file_description->is_immutable = true;
391
93
    }
392
393
    std::optional<ColumnDefinition> _find_table_column_by_field_id(
394
            int32_t field_id, DataTypePtr type, bool include_historical_schemas) const;
395
    std::optional<std::vector<ColumnDefinition>> _find_table_column_path_by_field_id(
396
            int32_t field_id, DataTypePtr leaf_type, bool include_historical_schemas) const;
397
    std::optional<std::vector<ColumnDefinition>> _find_table_column_identity_path_by_field_id(
398
            int32_t field_id, bool include_historical_schemas) const;
399
400
    // Parse deletion vector information from table format specific file description.
401
    virtual Status _parse_deletion_vector_file(const TTableFormatFileDesc& t_desc,
402
95
                                               DeleteFileDesc* desc, bool* has_delete_file) {
403
95
        *has_delete_file = false;
404
95
        return Status::OK();
405
95
    }
406
407
    // Advance to the next reader. This closes the current reader first and then opens the next
408
    // concrete reader. Subclasses should not duplicate this loop.
409
    Status create_next_reader(bool* eos);
410
    virtual Status create_file_reader(std::unique_ptr<FileReader>* reader);
411
74
    virtual TableColumnMappingMode mapping_mode() const { return TableColumnMappingMode::BY_NAME; }
412
77
    virtual void configure_mapper_options(TableColumnMapperOptions*) const {}
413
148
    virtual Status annotate_file_schema(std::vector<ColumnDefinition>* file_schema) {
414
148
        DORIS_CHECK(file_schema != nullptr);
415
148
        return Status::OK();
416
148
    }
417
418
    // Open the concrete reader for the current split/task and build the file-local scan request.
419
151
    virtual Status open_reader() {
420
151
        SCOPED_TIMER(_profile.open_reader_timer);
421
        // 1. Get file schema and create column mapping.
422
151
        std::vector<ColumnDefinition> file_schema;
423
151
        {
424
151
            SCOPED_TIMER(_profile.file_reader_total_timer);
425
151
            SCOPED_TIMER(_profile.file_reader_schema_timer);
426
151
            RETURN_IF_ERROR(_data_reader.reader->get_schema(&file_schema));
427
151
        }
428
        // For Paimon/Hudi, FE can provide field ids through `history_schema_info`. Annotate the
429
        // file schema before column mapping when the table format maps columns by field id.
430
151
        RETURN_IF_ERROR(annotate_file_schema(&file_schema));
431
151
        _data_reader.file_schema = file_schema;
432
151
        _mapper_options.mode = mapping_mode();
433
151
        configure_mapper_options(&_mapper_options);
434
435
151
        {
436
151
            SCOPED_TIMER(_profile.file_reader_total_timer);
437
151
            SCOPED_TIMER(_profile.file_reader_mapper_timer);
438
151
            _data_reader.column_mapper = _data_reader.reader->create_column_mapper(_mapper_options);
439
151
        }
440
151
        DORIS_CHECK(_data_reader.column_mapper != nullptr);
441
151
        RETURN_IF_ERROR(_data_reader.column_mapper->create_mapping(_projected_columns,
442
151
                                                                   _partition_values, file_schema));
443
151
        DORIS_CHECK(_data_reader.column_mapper->mappings().size() == _projected_columns.size());
444
445
        // 2. Build table filters based on conjuncts and column predicates.
446
151
        RETURN_IF_ERROR(_build_table_filters_from_conjuncts());
447
448
        // 3. Create file scan request based on column mapping and table filters, then open file
449
        // reader with the request. File scan request carries row-level expression filters and
450
        // file-level pruning hints. Only expression filters decide returned rows.
451
151
        auto file_request = std::make_shared<FileScanRequest>();
452
151
        RETURN_IF_ERROR(_data_reader.column_mapper->create_scan_request(
453
151
                _table_filters, _projected_columns, file_request.get(), _runtime_state));
454
151
        bool constant_filter_pruned_split = false;
455
151
        RETURN_IF_ERROR(_evaluate_constant_filters(&constant_filter_pruned_split));
456
151
        if (constant_filter_pruned_split) {
457
1
            RETURN_IF_ERROR(close_current_reader());
458
1
            return Status::OK();
459
1
        }
460
        // COUNT(*) has no semantic column argument, but Nereids retains a minimum-width scan slot
461
        // so the scan node still has an output tuple. Record only the current non-predicate file
462
        // columns before table-format hooks add row-position or equality-delete dependencies. This
463
        // marker is independent of aggregate eligibility: with position deletes, for example,
464
        // metadata COUNT must fall back to reading rows, but an arbitrary unsupported TIME_MILLIS
465
        // placeholder still must not be validated or decoded merely to carry the surviving count.
466
        // Pending runtime filters may later target this retained slot, so placeholder values are
467
        // safe only after every filter for the split has arrived.
468
150
        if (_push_down_agg_type == TPushAggOp::type::COUNT &&
469
150
            _push_down_count_columns.has_value() && _push_down_count_columns->empty() &&
470
150
            _all_runtime_filters_applied_for_split) {
471
10
            file_request->count_star_placeholder_columns.reserve(
472
10
                    file_request->non_predicate_columns.size());
473
10
            for (const auto& column : file_request->non_predicate_columns) {
474
7
                file_request->count_star_placeholder_columns.push_back(column.column_id());
475
7
            }
476
10
        }
477
150
        RETURN_IF_ERROR(customize_file_scan_request(file_request.get()));
478
149
        RETURN_IF_ERROR(_open_local_filter_exprs(*file_request));
479
149
        _data_reader.file_block_layout.clear();
480
149
        _data_reader.block_template.clear();
481
149
        _file_scan_request.reset();
482
149
        _data_reader.file_block_layout.resize(file_request->local_positions.size());
483
484
        // 4. Build file block layout from file schema and column mapping. The layout describes
485
        // the block returned by file reader before table-column materialization.
486
224
        for (const auto& [file_column_id, block_position] : file_request->local_positions) {
487
224
            DORIS_CHECK(block_position.value() < _data_reader.file_block_layout.size());
488
224
            const auto* field = _find_column_definition(_data_reader.file_schema, file_column_id);
489
224
            DORIS_CHECK(field != nullptr);
490
491
224
            ColumnDefinition projected_field;
492
224
            {
493
224
                auto it = std::find_if(
494
224
                        file_request->non_predicate_columns.begin(),
495
224
                        file_request->non_predicate_columns.end(),
496
243
                        [&](const LocalColumnIndex& p) { return p.column_id() == file_column_id; });
497
224
                if (it != file_request->non_predicate_columns.end()) {
498
143
                    RETURN_IF_ERROR(project_column_definition(*field, *it, &projected_field));
499
143
                }
500
224
            }
501
224
            {
502
224
                auto it = std::find_if(
503
224
                        file_request->predicate_columns.begin(),
504
224
                        file_request->predicate_columns.end(),
505
224
                        [&](const LocalColumnIndex& p) { return p.column_id() == file_column_id; });
506
224
                if (it != file_request->predicate_columns.end()) {
507
81
                    RETURN_IF_ERROR(project_column_definition(*field, *it, &projected_field));
508
81
                }
509
224
            }
510
224
            _data_reader.file_block_layout[block_position.value()] = {
511
224
                    .file_column_id = file_column_id,
512
224
                    .name = projected_field.name,
513
224
                    .type = projected_field.type,
514
224
            };
515
224
            DORIS_CHECK(_data_reader.file_block_layout[block_position.value()].type != nullptr);
516
224
        }
517
518
        // 5. Prepare block template from file block layout. The block template stores the block
519
        // returned by file reader before table-column materialization.
520
149
        _data_reader.block_template.reserve(_data_reader.file_block_layout.size());
521
224
        for (const auto& column : _data_reader.file_block_layout) {
522
224
            _data_reader.block_template.insert(
523
224
                    {column.type->create_column(), column.type, column.name});
524
224
        }
525
149
        if (VLOG_DEBUG_IS_ON) {
526
0
            VLOG_DEBUG << "TableReader debug: " << debug_string();
527
0
        }
528
149
        RETURN_IF_ERROR(_open_mapping_exprs());
529
149
        {
530
149
            SCOPED_TIMER(_profile.file_reader_total_timer);
531
149
            SCOPED_TIMER(_profile.file_reader_open_timer);
532
149
            RETURN_IF_ERROR(_data_reader.reader->open(file_request));
533
149
        }
534
149
        _file_scan_request = std::move(file_request);
535
149
        RETURN_IF_ERROR(_init_reader_condition_cache(*_file_scan_request));
536
149
        return Status::OK();
537
149
    }
538
539
    Status _build_table_filters_from_conjuncts();
540
    Status _evaluate_partition_prune_conjuncts(const VExprContextSPtrs& conjuncts,
541
                                               bool* can_filter_all);
542
    static bool _is_safe_to_pre_execute(const VExprContextSPtr& conjunct);
543
    Status _build_partition_prune_block(Block* block) const;
544
    Status _open_local_filter_exprs(const FileScanRequest& file_request);
545
    Status _init_reader_condition_cache(const FileScanRequest& file_request);
546
    void _finalize_reader_condition_cache();
547
    bool _should_enable_condition_cache(const FileScanRequest& file_request) const;
548
549
151
    Status _evaluate_constant_filters(bool* can_filter_all) {
550
151
        DORIS_CHECK(can_filter_all != nullptr);
551
151
        DORIS_CHECK_LE(_constant_pruning_safe_filter_count, _table_filters.size());
552
151
        *can_filter_all = false;
553
        // The bound was derived from the original `_conjuncts` order, which includes slotless
554
        // expressions omitted from `_table_filters`. Iterating only this prefix therefore cannot
555
        // skip an unsafe row-level predicate and pre-execute a later constant predicate.
556
178
        for (size_t i = 0; i < _constant_pruning_safe_filter_count; ++i) {
557
28
            const auto& table_filter = _table_filters[i];
558
28
            if (table_filter.conjunct == nullptr) {
559
0
                continue;
560
0
            }
561
28
            DORIS_CHECK(_is_safe_to_pre_execute(table_filter.conjunct));
562
            // RuntimeFilterExpr does not implement execute_column_impl(); it is evaluated by the
563
            // row-level filter path through execute_filter(). Constant split pruning uses
564
            // VExprContext::execute() on a one-row synthetic block, so runtime filters must not be
565
            // pre-executed here even when their referenced slot maps to a constant value.
566
28
            if (table_filter.conjunct->root()->is_rf_wrapper() ||
567
28
                !_table_filter_has_only_constant_entries(table_filter)) {
568
26
                continue;
569
26
            }
570
2
            Block eval_block;
571
2
            RETURN_IF_ERROR(_build_constant_filter_block(table_filter, &eval_block));
572
2
            RowDescriptor row_desc;
573
2
            RETURN_IF_ERROR(table_filter.conjunct->prepare(_runtime_state, row_desc));
574
2
            RETURN_IF_ERROR(table_filter.conjunct->open(_runtime_state));
575
2
            int result_column_id = -1;
576
2
            RETURN_IF_ERROR(table_filter.conjunct->execute(&eval_block, &result_column_id));
577
2
            DORIS_CHECK(result_column_id >= 0);
578
2
            if (_filter_result_filters_all(eval_block.get_by_position(result_column_id).column)) {
579
1
                *can_filter_all = true;
580
1
                return Status::OK();
581
1
            }
582
2
        }
583
150
        return Status::OK();
584
151
    }
585
586
23
    bool _table_filter_has_only_constant_entries(const TableFilter& table_filter) const {
587
23
        const auto& filter_entries = _data_reader.column_mapper->filter_entries();
588
23
        for (const auto global_index : table_filter.global_indices) {
589
23
            const auto entry_it = filter_entries.find(global_index);
590
23
            if (entry_it == filter_entries.end() || !entry_it->second.is_constant()) {
591
21
                return false;
592
21
            }
593
23
        }
594
2
        return !table_filter.global_indices.empty();
595
23
    }
596
597
2
    Status _build_constant_filter_block(const TableFilter& table_filter, Block* eval_block) {
598
2
        DORIS_CHECK(eval_block != nullptr);
599
2
        eval_block->clear();
600
2
        const auto& mappings = _data_reader.column_mapper->mappings();
601
2
        const auto& filter_entries = _data_reader.column_mapper->filter_entries();
602
2
        DORIS_CHECK(mappings.size() == _projected_columns.size());
603
4
        for (size_t column_idx = 0; column_idx < mappings.size(); ++column_idx) {
604
2
            const auto global_index = GlobalIndex(column_idx);
605
2
            const auto& mapping = mappings[column_idx];
606
2
            const auto entry_it = filter_entries.find(global_index);
607
2
            const bool referenced_by_filter =
608
2
                    std::find(table_filter.global_indices.begin(),
609
2
                              table_filter.global_indices.end(),
610
2
                              global_index) != table_filter.global_indices.end();
611
2
            if (referenced_by_filter && entry_it != filter_entries.end() &&
612
2
                entry_it->second.is_constant()) {
613
2
                ColumnPtr constant_column;
614
2
                RETURN_IF_ERROR(_materialize_constant_filter_column(
615
2
                        entry_it->second.constant_index(), &constant_column));
616
2
                eval_block->insert({std::move(constant_column), mapping.table_type,
617
2
                                    mapping.table_column_name});
618
2
            } else {
619
0
                eval_block->insert({mapping.table_type->create_column_const_with_default_value(1),
620
0
                                    mapping.table_type, mapping.table_column_name});
621
0
            }
622
2
        }
623
2
        return Status::OK();
624
2
    }
625
626
2
    Status _materialize_constant_filter_column(ConstantIndex constant_index, ColumnPtr* column) {
627
2
        DORIS_CHECK(column != nullptr);
628
2
        const auto& constant_entry = _data_reader.column_mapper->constant_map().get(constant_index);
629
2
        DORIS_CHECK(constant_entry.expr != nullptr);
630
2
        DORIS_CHECK(constant_entry.type != nullptr);
631
2
        RowDescriptor row_desc;
632
2
        RETURN_IF_ERROR(constant_entry.expr->prepare(_runtime_state, row_desc));
633
2
        RETURN_IF_ERROR(constant_entry.expr->open(_runtime_state));
634
2
        Block eval_block;
635
2
        eval_block.insert({constant_entry.type->create_column_const_with_default_value(1),
636
2
                           constant_entry.type, "__table_reader_constant_filter"});
637
2
        int result_column_id = -1;
638
2
        RETURN_IF_ERROR(constant_entry.expr->execute(&eval_block, &result_column_id));
639
2
        DORIS_CHECK(result_column_id >= 0);
640
2
        *column = eval_block.get_by_position(result_column_id).column;
641
2
        DORIS_CHECK((*column)->size() == 1);
642
2
        return Status::OK();
643
2
    }
644
645
2
    static bool _filter_result_filters_all(const ColumnPtr& filter_column) {
646
2
        DORIS_CHECK(filter_column.get() != nullptr);
647
2
        DORIS_CHECK(filter_column->size() == 1);
648
2
        return !filter_column->get_bool(0);
649
2
    }
650
651
154
    virtual Status customize_file_scan_request(FileScanRequest* file_request) {
652
154
        return _append_delete_predicate(file_request);
653
154
    }
654
655
492
    bool _is_table_level_count_active() const { return _remaining_table_level_count >= 0; }
656
657
216
    bool _is_file_level_count_active() const { return _remaining_file_level_count >= 0; }
658
659
14
    Status _materialize_count_rows(size_t rows, Block* block) const {
660
14
        DORIS_CHECK(block != nullptr);
661
14
        DORIS_CHECK(block->columns() > 0 || rows == 0);
662
28
        for (size_t column_idx = 0; column_idx < block->columns(); ++column_idx) {
663
14
            auto column = block->get_by_position(column_idx).type->create_column();
664
14
            if (auto* nullable = check_and_get_column<ColumnNullable>(*column)) {
665
                // Metadata COUNT emits synthetic input rows for the unchanged upper aggregate.
666
                // They must be non-NULL for COUNT(nullable_col), and constructing them explicitly
667
                // also keeps every nullable null map boolean-valid in debug/ASAN block checks.
668
14
                nullable->get_nested_column().insert_many_defaults(rows);
669
14
                nullable->get_null_map_data().resize_fill(rows, 0);
670
14
            } else {
671
0
                column->insert_many_defaults(rows);
672
0
            }
673
14
            block->replace_by_position(column_idx, std::move(column));
674
14
        }
675
14
        return Status::OK();
676
14
    }
677
678
14
    Status _materialize_next_count_batch(int64_t* remaining_rows, Block* block) const {
679
14
        DORIS_CHECK(remaining_rows != nullptr);
680
14
        DORIS_CHECK(*remaining_rows > 0);
681
14
        const int64_t batch_size = _runtime_state == nullptr
682
14
                                           ? *remaining_rows
683
14
                                           : static_cast<int64_t>(_runtime_state->batch_size());
684
14
        const auto rows = std::min(*remaining_rows, batch_size);
685
14
        RETURN_IF_ERROR(_materialize_count_rows(cast_set<size_t>(rows), block));
686
14
        *remaining_rows -= rows;
687
14
        return Status::OK();
688
14
    }
689
690
10
    Status _read_count_batch(int64_t* remaining_rows, Block* block, bool* eos) {
691
10
        DORIS_CHECK(block != nullptr);
692
10
        DORIS_CHECK(eos != nullptr);
693
10
        DORIS_CHECK(_push_down_agg_type == TPushAggOp::type::COUNT);
694
10
        DORIS_CHECK(remaining_rows != nullptr);
695
10
        DORIS_CHECK(*remaining_rows >= 0);
696
10
        if (*remaining_rows == 0) {
697
4
            *remaining_rows = -1;
698
4
            _current_task.reset();
699
4
            *eos = true;
700
4
            return Status::OK();
701
4
        }
702
6
        RETURN_IF_ERROR(_materialize_next_count_batch(remaining_rows, block));
703
6
        *eos = false;
704
6
        return Status::OK();
705
6
    }
706
707
6
    Status _read_table_level_count(Block* block, bool* eos) {
708
6
        return _read_count_batch(&_remaining_table_level_count, block, eos);
709
6
    }
710
711
4
    Status _read_file_level_count(Block* block, bool* eos) {
712
4
        return _read_count_batch(&_remaining_file_level_count, block, eos);
713
4
    }
714
715
    void _append_file_scan_column(FileScanRequest* request, LocalColumnId column_id,
716
68
                                  std::vector<LocalColumnIndex>* scan_columns) {
717
68
        DORIS_CHECK(request != nullptr);
718
68
        DORIS_CHECK(scan_columns != nullptr);
719
68
        FileScanRequestBuilder builder(request);
720
68
        Status status;
721
68
        if (scan_columns == &request->predicate_columns) {
722
57
            status = builder.add_predicate_column(column_id);
723
57
        } else {
724
11
            DORIS_CHECK(scan_columns == &request->non_predicate_columns);
725
11
            status = builder.add_non_predicate_column(column_id);
726
11
        }
727
68
        DORIS_CHECK(status.ok()) << status.to_string();
728
68
        if (column_id == LocalColumnId(ROW_POSITION_COLUMN_ID) &&
729
68
            _find_column_definition(_data_reader.file_schema, column_id) == nullptr) {
730
39
            _data_reader.file_schema.push_back(row_position_column_definition());
731
39
        }
732
68
    }
733
734
    // 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.
735
154
    Status _append_delete_predicate(FileScanRequest* request) {
736
154
        DORIS_CHECK(request != nullptr);
737
154
        if ((_delete_rows == nullptr || _delete_rows->empty()) &&
738
154
            (_deletion_vector == nullptr || _deletion_vector->isEmpty())) {
739
138
            return Status::OK();
740
138
        }
741
16
        const auto row_position_column_id = LocalColumnId(ROW_POSITION_COLUMN_ID);
742
16
        _append_file_scan_column(request, row_position_column_id, &request->predicate_columns);
743
744
16
        const auto block_position = request->local_positions.at(row_position_column_id);
745
16
        auto append_predicate = [&](auto& deleted_rows) {
746
16
            auto delete_predicate = std::make_shared<DeletePredicate>(deleted_rows);
747
16
            delete_predicate->add_child(VSlotRef::create_shared(
748
16
                    cast_set<int>(block_position.value()), cast_set<int>(block_position.value()),
749
16
                    -1, std::make_shared<DataTypeInt64>(), ROW_POSITION_COLUMN_NAME));
750
16
            request->delete_conjuncts.push_back(
751
16
                    VExprContext::create_shared(std::move(delete_predicate)));
752
16
        };
_ZZN5doris6format11TableReader24_append_delete_predicateEPNS0_15FileScanRequestEENKUlRT_E_clISt6vectorIlSaIlEEEEDaS5_
Line
Count
Source
745
12
        auto append_predicate = [&](auto& deleted_rows) {
746
12
            auto delete_predicate = std::make_shared<DeletePredicate>(deleted_rows);
747
12
            delete_predicate->add_child(VSlotRef::create_shared(
748
12
                    cast_set<int>(block_position.value()), cast_set<int>(block_position.value()),
749
12
                    -1, std::make_shared<DataTypeInt64>(), ROW_POSITION_COLUMN_NAME));
750
12
            request->delete_conjuncts.push_back(
751
12
                    VExprContext::create_shared(std::move(delete_predicate)));
752
12
        };
_ZZN5doris6format11TableReader24_append_delete_predicateEPNS0_15FileScanRequestEENKUlRT_E_clIN7roaring12Roaring64MapEEEDaS5_
Line
Count
Source
745
4
        auto append_predicate = [&](auto& deleted_rows) {
746
4
            auto delete_predicate = std::make_shared<DeletePredicate>(deleted_rows);
747
4
            delete_predicate->add_child(VSlotRef::create_shared(
748
4
                    cast_set<int>(block_position.value()), cast_set<int>(block_position.value()),
749
4
                    -1, std::make_shared<DataTypeInt64>(), ROW_POSITION_COLUMN_NAME));
750
4
            request->delete_conjuncts.push_back(
751
4
                    VExprContext::create_shared(std::move(delete_predicate)));
752
4
        };
753
16
        if (_delete_rows != nullptr && !_delete_rows->empty()) {
754
12
            append_predicate(*_delete_rows);
755
12
        }
756
16
        if (_deletion_vector != nullptr && !_deletion_vector->isEmpty()) {
757
4
            append_predicate(*_deletion_vector);
758
4
        }
759
16
        return Status::OK();
760
154
    }
761
762
    // Close the current concrete reader. This hook is called by both create_next_reader() and
763
    // close(), so it should remain idempotent.
764
151
    virtual Status close_current_reader() {
765
151
        _finalize_reader_condition_cache();
766
151
        {
767
151
            SCOPED_TIMER(_profile.file_reader_total_timer);
768
151
            SCOPED_TIMER(_profile.file_reader_close_timer);
769
151
            RETURN_IF_ERROR(_data_reader.reader->close());
770
151
        }
771
151
        _data_reader.reader.reset();
772
151
        if (_data_reader.column_mapper != nullptr) {
773
150
            _data_reader.column_mapper->clear();
774
150
            _data_reader.column_mapper.reset();
775
150
        }
776
151
        _table_filters.clear();
777
151
        _constant_pruning_safe_filter_count = 0;
778
151
        _data_reader.file_schema.clear();
779
151
        _data_reader.file_block_layout.clear();
780
151
        _data_reader.block_template.clear();
781
151
        _file_scan_request.reset();
782
151
        _current_task.reset();
783
151
        _current_file_description.reset();
784
151
        _current_reader_reached_eof = false;
785
151
        return Status::OK();
786
151
    }
787
788
2
    void _record_scan_rows(size_t rows) {
789
2
        if (_io_ctx != nullptr && _io_ctx->file_reader_stats != nullptr) {
790
2
            _io_ctx->file_reader_stats->read_rows += rows;
791
2
        }
792
2
    }
793
794
    // Finalize file-local block to table/global schema block.
795
128
    Status finalize_chunk(Block* block, const size_t rows) {
796
128
        SCOPED_TIMER(_profile.finalize_timer);
797
128
        size_t idx = 0;
798
128
        const auto& mappings = _data_reader.column_mapper->mappings();
799
171
        for (const auto& mapping : mappings) {
800
171
            ColumnPtr column;
801
171
            RETURN_IF_ERROR(_materialize_mapping_column(mapping, &_data_reader.block_template, rows,
802
171
                                                        &column, idx + 1 == mappings.size()));
803
171
            block->replace_by_position(idx, IColumn::mutate(std::move(column)));
804
171
            idx++;
805
171
        }
806
128
        RETURN_IF_ERROR(materialize_virtual_columns(block));
807
        // Enforce CHAR/VARCHAR length declared by the table schema after all file-to-table
808
        // materialization has finished.
809
128
        RETURN_IF_ERROR(_truncate_char_or_varchar_columns(block));
810
128
        return Status::OK();
811
128
    }
812
813
    // Materialize virtual columns in the table block, such as Iceberg _row_id and
814
    // _last_updated_sequence_number. This runs after normal column materialization so finalize
815
    // expressions can reference those virtual columns.
816
69
    virtual Status materialize_virtual_columns(Block* table_block) { return Status::OK(); }
817
818
#ifndef NDEBUG
819
128
    Status _check_file_block_columns(std::string_view stage, size_t rows) {
820
128
        DORIS_CHECK(_data_reader.block_template.columns() == _data_reader.file_block_layout.size());
821
319
        for (size_t idx = 0; idx < _data_reader.block_template.columns(); ++idx) {
822
191
            const auto& file_block_column = _data_reader.file_block_layout[idx];
823
191
            const auto& column_with_type = _data_reader.block_template.get_by_position(idx);
824
191
            const auto* column = column_with_type.column.get();
825
191
            try {
826
191
                if (column == nullptr) {
827
0
                    auto st = Status::InternalError(
828
0
                            "Invalid file block column {} at {}: file_column_id={}, name='{}', "
829
0
                            "type={}, column=null, expected_rows={}, reader={}",
830
0
                            idx, stage, file_block_column.file_column_id.value(),
831
0
                            file_block_column.name,
832
0
                            file_block_column.type == nullptr ? "null"
833
0
                                                              : file_block_column.type->get_name(),
834
0
                            rows, debug_string());
835
0
                    LOG(WARNING) << st;
836
0
                    return st;
837
0
                }
838
191
                column->sanity_check();
839
191
                auto st = column_with_type.check_type_and_column_match();
840
191
                if (!st.ok()) {
841
0
                    auto contextual_status = Status::InternalError(
842
0
                            "Invalid file block column {} at {}: file_column_id={}, name='{}', "
843
0
                            "type={}, column={}, column_size={}, expected_rows={}, error={}, "
844
0
                            "reader={}",
845
0
                            idx, stage, file_block_column.file_column_id.value(),
846
0
                            file_block_column.name,
847
0
                            file_block_column.type == nullptr ? "null"
848
0
                                                              : file_block_column.type->get_name(),
849
0
                            column->get_name(), column->size(), rows, st.to_string(),
850
0
                            debug_string());
851
0
                    LOG(WARNING) << contextual_status;
852
0
                    return contextual_status;
853
0
                }
854
191
            } catch (const Exception& e) {
855
0
                auto st = Status::InternalError(
856
0
                        "Invalid file block column {} at {}: file_column_id={}, name='{}', "
857
0
                        "type={}, column={}, column_size={}, expected_rows={}, error={}, "
858
0
                        "reader={}",
859
0
                        idx, stage, file_block_column.file_column_id.value(),
860
0
                        file_block_column.name,
861
0
                        file_block_column.type == nullptr ? "null"
862
0
                                                          : file_block_column.type->get_name(),
863
0
                        column == nullptr ? "null" : column->get_name(),
864
0
                        column == nullptr ? 0 : column->size(), rows, e.to_string(),
865
0
                        debug_string());
866
0
                LOG(WARNING) << st;
867
0
                return st;
868
0
            } catch (const std::exception& e) {
869
0
                auto st = Status::InternalError(
870
0
                        "Invalid file block column {} at {}: file_column_id={}, name='{}', "
871
0
                        "type={}, column={}, column_size={}, expected_rows={}, error={}, "
872
0
                        "reader={}",
873
0
                        idx, stage, file_block_column.file_column_id.value(),
874
0
                        file_block_column.name,
875
0
                        file_block_column.type == nullptr ? "null"
876
0
                                                          : file_block_column.type->get_name(),
877
0
                        column == nullptr ? "null" : column->get_name(),
878
0
                        column == nullptr ? 0 : column->size(), rows, e.what(), debug_string());
879
0
                LOG(WARNING) << st;
880
0
                return st;
881
0
            }
882
191
        }
883
128
        return Status::OK();
884
128
    }
885
886
128
    Status _check_table_block_columns(std::string_view stage, const Block* block, size_t rows) {
887
128
        DORIS_CHECK(block != nullptr);
888
128
        DORIS_CHECK(block->columns() == _data_reader.column_mapper->mappings().size());
889
299
        for (size_t idx = 0; idx < block->columns(); ++idx) {
890
171
            const auto& mapping = _data_reader.column_mapper->mappings()[idx];
891
171
            const auto& column_with_type = block->get_by_position(idx);
892
171
            const auto* column = column_with_type.column.get();
893
171
            try {
894
171
                if (column == nullptr) {
895
0
                    auto st = Status::InternalError(
896
0
                            "Invalid table block column {} at {}: table_column='{}', "
897
0
                            "global_index={}, type={}, column=null, expected_rows={}, mapping={}",
898
0
                            idx, stage, mapping.table_column_name, mapping.global_index.value(),
899
0
                            mapping.table_type == nullptr ? "null" : mapping.table_type->get_name(),
900
0
                            rows, mapping.debug_string());
901
0
                    LOG(WARNING) << st;
902
0
                    return st;
903
0
                }
904
171
                column->sanity_check();
905
171
                auto st = column_with_type.check_type_and_column_match();
906
171
                if (!st.ok()) {
907
0
                    auto contextual_status = Status::InternalError(
908
0
                            "Invalid table block column {} at {}: table_column='{}', "
909
0
                            "global_index={}, type={}, column={}, column_size={}, "
910
0
                            "expected_rows={}, error={}, mapping={}",
911
0
                            idx, stage, mapping.table_column_name, mapping.global_index.value(),
912
0
                            mapping.table_type == nullptr ? "null" : mapping.table_type->get_name(),
913
0
                            column->get_name(), column->size(), rows, st.to_string(),
914
0
                            mapping.debug_string());
915
0
                    LOG(WARNING) << contextual_status;
916
0
                    return contextual_status;
917
0
                }
918
171
            } catch (const Exception& e) {
919
0
                auto st = Status::InternalError(
920
0
                        "Invalid table block column {} at {}: table_column='{}', global_index={}, "
921
0
                        "type={}, column={}, column_size={}, expected_rows={}, error={}, "
922
0
                        "mapping={}",
923
0
                        idx, stage, mapping.table_column_name, mapping.global_index.value(),
924
0
                        mapping.table_type == nullptr ? "null" : mapping.table_type->get_name(),
925
0
                        column == nullptr ? "null" : column->get_name(),
926
0
                        column == nullptr ? 0 : column->size(), rows, e.to_string(),
927
0
                        mapping.debug_string());
928
0
                LOG(WARNING) << st;
929
0
                return st;
930
0
            } catch (const std::exception& e) {
931
0
                auto st = Status::InternalError(
932
0
                        "Invalid table block column {} at {}: table_column='{}', global_index={}, "
933
0
                        "type={}, column={}, column_size={}, expected_rows={}, error={}, "
934
0
                        "mapping={}",
935
0
                        idx, stage, mapping.table_column_name, mapping.global_index.value(),
936
0
                        mapping.table_type == nullptr ? "null" : mapping.table_type->get_name(),
937
0
                        column == nullptr ? "null" : column->get_name(),
938
0
                        column == nullptr ? 0 : column->size(), rows, e.what(),
939
0
                        mapping.debug_string());
940
0
                LOG(WARNING) << st;
941
0
                return st;
942
0
            }
943
171
        }
944
128
        return Status::OK();
945
128
    }
946
#endif
947
948
128
    Status _truncate_char_or_varchar_columns(Block* block) {
949
128
        DORIS_CHECK(block != nullptr);
950
128
        if (_runtime_state == nullptr ||
951
128
            !_runtime_state->query_options().truncate_char_or_varchar_columns) {
952
128
            return Status::OK();
953
128
        }
954
0
        DORIS_CHECK(block->columns() == _data_reader.column_mapper->mappings().size());
955
0
        for (size_t idx = 0; idx < _data_reader.column_mapper->mappings().size(); ++idx) {
956
0
            const auto& mapping = _data_reader.column_mapper->mappings()[idx];
957
0
            if (!_should_truncate_char_or_varchar_column(mapping)) {
958
0
                continue;
959
0
            }
960
0
            const auto target_len =
961
0
                    assert_cast<const DataTypeString*>(remove_nullable(mapping.table_type).get())
962
0
                            ->len();
963
0
            _truncate_char_or_varchar_column(block, idx, target_len);
964
0
        }
965
0
        return Status::OK();
966
128
    }
967
968
    // Return true when the table schema has a bounded CHAR/VARCHAR length that is stricter than
969
    // the file-side type. Examples:
970
    // - table VARCHAR(10), file VARCHAR(20): truncate to 10;
971
    // - table VARCHAR(10), file STRING: truncate to 10 because STRING has no declared bound;
972
    // - table STRING, any file type: no truncation because the target has no bound.
973
5
    static bool _should_truncate_char_or_varchar_column(const ColumnMapping& mapping) {
974
5
        if (mapping.table_type == nullptr) {
975
0
            return false;
976
0
        }
977
5
        const auto table_type = remove_nullable(mapping.table_type);
978
5
        const auto primitive_type = table_type->get_primitive_type();
979
5
        if (primitive_type != TYPE_VARCHAR && primitive_type != TYPE_CHAR) {
980
1
            return false;
981
1
        }
982
4
        const auto target_len = assert_cast<const DataTypeString*>(table_type.get())->len();
983
4
        if (target_len <= 0) {
984
0
            return false;
985
0
        }
986
4
        if (mapping.file_type == nullptr) {
987
0
            return true;
988
0
        }
989
4
        const auto file_type = remove_nullable(mapping.file_type);
990
4
        DORIS_CHECK(file_type != nullptr);
991
4
        int file_len = -1;
992
4
        if (file_type->get_primitive_type() == TYPE_VARCHAR ||
993
4
            file_type->get_primitive_type() == TYPE_CHAR ||
994
4
            file_type->get_primitive_type() == TYPE_STRING) {
995
3
            file_len = assert_cast<const DataTypeString*>(file_type.get())->len();
996
3
        }
997
998
4
        return file_len < 0 || target_len < file_len;
999
4
    }
1000
1001
    // Truncate a materialized CHAR/VARCHAR column in place by reusing the vectorized substring
1002
    // implementation: substring(column, 1, len). Nullable columns are unwrapped before substring
1003
    // execution and wrapped back with the original null map afterward, because substring operates
1004
    // on the nested string payload only.
1005
1
    static void _truncate_char_or_varchar_column(Block* block, size_t idx, int len) {
1006
1
        DORIS_CHECK(block != nullptr);
1007
1
        auto int_type = std::make_shared<DataTypeInt32>();
1008
1
        const auto num_columns_without_result = cast_set<uint32_t>(block->columns());
1009
1
        auto& target = block->get_by_position(idx);
1010
1
        const bool is_nullable = target.type->is_nullable();
1011
1
        ColumnPtr input_column = target.column;
1012
1
        ColumnPtr null_map_column;
1013
1
        if (is_nullable) {
1014
1
            const auto* nullable_column = assert_cast<const ColumnNullable*>(target.column.get());
1015
1
            input_column = nullable_column->get_nested_column_ptr();
1016
1
            null_map_column = nullable_column->get_null_map_column_ptr();
1017
1
        }
1018
1
        block->replace_by_position(idx, std::move(input_column));
1019
1
        block->insert({int_type->create_column_const(block->rows(), to_field<TYPE_INT>(1)),
1020
1
                       int_type, "const 1"});
1021
1
        block->insert({int_type->create_column_const(block->rows(), to_field<TYPE_INT>(len)),
1022
1
                       int_type, "const len"});
1023
1
        block->insert({nullptr, std::make_shared<DataTypeString>(), "result"});
1024
1025
1
        ColumnNumbers temp_arguments(3);
1026
1
        temp_arguments[0] = cast_set<uint32_t>(idx);
1027
1
        temp_arguments[1] = num_columns_without_result;
1028
1
        temp_arguments[2] = num_columns_without_result + 1;
1029
1
        const uint32_t result_column_id = num_columns_without_result + 2;
1030
1
        SubstringUtil::substring_execute(*block, temp_arguments, result_column_id, block->rows());
1031
1032
1
        ColumnPtr result_column = block->get_by_position(result_column_id).column;
1033
1
        if (is_nullable) {
1034
1
            result_column = ColumnNullable::create(std::move(result_column), null_map_column);
1035
1
        }
1036
1
        block->replace_by_position(idx, std::move(result_column));
1037
1
        block->erase_tail(num_columns_without_result);
1038
1
    }
1039
1040
149
    Status _try_materialize_aggregate_pushdown_rows(Block* block, bool* pushed_down) {
1041
149
        DORIS_CHECK(block != nullptr);
1042
149
        DORIS_CHECK(pushed_down != nullptr);
1043
149
        *pushed_down = false;
1044
149
        block->clear_column_data(_projected_columns.size());
1045
149
        _aggregate_pushdown_tried = true;
1046
149
        if (!_supports_aggregate_pushdown(_push_down_agg_type)) {
1047
136
            return Status::OK();
1048
136
        }
1049
1050
13
        FileAggregateRequest file_request;
1051
13
        RETURN_IF_ERROR(_build_file_aggregate_request(_push_down_agg_type, &file_request));
1052
13
        FileAggregateResult file_result;
1053
13
        Status status;
1054
13
        {
1055
13
            SCOPED_TIMER(_profile.file_reader_total_timer);
1056
13
            SCOPED_TIMER(_profile.file_reader_aggregate_timer);
1057
13
            status = _data_reader.reader->get_aggregate_result(file_request, &file_result);
1058
13
        }
1059
13
        if (status.is<ErrorCode::NOT_IMPLEMENTED_ERROR>()) {
1060
1
            return Status::OK();
1061
1
        }
1062
12
        RETURN_IF_ERROR(status);
1063
11
        if (_push_down_agg_type == TPushAggOp::type::COUNT) {
1064
8
            DORIS_CHECK(file_result.count >= 0);
1065
            // The upper aggregate consumes synthetic input rows, but emitting the whole metadata
1066
            // count in one block bypasses the runtime batch contract and can allocate by file size.
1067
            // Keep the remaining cardinality as split state and expose at most one batch per call.
1068
8
            _remaining_file_level_count = file_result.count;
1069
8
            _current_split_uses_metadata_count = true;
1070
8
            if (_remaining_file_level_count > 0) {
1071
8
                RETURN_IF_ERROR(_materialize_next_count_batch(&_remaining_file_level_count, block));
1072
8
            }
1073
8
        } else {
1074
3
            RETURN_IF_ERROR(
1075
3
                    _materialize_aggregate_pushdown_rows(_push_down_agg_type, file_result, block));
1076
3
        }
1077
11
        *pushed_down = true;
1078
11
        RETURN_IF_ERROR(close_current_reader());
1079
11
        return Status::OK();
1080
11
    }
1081
1082
162
    virtual bool _supports_aggregate_pushdown(TPushAggOp::type agg_type) const {
1083
        // Only COUNT and MIN/MAX can be push down.
1084
162
        if (agg_type != TPushAggOp::type::COUNT && agg_type != TPushAggOp::type::MINMAX) {
1085
116
            return false;
1086
116
        }
1087
        // Aggregate pushdown returns reduced synthetic rows and may close the physical reader
1088
        // before the next scheduler turn. If a runtime filter is still pending, those rows could
1089
        // escape before the filter arrives and cannot later be reconstructed from real file rows.
1090
        // This is the same irreversibility constraint as table-level metadata COUNT, and applies
1091
        // to COUNT and MIN/MAX for Parquet/ORC as well as COUNT for text readers.
1092
46
        if (!_all_runtime_filters_applied_for_split) {
1093
3
            return false;
1094
3
        }
1095
        // Scanner owns the original conjunct list and evaluates it after TableReader finalizes
1096
        // rows. Even a slotless conjunct that cannot become a TableFilter must see every source
1097
        // row before an aggregate reduces the stream to synthetic COUNT/MINMAX rows.
1098
43
        if (!_conjuncts.empty()) {
1099
5
            return false;
1100
5
        }
1101
        // Only support aggregate pushdown when there is no delete or filter, so
1102
        // the reduced rows consumed by the upper aggregate remain semantically equivalent to a
1103
        // normal scan.
1104
38
        if ((_delete_rows != nullptr && !_delete_rows->empty()) ||
1105
38
            (_deletion_vector != nullptr && !_deletion_vector->isEmpty())) {
1106
3
            return false;
1107
3
        }
1108
35
        if (!_table_filters.empty()) {
1109
0
            return false;
1110
0
        }
1111
35
        if (agg_type == TPushAggOp::type::COUNT) {
1112
            // Old FEs do not serialize push_down_count_slot_ids. During the supported BE-first
1113
            // rolling upgrade, nullopt therefore means "COUNT semantics are unknown", not
1114
            // COUNT(*). Fall back to reading rows until the FE explicitly sends either an empty
1115
            // list for COUNT(*) or one slot for COUNT(col).
1116
24
            if (!_push_down_count_columns.has_value()) {
1117
3
                return false;
1118
3
            }
1119
            // COUNT(*) needs no column metadata. COUNT(col) currently supports one direct file
1120
            // column; multiple COUNT arguments fall back to the normal scan so every upper
1121
            // aggregate receives the original rows.
1122
21
            if (_push_down_count_columns->empty()) {
1123
10
                return true;
1124
10
            }
1125
11
            if (_push_down_count_columns->size() != 1) {
1126
1
                return false;
1127
1
            }
1128
10
            const auto& mapping = _push_down_count_mapping();
1129
            // Metadata COUNT skips TableReader's normal materialization path. Only a trivial
1130
            // mapping is safe: for example, a nullable Parquet INT mapped to a NOT NULL table
1131
            // BIGINT normally needs both an INT->BIGINT cast and nullability validation. Counting
1132
            // footer values directly would bypass both operations and could hide invalid data.
1133
10
            return mapping.file_local_id.has_value() && mapping.file_type != nullptr &&
1134
10
                   mapping.table_type != nullptr && mapping.is_trivial &&
1135
10
                   mapping.virtual_column_type == TableVirtualColumnType::INVALID &&
1136
10
                   mapping.default_expr == nullptr;
1137
11
        }
1138
        // For MIN/MAX, only support direct file-to-table column mappings. The two emitted rows
1139
        // must be enough for the upper MIN/MAX aggregate without evaluating default expressions or
1140
        // virtual columns.
1141
13
        for (const auto& mapping : _data_reader.column_mapper->mappings()) {
1142
13
            if (!mapping.file_local_id.has_value() ||
1143
13
                mapping.virtual_column_type != TableVirtualColumnType::INVALID ||
1144
13
                mapping.default_expr != nullptr || mapping.file_type == nullptr ||
1145
13
                mapping.table_type == nullptr) {
1146
1
                return false;
1147
1
            }
1148
12
            if (!_can_push_down_minmax_for_mapping(mapping)) {
1149
2
                return false;
1150
2
            }
1151
12
        }
1152
8
        return true;
1153
11
    }
1154
1155
190
    static ColumnPtr _detach_column(ColumnPtr column) {
1156
190
        DORIS_CHECK(column.get() != nullptr);
1157
190
        return IColumn::mutate(std::move(column));
1158
190
    }
1159
1160
118
    static ColumnPtr _take_and_detach_block_column(Block* block, int position) {
1161
118
        DORIS_CHECK(block != nullptr);
1162
118
        DORIS_CHECK(position >= 0 && position < static_cast<int>(block->columns()));
1163
118
        auto& source = block->get_by_position(position);
1164
118
        ColumnPtr column = source.column;
1165
        // The final mapping no longer needs the file block. Release its COW owner before mutate(),
1166
        // otherwise nested MAP/STRING columns are deep-copied and a multi-GB payload can OOM.
1167
118
        block->replace_by_position(position, source.type->create_column());
1168
118
        return _detach_column(std::move(column));
1169
118
    }
1170
1171
    static Status _align_column_nullability(ColumnPtr* column, const DataTypePtr& table_type,
1172
211
                                            const NullMap* nullable_parent_null_map = nullptr) {
1173
211
        DORIS_CHECK(column != nullptr);
1174
211
        DORIS_CHECK(column->get() != nullptr);
1175
211
        DORIS_CHECK(table_type != nullptr);
1176
        // Must return non-const column
1177
211
        *column = (*column)->convert_to_full_column_if_const();
1178
211
        if (table_type->is_nullable()) {
1179
84
            const auto& nested_type =
1180
84
                    assert_cast<const DataTypeNullable&>(*table_type).get_nested_type();
1181
84
            if (!(*column)->is_nullable()) {
1182
2
                RETURN_IF_ERROR(
1183
2
                        _align_column_nullability(column, nested_type, nullable_parent_null_map));
1184
2
                *column = make_nullable(*column);
1185
2
                return Status::OK();
1186
2
            }
1187
82
            const auto& nullable_column = assert_cast<const ColumnNullable&>(**column);
1188
82
            ColumnPtr nested_column = nullable_column.get_nested_column_ptr();
1189
82
            NullMap combined_null_map;
1190
82
            const NullMap* nested_parent_null_map = &nullable_column.get_null_map_data();
1191
82
            if (nullable_parent_null_map != nullptr) {
1192
49
                const auto& own_null_map = nullable_column.get_null_map_data();
1193
49
                DORIS_CHECK(nullable_parent_null_map->size() == own_null_map.size());
1194
                // Required descendants are hidden when either this nullable container or any
1195
                // inherited nullable ancestor masks the row, so preserve the union recursively.
1196
49
                combined_null_map.resize(own_null_map.size());
1197
169
                for (size_t i = 0; i < own_null_map.size(); ++i) {
1198
120
                    combined_null_map[i] = own_null_map[i] || (*nullable_parent_null_map)[i];
1199
120
                }
1200
49
                nested_parent_null_map = &combined_null_map;
1201
49
            }
1202
82
            RETURN_IF_ERROR(
1203
82
                    _align_column_nullability(&nested_column, nested_type, nested_parent_null_map));
1204
82
            *column = ColumnNullable::create(nested_column,
1205
82
                                             nullable_column.get_null_map_column_ptr());
1206
82
            return Status::OK();
1207
82
        }
1208
127
        if ((*column)->is_nullable()) {
1209
13
            const auto& nullable_column = assert_cast<const ColumnNullable&>(**column);
1210
13
            if (nullable_column.has_null()) {
1211
8
                const auto& null_map = nullable_column.get_null_map_data();
1212
8
                if (nullable_parent_null_map == nullptr ||
1213
8
                    nullable_parent_null_map->size() != null_map.size()) {
1214
1
                    return Status::InternalError(
1215
1
                            "Default expression produced NULL for non-nullable table column");
1216
1
                }
1217
20
                for (size_t i = 0; i < null_map.size(); ++i) {
1218
                    // A required child may contain a physical NULL placeholder only when its
1219
                    // nullable parent masks that row from the logical value.
1220
14
                    if (null_map[i] && !(*nullable_parent_null_map)[i]) {
1221
1
                        return Status::InternalError(
1222
1
                                "Default expression produced NULL for non-nullable table column");
1223
1
                    }
1224
14
                }
1225
7
            }
1226
11
            ColumnPtr nested_column = nullable_column.get_nested_column_ptr();
1227
11
            RETURN_IF_ERROR(_align_column_nullability(&nested_column, table_type,
1228
11
                                                      nullable_parent_null_map));
1229
11
            *column = nested_column;
1230
11
            return Status::OK();
1231
11
        }
1232
114
        if (const auto* array_type = typeid_cast<const DataTypeArray*>(table_type.get())) {
1233
2
            const auto& array_column = assert_cast<const ColumnArray&>(**column);
1234
2
            ColumnPtr nested_column = array_column.get_data_ptr();
1235
2
            NullMap descendant_parent_null_map;
1236
            // Collection entries use offset coordinates, so inherited row masks must be projected
1237
            // only when a required descendant can consume them. This avoids scratch proportional
1238
            // to all array entries for the common all-required schema.
1239
2
            const NullMap* descendant_parent_null_map_ptr = nullptr;
1240
2
            if (_requires_collection_parent_null_map(
1241
2
                        nullable_parent_null_map, nested_column, array_type->get_nested_type(),
1242
2
                        array_column.size(), array_column.get_offsets())) {
1243
1
                descendant_parent_null_map_ptr =
1244
1
                        _project_collection_parent_null_map_for_hidden_entries(
1245
1
                                nullptr, nullable_parent_null_map, array_column.size(),
1246
1
                                array_column.get_offsets(), nested_column->size(),
1247
1
                                &descendant_parent_null_map);
1248
1
            }
1249
2
            RETURN_IF_ERROR(_align_column_nullability(&nested_column, array_type->get_nested_type(),
1250
2
                                                      descendant_parent_null_map_ptr));
1251
2
            *column = ColumnArray::create(nested_column, array_column.get_offsets_ptr());
1252
2
            return Status::OK();
1253
2
        }
1254
112
        if (const auto* map_type = typeid_cast<const DataTypeMap*>(table_type.get())) {
1255
1
            const auto& map_column = assert_cast<const ColumnMap&>(**column);
1256
1
            ColumnPtr key_column = map_column.get_keys_ptr();
1257
1
            ColumnPtr value_column = map_column.get_values_ptr();
1258
1
            NullMap descendant_parent_null_map;
1259
1
            const NullMap* descendant_parent_null_map_ptr = nullptr;
1260
1
            if (_requires_collection_parent_null_map(nullable_parent_null_map, key_column,
1261
1
                                                     map_type->get_key_type(), map_column.size(),
1262
1
                                                     map_column.get_offsets()) ||
1263
1
                _requires_collection_parent_null_map(nullable_parent_null_map, value_column,
1264
1
                                                     map_type->get_value_type(), map_column.size(),
1265
1
                                                     map_column.get_offsets())) {
1266
                // Keys and values share offsets, so one projected mask safely covers both streams.
1267
0
                descendant_parent_null_map_ptr =
1268
0
                        _project_collection_parent_null_map_for_hidden_entries(
1269
0
                                nullptr, nullable_parent_null_map, map_column.size(),
1270
0
                                map_column.get_offsets(), key_column->size(),
1271
0
                                &descendant_parent_null_map);
1272
0
            }
1273
1
            RETURN_IF_ERROR(_align_column_nullability(&key_column, map_type->get_key_type(),
1274
1
                                                      descendant_parent_null_map_ptr));
1275
1
            RETURN_IF_ERROR(_align_column_nullability(&value_column, map_type->get_value_type(),
1276
1
                                                      descendant_parent_null_map_ptr));
1277
1
            *column = ColumnMap::create(key_column, value_column, map_column.get_offsets_ptr());
1278
1
            return Status::OK();
1279
1
        }
1280
111
        if (const auto* struct_type = typeid_cast<const DataTypeStruct*>(table_type.get())) {
1281
13
            const auto& struct_column = assert_cast<const ColumnStruct&>(**column);
1282
13
            Columns columns = struct_column.get_columns_copy();
1283
13
            DORIS_CHECK(columns.size() == struct_type->get_elements().size());
1284
38
            for (size_t i = 0; i < columns.size(); ++i) {
1285
25
                RETURN_IF_ERROR(_align_column_nullability(&columns[i], struct_type->get_element(i),
1286
25
                                                          nullable_parent_null_map));
1287
25
            }
1288
13
            *column = ColumnStruct::create(columns);
1289
13
            return Status::OK();
1290
13
        }
1291
98
        return Status::OK();
1292
111
    }
1293
1294
    static Status _execute_default_expr_without_root_type_check(
1295
            const VExprContextSPtr& default_expr, const Block* block,
1296
16
            ColumnWithTypeAndName* result_data) {
1297
16
        DORIS_CHECK(default_expr != nullptr);
1298
16
        DORIS_CHECK(block != nullptr);
1299
16
        DORIS_CHECK(result_data != nullptr);
1300
16
        ColumnPtr result_column;
1301
16
        Status st;
1302
16
        RETURN_IF_CATCH_EXCEPTION({
1303
16
            st = default_expr->root()->execute_column_impl(default_expr.get(), block, nullptr,
1304
16
                                                           block->rows(), result_column);
1305
16
        });
1306
16
        RETURN_IF_ERROR(st);
1307
16
        DORIS_CHECK(result_column.get() != nullptr);
1308
16
        if (result_column->size() != block->rows()) {
1309
0
            return Status::InternalError(
1310
0
                    "Default expr {} return column size {} not equal to expected size {}",
1311
0
                    default_expr->expr_name(), result_column->size(), block->rows());
1312
0
        }
1313
16
        result_data->column = result_column;
1314
16
        result_data->type = default_expr->execute_type(block);
1315
16
        result_data->name = default_expr->expr_name();
1316
16
        return Status::OK();
1317
16
    }
1318
1319
    Status _cast_column_to_type(ColumnPtr* column, const DataTypePtr& file_type,
1320
                                const DataTypePtr& table_type,
1321
13
                                const std::string& column_name) const {
1322
13
        DORIS_CHECK(column != nullptr);
1323
13
        DORIS_CHECK(column->get() != nullptr);
1324
13
        DORIS_CHECK(file_type != nullptr);
1325
13
        DORIS_CHECK(table_type != nullptr);
1326
13
        if (file_type->equals(*table_type) ||
1327
13
            remove_nullable(file_type)->equals(*remove_nullable(table_type))) {
1328
5
            return Status::OK();
1329
5
        }
1330
1331
8
        DataTypePtr input_type = file_type;
1332
        // Cast wrappers unwrap nullable inputs according to the declared input type, so keep the
1333
        // root nullability of the declared input aligned with the actual column shape. When the
1334
        // runtime column is nullable, also keep the cast target nullable; the caller applies the
1335
        // table's final nullability after value conversion. Casting a nullable runtime column
1336
        // directly to a non-nullable target would pass ColumnNullable to CastToImpl.
1337
8
        if ((*column)->is_nullable() && !input_type->is_nullable()) {
1338
0
            input_type = make_nullable(input_type);
1339
8
        } else if (!(*column)->is_nullable() && input_type->is_nullable()) {
1340
1
            input_type = remove_nullable(input_type);
1341
1
        }
1342
8
        DataTypePtr cast_type = table_type;
1343
8
        if ((*column)->is_nullable() && !cast_type->is_nullable()) {
1344
7
            cast_type = make_nullable(cast_type);
1345
7
        }
1346
8
        Block cast_block;
1347
8
        cast_block.insert({*column, input_type, column_name});
1348
8
        auto slot_ref = VSlotRef::create_shared(0, 0, -1, input_type, column_name);
1349
8
        auto cast_expr = Cast::create_shared(cast_type);
1350
8
        cast_expr->add_child(std::move(slot_ref));
1351
8
        auto cast_ctx = VExprContext::create_shared(std::move(cast_expr));
1352
8
        RowDescriptor row_desc;
1353
8
        RETURN_IF_ERROR(cast_ctx->prepare(_runtime_state, row_desc));
1354
8
        RETURN_IF_ERROR(cast_ctx->open(_runtime_state));
1355
8
        ColumnPtr cast_column;
1356
8
        RETURN_IF_ERROR(cast_ctx->execute(&cast_block, cast_column));
1357
8
        *column = std::move(cast_column);
1358
8
        return Status::OK();
1359
8
    }
1360
1361
    Status _try_materialize_scalar_cast_with_runtime_nullability(const ColumnMapping& mapping,
1362
                                                                 const Block* current_block,
1363
                                                                 ColumnPtr* column,
1364
168
                                                                 bool* handled) const {
1365
168
        DORIS_CHECK(column != nullptr);
1366
168
        DORIS_CHECK(handled != nullptr);
1367
168
        *handled = false;
1368
168
        if (mapping.projection == nullptr || !mapping.file_local_id.has_value() ||
1369
168
            !mapping.child_mappings.empty()) {
1370
33
            return Status::OK();
1371
33
        }
1372
1373
135
        const auto& root = mapping.projection->root();
1374
135
        if (root == nullptr || root->node_type() != TExprNodeType::CAST_EXPR) {
1375
126
            return Status::OK();
1376
126
        }
1377
9
        DORIS_CHECK(root->get_num_children() == 1);
1378
9
        const auto* slot = dynamic_cast<const VSlotRef*>(root->get_child(0).get());
1379
9
        DORIS_CHECK(slot != nullptr);
1380
9
        DORIS_CHECK(current_block != nullptr);
1381
9
        DORIS_CHECK(slot->column_id() >= 0);
1382
9
        DORIS_CHECK(cast_set<size_t>(slot->column_id()) < current_block->columns());
1383
9
        const auto& source = current_block->get_by_position(slot->column_id());
1384
9
        DORIS_CHECK(source.column.get() != nullptr);
1385
9
        DORIS_CHECK(slot->data_type() != nullptr);
1386
9
        DORIS_CHECK(mapping.table_type != nullptr);
1387
9
        const bool runtime_input_mismatch =
1388
9
                source.column->is_nullable() != slot->data_type()->is_nullable();
1389
9
        const bool nullable_input_to_required_table =
1390
9
                source.column->is_nullable() && !mapping.table_type->is_nullable();
1391
9
        if (!runtime_input_mismatch && !nullable_input_to_required_table) {
1392
4
            return Status::OK();
1393
4
        }
1394
1395
        // File readers can return a nullable runtime column even when the physical schema marks the
1396
        // leaf required. A pre-built Cast binds to the declared file type and can therefore pass a
1397
        // ColumnNullable to a non-nullable CastToImpl. Rebuild only when that runtime shape differs
1398
        // from the declared input, or when a declared nullable file field maps to a required table
1399
        // field. Keep the cast target nullable while converting values, then let
1400
        // _align_column_nullability() reject an actual NULL before removing the wrapper.
1401
5
        ColumnPtr result_column = source.column;
1402
5
        RETURN_IF_ERROR(_cast_column_to_type(&result_column, slot->data_type(), mapping.table_type,
1403
5
                                             mapping.file_column_name));
1404
5
        RETURN_IF_ERROR(_align_column_nullability(&result_column, mapping.table_type));
1405
4
        *column = _detach_column(std::move(result_column));
1406
4
        *handled = true;
1407
4
        return Status::OK();
1408
5
    }
1409
1410
    Status _materialize_present_child_mapping_column(
1411
            const ColumnMapping& mapping, const ColumnPtr& file_column, const size_t rows,
1412
43
            ColumnPtr* column, const NullMap* nullable_parent_null_map = nullptr) {
1413
43
        DORIS_CHECK(column != nullptr);
1414
43
        DORIS_CHECK(mapping.file_type != nullptr);
1415
43
        DORIS_CHECK(mapping.table_type != nullptr);
1416
43
        *column = file_column;
1417
43
        if (!mapping.is_trivial) {
1418
18
            if (!mapping.child_mappings.empty()) {
1419
12
                RETURN_IF_ERROR(_materialize_complex_mapping_column(mapping, *column, rows, column,
1420
12
                                                                    nullable_parent_null_map));
1421
12
            } else {
1422
6
                RETURN_IF_ERROR(_cast_column_to_type(column, mapping.file_type, mapping.table_type,
1423
6
                                                     mapping.file_column_name));
1424
6
            }
1425
18
        }
1426
43
        RETURN_IF_ERROR(
1427
43
                _align_column_nullability(column, mapping.table_type, nullable_parent_null_map));
1428
42
        return Status::OK();
1429
43
    }
1430
1431
    Status _materialize_default_or_missing_column(
1432
            const ColumnMapping& mapping, const Block* current_block, const size_t rows,
1433
36
            ColumnPtr* column, const NullMap* nullable_parent_null_map = nullptr) {
1434
36
        DORIS_CHECK(mapping.table_type != nullptr);
1435
36
        DORIS_CHECK(column != nullptr);
1436
36
        if (mapping.default_expr != nullptr) {
1437
16
            Block synthetic_block;
1438
16
            const Block* eval_block = current_block;
1439
16
            if (eval_block == nullptr || eval_block->rows() != rows) {
1440
                // Nested ARRAY/MAP children use element/entry cardinality rather than the root
1441
                // block's row count. Iceberg initial defaults are typed literals, so a synthetic
1442
                // block with the desired row count is sufficient and avoids a top-level
1443
                // ConstantMap dependency for nested mappings.
1444
14
                synthetic_block.insert(
1445
14
                        {mapping.table_type->create_column_const_with_default_value(rows),
1446
14
                         mapping.table_type, "__table_reader_nested_default_rows"});
1447
14
                eval_block = &synthetic_block;
1448
14
            }
1449
16
            ColumnWithTypeAndName result;
1450
16
            RETURN_IF_ERROR(_execute_default_expr_without_root_type_check(mapping.default_expr,
1451
16
                                                                          eval_block, &result));
1452
16
            ColumnPtr result_column = result.column;
1453
16
            RETURN_IF_ERROR(_align_column_nullability(&result_column, mapping.table_type,
1454
16
                                                      nullable_parent_null_map));
1455
16
            *column = _detach_column(std::move(result_column));
1456
16
            return Status::OK();
1457
16
        }
1458
20
        ColumnPtr result_column = mapping.table_type->create_column_const_with_default_value(rows);
1459
20
        RETURN_IF_ERROR(_align_column_nullability(&result_column, mapping.table_type,
1460
20
                                                  nullable_parent_null_map));
1461
20
        *column = _detach_column(std::move(result_column));
1462
20
        return Status::OK();
1463
20
    }
1464
1465
    Status _materialize_mapping_column(const ColumnMapping& mapping, Block* current_block,
1466
                                       const size_t rows, ColumnPtr* column,
1467
180
                                       bool take_projection_result = false) {
1468
180
        if (!mapping.is_trivial && mapping.file_local_id.has_value() &&
1469
180
            !mapping.child_mappings.empty()) {
1470
12
            DCHECK(mapping.projection != nullptr);
1471
12
            int res_id;
1472
12
            auto st = mapping.projection->execute(current_block, &res_id);
1473
12
            if (!st.ok()) {
1474
0
                return Status::InternalError(
1475
0
                        "Failed to execute complex mapping projection for table column '{}' "
1476
0
                        "(global_index={}, file_local_id={}, rows={}): {}, mapping={}",
1477
0
                        mapping.table_column_name, mapping.global_index.value(),
1478
0
                        *mapping.file_local_id, rows, st.to_string(), mapping.debug_string());
1479
0
            }
1480
12
            ColumnPtr result_column = take_projection_result
1481
12
                                              ? _take_and_detach_block_column(current_block, res_id)
1482
12
                                              : current_block->get_by_position(res_id).column;
1483
12
            RETURN_IF_ERROR(
1484
12
                    _materialize_complex_mapping_column(mapping, result_column, rows, column));
1485
12
            return Status::OK();
1486
12
        }
1487
168
        bool runtime_nullability_cast_handled = false;
1488
168
        RETURN_IF_ERROR(_try_materialize_scalar_cast_with_runtime_nullability(
1489
168
                mapping, current_block, column, &runtime_nullability_cast_handled));
1490
167
        if (runtime_nullability_cast_handled) {
1491
4
            return Status::OK();
1492
4
        }
1493
163
        if (mapping.projection != nullptr) {
1494
140
            int res_id;
1495
140
            auto st = mapping.projection->execute(current_block, &res_id);
1496
140
            if (!st.ok()) {
1497
0
                std::string file_local_id = "null";
1498
0
                if (mapping.file_local_id.has_value()) {
1499
0
                    file_local_id = std::to_string(*mapping.file_local_id);
1500
0
                }
1501
0
                return Status::InternalError(
1502
0
                        "Failed to execute mapping projection for table column '{}' "
1503
0
                        "(global_index={}, file_local_id={}, rows={}): {}, mapping={}",
1504
0
                        mapping.table_column_name, mapping.global_index.value(), file_local_id,
1505
0
                        rows, st.to_string(), mapping.debug_string());
1506
0
            }
1507
140
            if (take_projection_result) {
1508
108
                *column = _take_and_detach_block_column(current_block, res_id);
1509
108
            } else {
1510
32
                ColumnPtr result_column = current_block->get_by_position(res_id).column;
1511
32
                *column = _detach_column(std::move(result_column));
1512
32
            }
1513
140
            return Status::OK();
1514
140
        }
1515
23
        return _materialize_default_or_missing_column(mapping, current_block, rows, column);
1516
163
    }
1517
1518
    Status _materialize_complex_mapping_column(const ColumnMapping& mapping,
1519
                                               const ColumnPtr& file_column, const size_t rows,
1520
                                               ColumnPtr* column,
1521
24
                                               const NullMap* nullable_parent_null_map = nullptr) {
1522
24
        DORIS_CHECK(mapping.table_type != nullptr);
1523
24
        DORIS_CHECK(file_column.get() != nullptr);
1524
24
        const auto table_type = remove_nullable(mapping.table_type);
1525
24
        switch (table_type->get_primitive_type()) {
1526
18
        case TYPE_STRUCT:
1527
18
            RETURN_IF_ERROR(_materialize_struct_mapping_column(mapping, file_column, rows, column,
1528
18
                                                               nullable_parent_null_map));
1529
18
            break;
1530
18
        case TYPE_ARRAY:
1531
3
            RETURN_IF_ERROR(_materialize_array_mapping_column(mapping, file_column, rows, column,
1532
3
                                                              nullable_parent_null_map));
1533
3
            break;
1534
3
        case TYPE_MAP:
1535
3
            RETURN_IF_ERROR(_materialize_map_mapping_column(mapping, file_column, rows, column,
1536
3
                                                            nullable_parent_null_map));
1537
3
            break;
1538
3
        default:
1539
0
            *column = _detach_column(file_column);
1540
0
            break;
1541
24
        }
1542
24
        return Status::OK();
1543
24
    }
1544
1545
    static std::vector<const ColumnMapping*> _present_child_mappings_in_file_order(
1546
23
            const std::vector<ColumnMapping>& child_mappings) {
1547
23
        std::vector<const ColumnMapping*> result;
1548
23
        result.reserve(child_mappings.size());
1549
39
        for (const auto& child_mapping : child_mappings) {
1550
39
            if (child_mapping.file_local_id.has_value()) {
1551
26
                result.push_back(&child_mapping);
1552
26
            }
1553
39
        }
1554
23
        std::ranges::sort(result, [](const ColumnMapping* lhs, const ColumnMapping* rhs) {
1555
8
            DORIS_CHECK(lhs->file_local_id.has_value());
1556
8
            DORIS_CHECK(rhs->file_local_id.has_value());
1557
8
            return *lhs->file_local_id < *rhs->file_local_id;
1558
8
        });
1559
23
        return result;
1560
23
    }
1561
1562
    static size_t _file_child_ordinal_for_mapping(
1563
            const ColumnMapping& mapping, const ColumnMapping& child_mapping,
1564
26
            const std::vector<const ColumnMapping*>& file_ordered_children) {
1565
26
        DORIS_CHECK(child_mapping.file_local_id.has_value());
1566
26
        if (!mapping.projected_file_children.empty()) {
1567
15
            const auto child_it = std::ranges::find_if(
1568
19
                    mapping.projected_file_children, [&](const ColumnDefinition& file_child) {
1569
19
                        return file_child.file_local_id() == *child_mapping.file_local_id;
1570
19
                    });
1571
15
            DORIS_CHECK(child_it != mapping.projected_file_children.end());
1572
15
            return static_cast<size_t>(
1573
15
                    std::distance(mapping.projected_file_children.begin(), child_it));
1574
15
        }
1575
11
        const auto child_it = std::ranges::find(file_ordered_children, &child_mapping);
1576
11
        DORIS_CHECK(child_it != file_ordered_children.end());
1577
11
        return static_cast<size_t>(std::distance(file_ordered_children.begin(), child_it));
1578
26
    }
1579
1580
    static std::vector<const ColumnMapping*> _child_mappings_in_table_type_order(
1581
23
            const ColumnMapping& mapping, const DataTypeStruct& table_type) {
1582
23
        std::vector<const ColumnMapping*> result;
1583
23
        result.reserve(mapping.child_mappings.size());
1584
62
        for (size_t child_idx = 0; child_idx < table_type.get_elements().size(); ++child_idx) {
1585
39
            const auto& child_name = table_type.get_element_name(child_idx);
1586
39
            const auto child_it = std::ranges::find_if(
1587
58
                    mapping.child_mappings, [&](const ColumnMapping& child_mapping) {
1588
58
                        return child_mapping.table_column_name == child_name;
1589
58
                    });
1590
39
            DORIS_CHECK(child_it != mapping.child_mappings.end())
1591
0
                    << mapping.debug_string() << ", table_child_name=" << child_name;
1592
39
            result.push_back(&*child_it);
1593
39
        }
1594
23
        return result;
1595
23
    }
1596
1597
    static const IColumn* _nested_column_if_nullable(const ColumnPtr& column,
1598
37
                                                     const NullMap** null_map) {
1599
37
        DORIS_CHECK(column.get() != nullptr);
1600
37
        if (const auto* nullable_column = check_and_get_column<ColumnNullable>(*column)) {
1601
33
            if (null_map != nullptr) {
1602
33
                *null_map = &nullable_column->get_null_map_data();
1603
33
            }
1604
33
            return &nullable_column->get_nested_column();
1605
33
        }
1606
4
        return column.get();
1607
37
    }
1608
1609
    static bool _requires_parent_null_map_for_alignment(const ColumnPtr& column,
1610
5
                                                        const DataTypePtr& table_type) {
1611
5
        DORIS_CHECK(column.get() != nullptr);
1612
5
        DORIS_CHECK(table_type != nullptr);
1613
5
        if (table_type->is_nullable()) {
1614
0
            const auto& nested_type =
1615
0
                    assert_cast<const DataTypeNullable&>(*table_type).get_nested_type();
1616
0
            if (const auto* nullable_column = check_and_get_column<ColumnNullable>(*column)) {
1617
0
                return _requires_parent_null_map_for_alignment(
1618
0
                        nullable_column->get_nested_column_ptr(), nested_type);
1619
0
            }
1620
0
            return _requires_parent_null_map_for_alignment(column, nested_type);
1621
0
        }
1622
5
        if (const auto* nullable_column = check_and_get_column<ColumnNullable>(*column)) {
1623
3
            if (nullable_column->has_null()) {
1624
2
                return true;
1625
2
            }
1626
1
            return _requires_parent_null_map_for_alignment(nullable_column->get_nested_column_ptr(),
1627
1
                                                           table_type);
1628
3
        }
1629
2
        if (const auto* array_type = typeid_cast<const DataTypeArray*>(table_type.get())) {
1630
0
            const auto& array_column = assert_cast<const ColumnArray&>(*column);
1631
0
            return _requires_parent_null_map_for_alignment(array_column.get_data_ptr(),
1632
0
                                                           array_type->get_nested_type());
1633
0
        }
1634
2
        if (const auto* map_type = typeid_cast<const DataTypeMap*>(table_type.get())) {
1635
0
            const auto& map_column = assert_cast<const ColumnMap&>(*column);
1636
0
            return _requires_parent_null_map_for_alignment(map_column.get_keys_ptr(),
1637
0
                                                           map_type->get_key_type()) ||
1638
0
                   _requires_parent_null_map_for_alignment(map_column.get_values_ptr(),
1639
0
                                                           map_type->get_value_type());
1640
0
        }
1641
2
        if (const auto* struct_type = typeid_cast<const DataTypeStruct*>(table_type.get())) {
1642
0
            const auto& struct_column = assert_cast<const ColumnStruct&>(*column);
1643
0
            DORIS_CHECK(struct_column.tuple_size() == struct_type->get_elements().size());
1644
0
            for (size_t i = 0; i < struct_column.tuple_size(); ++i) {
1645
0
                if (_requires_parent_null_map_for_alignment(struct_column.get_column_ptr(i),
1646
0
                                                            struct_type->get_element(i))) {
1647
0
                    return true;
1648
0
                }
1649
0
            }
1650
0
        }
1651
2
        return false;
1652
2
    }
1653
1654
    static bool _requires_parent_null_map_for_alignment_at(const ColumnPtr& column,
1655
                                                           const DataTypePtr& table_type,
1656
17
                                                           const size_t row) {
1657
17
        DORIS_CHECK(column.get() != nullptr);
1658
17
        DORIS_CHECK(table_type != nullptr);
1659
17
        DORIS_CHECK(row < column->size());
1660
17
        if (table_type->is_nullable()) {
1661
5
            const auto& nested_type =
1662
5
                    assert_cast<const DataTypeNullable&>(*table_type).get_nested_type();
1663
5
            if (const auto* nullable_column = check_and_get_column<ColumnNullable>(*column)) {
1664
                // A nearer nullable wrapper already protects its descendants at this entry, so an
1665
                // inherited collection mask cannot be needed there.
1666
5
                if (nullable_column->is_null_at(row)) {
1667
0
                    return false;
1668
0
                }
1669
5
                return _requires_parent_null_map_for_alignment_at(
1670
5
                        nullable_column->get_nested_column_ptr(), nested_type, row);
1671
5
            }
1672
0
            return _requires_parent_null_map_for_alignment_at(column, nested_type, row);
1673
5
        }
1674
12
        if (const auto* nullable_column = check_and_get_column<ColumnNullable>(*column)) {
1675
4
            if (nullable_column->is_null_at(row)) {
1676
2
                return true;
1677
2
            }
1678
2
            return _requires_parent_null_map_for_alignment_at(
1679
2
                    nullable_column->get_nested_column_ptr(), table_type, row);
1680
4
        }
1681
8
        if (const auto* array_type = typeid_cast<const DataTypeArray*>(table_type.get())) {
1682
0
            const auto& array_column = assert_cast<const ColumnArray&>(*column);
1683
0
            const auto& offsets = array_column.get_offsets();
1684
0
            const size_t begin = row == 0 ? 0 : offsets[row - 1];
1685
0
            const size_t end = offsets[row];
1686
0
            for (size_t child_row = begin; child_row < end; ++child_row) {
1687
0
                if (_requires_parent_null_map_for_alignment_at(array_column.get_data_ptr(),
1688
0
                                                               array_type->get_nested_type(),
1689
0
                                                               child_row)) {
1690
0
                    return true;
1691
0
                }
1692
0
            }
1693
0
            return false;
1694
0
        }
1695
8
        if (const auto* map_type = typeid_cast<const DataTypeMap*>(table_type.get())) {
1696
0
            const auto& map_column = assert_cast<const ColumnMap&>(*column);
1697
0
            const auto& offsets = map_column.get_offsets();
1698
0
            const size_t begin = row == 0 ? 0 : offsets[row - 1];
1699
0
            const size_t end = offsets[row];
1700
0
            for (size_t child_row = begin; child_row < end; ++child_row) {
1701
0
                if (_requires_parent_null_map_for_alignment_at(
1702
0
                            map_column.get_keys_ptr(), map_type->get_key_type(), child_row) ||
1703
0
                    _requires_parent_null_map_for_alignment_at(
1704
0
                            map_column.get_values_ptr(), map_type->get_value_type(), child_row)) {
1705
0
                    return true;
1706
0
                }
1707
0
            }
1708
0
            return false;
1709
0
        }
1710
8
        if (const auto* struct_type = typeid_cast<const DataTypeStruct*>(table_type.get())) {
1711
4
            const auto& struct_column = assert_cast<const ColumnStruct&>(*column);
1712
4
            DORIS_CHECK(struct_column.tuple_size() == struct_type->get_elements().size());
1713
6
            for (size_t i = 0; i < struct_column.tuple_size(); ++i) {
1714
4
                if (_requires_parent_null_map_for_alignment_at(struct_column.get_column_ptr(i),
1715
4
                                                               struct_type->get_element(i), row)) {
1716
2
                    return true;
1717
2
                }
1718
4
            }
1719
4
        }
1720
6
        return false;
1721
8
    }
1722
1723
    static bool _requires_collection_parent_null_map(const NullMap* parent_null_map,
1724
                                                     const ColumnPtr& column,
1725
3
                                                     const DataTypePtr& table_type) {
1726
        // Descendant null maps can be entry-sized. Scan them only when an inherited mask can
1727
        // actually hide a row; absent/all-clear masks cannot authorize any physical child NULL.
1728
3
        if (parent_null_map == nullptr ||
1729
3
            std::ranges::none_of(*parent_null_map, [](const auto value) { return value != 0; })) {
1730
2
            return false;
1731
2
        }
1732
1
        return _requires_parent_null_map_for_alignment(column, table_type);
1733
3
    }
1734
1735
    template <typename Offsets>
1736
    static bool _parent_null_map_hides_collection_entries(const NullMap* container_null_map,
1737
                                                          const NullMap* ancestor_null_map,
1738
                                                          const size_t rows,
1739
16
                                                          const Offsets& offsets) {
1740
16
        if (container_null_map == nullptr && ancestor_null_map == nullptr) {
1741
2
            return false;
1742
2
        }
1743
14
        DORIS_CHECK(container_null_map == nullptr || container_null_map->size() == rows);
1744
14
        DORIS_CHECK(ancestor_null_map == nullptr || ancestor_null_map->size() == rows);
1745
14
        DORIS_CHECK(offsets.size() == rows);
1746
14
        size_t begin = 0;
1747
36
        for (size_t row = 0; row < rows; ++row) {
1748
27
            const size_t end = offsets[row];
1749
27
            const bool hidden = (container_null_map != nullptr && (*container_null_map)[row]) ||
1750
27
                                (ancestor_null_map != nullptr && (*ancestor_null_map)[row]);
1751
            // A hidden collection row protects descendants only when its offset span is nonempty.
1752
27
            if (hidden && end > begin) {
1753
5
                return true;
1754
5
            }
1755
22
            begin = end;
1756
22
        }
1757
9
        return false;
1758
14
    }
1759
1760
    template <typename Offsets>
1761
    static bool _requires_collection_parent_null_map(const NullMap* parent_null_map,
1762
                                                     const ColumnPtr& column,
1763
                                                     const DataTypePtr& table_type,
1764
9
                                                     const size_t rows, const Offsets& offsets) {
1765
9
        if (parent_null_map == nullptr) {
1766
0
            return false;
1767
0
        }
1768
9
        DORIS_CHECK(parent_null_map->size() == rows);
1769
9
        DORIS_CHECK(offsets.size() == rows);
1770
9
        DORIS_CHECK(offsets.empty() || offsets.back() == column->size());
1771
9
        size_t begin = 0;
1772
22
        for (size_t row = 0; row < rows; ++row) {
1773
15
            const size_t end = offsets[row];
1774
15
            if ((*parent_null_map)[row]) {
1775
                // Only ancestor-hidden entries can consume this projection. Restricting the probe
1776
                // to their spans avoids scanning visible payload covered by nearer nullable masks.
1777
12
                for (size_t child_row = begin; child_row < end; ++child_row) {
1778
6
                    if (_requires_parent_null_map_for_alignment_at(column, table_type, child_row)) {
1779
2
                        return true;
1780
2
                    }
1781
6
                }
1782
8
            }
1783
13
            begin = end;
1784
13
        }
1785
7
        return false;
1786
9
    }
1787
1788
    template <typename Offsets>
1789
    static const NullMap* _project_collection_parent_null_map_for_hidden_entries(
1790
            const NullMap* container_null_map, const NullMap* ancestor_null_map, const size_t rows,
1791
16
            const Offsets& offsets, const size_t child_rows, NullMap* const projected_null_map) {
1792
16
        if (!_parent_null_map_hides_collection_entries(container_null_map, ancestor_null_map, rows,
1793
16
                                                       offsets)) {
1794
            // Nullable collection wrappers expose a null-map even when every row is present; avoid
1795
            // allocating entry-coordinate scratch unless a hidden row owns physical entries.
1796
11
            return nullptr;
1797
11
        }
1798
5
        projected_null_map->resize(child_rows);
1799
5
        std::fill(projected_null_map->begin(), projected_null_map->end(), 0);
1800
5
        size_t begin = 0;
1801
15
        for (size_t row = 0; row < rows; ++row) {
1802
10
            const size_t end = offsets[row];
1803
10
            const bool hidden = (container_null_map != nullptr && (*container_null_map)[row]) ||
1804
10
                                (ancestor_null_map != nullptr && (*ancestor_null_map)[row]);
1805
10
            if (hidden) {
1806
                // Collection masks use row coordinates; descendants need the same invariant
1807
                // projected through offsets so hidden physical payload cannot fail validation.
1808
5
                std::fill(projected_null_map->begin() + begin, projected_null_map->begin() + end,
1809
5
                          1);
1810
5
            }
1811
10
            begin = end;
1812
10
        }
1813
5
        DORIS_CHECK(begin == child_rows);
1814
5
        return projected_null_map;
1815
16
    }
1816
1817
    Status _materialize_struct_mapping_column(const ColumnMapping& mapping,
1818
                                              const ColumnPtr& file_column, const size_t rows,
1819
                                              ColumnPtr* column,
1820
24
                                              const NullMap* nullable_parent_null_map = nullptr) {
1821
24
        DORIS_CHECK(mapping.table_type != nullptr);
1822
24
        const auto* table_type =
1823
24
                assert_cast<const DataTypeStruct*>(remove_nullable(mapping.table_type).get());
1824
24
        const auto full_file_column = file_column->convert_to_full_column_if_const();
1825
24
        const NullMap* parent_null_map = nullptr;
1826
24
        const auto* nested_file_column =
1827
24
                _nested_column_if_nullable(full_file_column, &parent_null_map);
1828
24
        const auto* file_struct = assert_cast<const ColumnStruct*>(nested_file_column);
1829
24
        DORIS_CHECK(table_type->get_elements().size() == mapping.child_mappings.size());
1830
1831
24
        NullMap combined_parent_null_map;
1832
24
        const NullMap* descendant_parent_null_map = nullable_parent_null_map;
1833
24
        if (parent_null_map != nullptr) {
1834
22
            DORIS_CHECK(parent_null_map->size() == rows);
1835
22
            if (nullable_parent_null_map != nullptr) {
1836
3
                DORIS_CHECK(nullable_parent_null_map->size() == rows);
1837
3
            }
1838
22
            if (!mapping.table_type->is_nullable()) {
1839
7
                for (size_t i = 0; i < rows; ++i) {
1840
                    // A required nested container may drop its own NULL only when an ancestor
1841
                    // already hides that row; otherwise physical defaults become visible values.
1842
5
                    if ((*parent_null_map)[i] &&
1843
5
                        (nullable_parent_null_map == nullptr || !(*nullable_parent_null_map)[i])) {
1844
1
                        return Status::InternalError(
1845
1
                                "Source struct contains NULL for non-nullable table column");
1846
1
                    }
1847
5
                }
1848
3
            }
1849
21
            combined_parent_null_map.resize(rows);
1850
67
            for (size_t i = 0; i < rows; ++i) {
1851
46
                combined_parent_null_map[i] =
1852
46
                        (*parent_null_map)[i] ||
1853
46
                        (nullable_parent_null_map != nullptr && (*nullable_parent_null_map)[i]);
1854
46
            }
1855
21
            descendant_parent_null_map = &combined_parent_null_map;
1856
21
        }
1857
1858
23
        Columns child_columns;
1859
23
        child_columns.reserve(mapping.child_mappings.size());
1860
23
        const auto file_ordered_children =
1861
23
                _present_child_mappings_in_file_order(mapping.child_mappings);
1862
23
        const auto table_ordered_children =
1863
23
                _child_mappings_in_table_type_order(mapping, *table_type);
1864
39
        for (const auto* child_mapping : table_ordered_children) {
1865
39
            DORIS_CHECK(child_mapping != nullptr);
1866
39
            if (!child_mapping->file_local_id.has_value()) {
1867
13
                ColumnPtr child_column;
1868
13
                RETURN_IF_ERROR(_materialize_default_or_missing_column(
1869
13
                        *child_mapping, nullptr, rows, &child_column, descendant_parent_null_map));
1870
13
                child_column = child_column->convert_to_full_column_if_const();
1871
13
                child_columns.push_back(std::move(child_column));
1872
13
                continue;
1873
13
            }
1874
26
            const auto file_child_idx =
1875
26
                    _file_child_ordinal_for_mapping(mapping, *child_mapping, file_ordered_children);
1876
26
            DORIS_CHECK(file_child_idx < file_struct->get_columns().size());
1877
26
            ColumnPtr child_column = file_struct->get_column_ptr(file_child_idx);
1878
26
            RETURN_IF_ERROR(_materialize_present_child_mapping_column(
1879
26
                    *child_mapping, child_column, rows, &child_column, descendant_parent_null_map));
1880
25
            child_columns.push_back(std::move(child_column));
1881
25
        }
1882
22
        MutableColumns mutable_child_columns;
1883
22
        mutable_child_columns.reserve(child_columns.size());
1884
38
        for (auto& child_column : child_columns) {
1885
38
            mutable_child_columns.push_back(IColumn::mutate(std::move(child_column)));
1886
38
        }
1887
22
        auto result = ColumnStruct::create(std::move(mutable_child_columns));
1888
22
        if (mapping.table_type->is_nullable()) {
1889
18
            auto null_map = ColumnUInt8::create();
1890
18
            auto& null_map_data = null_map->get_data();
1891
18
            null_map_data.resize(rows);
1892
18
            if (parent_null_map != nullptr) {
1893
18
                DORIS_CHECK(parent_null_map->size() == rows);
1894
18
                null_map_data.assign(parent_null_map->begin(), parent_null_map->end());
1895
18
            } else {
1896
0
                std::fill(null_map_data.begin(), null_map_data.end(), 0);
1897
0
            }
1898
18
            *column = ColumnNullable::create(std::move(result), std::move(null_map));
1899
18
        } else {
1900
4
            *column = std::move(result);
1901
4
        }
1902
22
        return Status::OK();
1903
23
    }
1904
1905
    Status _materialize_array_mapping_column(const ColumnMapping& mapping,
1906
                                             const ColumnPtr& file_column, const size_t rows,
1907
                                             ColumnPtr* column,
1908
7
                                             const NullMap* nullable_parent_null_map = nullptr) {
1909
7
        DORIS_CHECK(mapping.child_mappings.size() == 1);
1910
7
        const auto full_file_column = file_column->convert_to_full_column_if_const();
1911
7
        const NullMap* parent_null_map = nullptr;
1912
7
        const auto* nested_file_column =
1913
7
                _nested_column_if_nullable(full_file_column, &parent_null_map);
1914
7
        if (parent_null_map != nullptr && !mapping.table_type->is_nullable()) {
1915
2
            DORIS_CHECK(parent_null_map->size() == rows);
1916
2
            if (nullable_parent_null_map != nullptr) {
1917
1
                DORIS_CHECK(nullable_parent_null_map->size() == rows);
1918
1
            }
1919
4
            for (size_t i = 0; i < rows; ++i) {
1920
                // ARRAY row masks cannot be forwarded to elements because they use different
1921
                // coordinates, so validate the container before dropping its nullable wrapper.
1922
3
                if ((*parent_null_map)[i] &&
1923
3
                    (nullable_parent_null_map == nullptr || !(*nullable_parent_null_map)[i])) {
1924
1
                    return Status::InternalError(
1925
1
                            "Source array contains NULL for non-nullable table column");
1926
1
                }
1927
3
            }
1928
2
        }
1929
6
        const auto* file_array = assert_cast<const ColumnArray*>(nested_file_column);
1930
6
        ColumnPtr nested_column = file_array->get_data_ptr();
1931
6
        auto element_mapping = mapping.child_mappings[0];
1932
        // Keep the descriptor type for schema matching. ARRAY's nullable element wrapper is a
1933
        // storage invariant, so add it only at the materialization boundary.
1934
6
        element_mapping.table_type = make_nullable(element_mapping.table_type);
1935
6
        NullMap descendant_parent_null_map;
1936
6
        const NullMap* descendant_parent_null_map_ptr =
1937
6
                _project_collection_parent_null_map_for_hidden_entries(
1938
6
                        parent_null_map, nullable_parent_null_map, rows, file_array->get_offsets(),
1939
6
                        nested_column->size(), &descendant_parent_null_map);
1940
6
        RETURN_IF_ERROR(_materialize_present_child_mapping_column(
1941
6
                element_mapping, nested_column, nested_column->size(), &nested_column,
1942
6
                descendant_parent_null_map_ptr));
1943
6
        auto offsets_column = file_array->get_offsets_ptr()->convert_to_full_column_if_const();
1944
6
        auto result = ColumnArray::create(IColumn::mutate(std::move(nested_column)),
1945
6
                                          IColumn::mutate(std::move(offsets_column)));
1946
6
        if (mapping.table_type->is_nullable()) {
1947
5
            auto null_map = ColumnUInt8::create();
1948
5
            auto& null_map_data = null_map->get_data();
1949
5
            null_map_data.resize(rows);
1950
5
            if (parent_null_map != nullptr) {
1951
5
                DORIS_CHECK(parent_null_map->size() == rows);
1952
5
                null_map_data.assign(parent_null_map->begin(), parent_null_map->end());
1953
5
            } else {
1954
0
                std::fill(null_map_data.begin(), null_map_data.end(), 0);
1955
0
            }
1956
5
            *column = ColumnNullable::create(std::move(result), std::move(null_map));
1957
5
        } else {
1958
1
            *column = std::move(result);
1959
1
        }
1960
6
        return Status::OK();
1961
6
    }
1962
1963
    Status _materialize_map_mapping_column(const ColumnMapping& mapping,
1964
                                           const ColumnPtr& file_column, const size_t rows,
1965
                                           ColumnPtr* column,
1966
6
                                           const NullMap* nullable_parent_null_map = nullptr) {
1967
6
        const auto full_file_column = file_column->convert_to_full_column_if_const();
1968
6
        const NullMap* parent_null_map = nullptr;
1969
6
        const auto* nested_file_column =
1970
6
                _nested_column_if_nullable(full_file_column, &parent_null_map);
1971
6
        if (parent_null_map != nullptr && !mapping.table_type->is_nullable()) {
1972
0
            DORIS_CHECK(parent_null_map->size() == rows);
1973
0
            if (nullable_parent_null_map != nullptr) {
1974
0
                DORIS_CHECK(nullable_parent_null_map->size() == rows);
1975
0
            }
1976
0
            for (size_t i = 0; i < rows; ++i) {
1977
                // MAP row masks cannot be forwarded to entries because they use different
1978
                // coordinates, so validate the container before dropping its nullable wrapper.
1979
0
                if ((*parent_null_map)[i] &&
1980
0
                    (nullable_parent_null_map == nullptr || !(*nullable_parent_null_map)[i])) {
1981
0
                    return Status::InternalError(
1982
0
                            "Source map contains NULL for non-nullable table column");
1983
0
                }
1984
0
            }
1985
0
        }
1986
6
        const auto* file_map = assert_cast<const ColumnMap*>(nested_file_column);
1987
6
        ColumnPtr key_column = file_map->get_keys_ptr();
1988
6
        ColumnPtr value_column = file_map->get_values_ptr();
1989
6
        DORIS_CHECK(key_column->size() == value_column->size());
1990
6
        NullMap descendant_parent_null_map;
1991
6
        const NullMap* descendant_parent_null_map_ptr =
1992
6
                _project_collection_parent_null_map_for_hidden_entries(
1993
6
                        parent_null_map, nullable_parent_null_map, rows, file_map->get_offsets(),
1994
6
                        key_column->size(), &descendant_parent_null_map);
1995
1996
6
        const ColumnMapping* key_mapping = nullptr;
1997
6
        const ColumnMapping* value_mapping = nullptr;
1998
9
        for (const auto& child_mapping : mapping.child_mappings) {
1999
9
            if (!child_mapping.file_local_id.has_value()) {
2000
0
                continue;
2001
0
            }
2002
9
            if (*child_mapping.file_local_id == 0) {
2003
3
                key_mapping = &child_mapping;
2004
6
            } else if (*child_mapping.file_local_id == 1) {
2005
6
                value_mapping = &child_mapping;
2006
6
            }
2007
9
        }
2008
2009
6
        if (key_mapping != nullptr) {
2010
3
            RETURN_IF_ERROR(_materialize_present_child_mapping_column(
2011
3
                    *key_mapping, key_column, key_column->size(), &key_column,
2012
3
                    descendant_parent_null_map_ptr));
2013
3
        } else {
2014
3
            const auto* table_map =
2015
3
                    assert_cast<const DataTypeMap*>(remove_nullable(mapping.table_type).get());
2016
            // Value-only projection retains the physical key stream to preserve entry offsets;
2017
            // align it under the entry mask so NULL placeholders from hidden Map rows stay hidden.
2018
3
            RETURN_IF_ERROR(_align_column_nullability(&key_column, table_map->get_key_type(),
2019
3
                                                      descendant_parent_null_map_ptr));
2020
3
        }
2021
6
        if (value_mapping != nullptr) {
2022
6
            RETURN_IF_ERROR(_materialize_present_child_mapping_column(
2023
6
                    *value_mapping, value_column, value_column->size(), &value_column,
2024
6
                    descendant_parent_null_map_ptr));
2025
6
        } else {
2026
0
            const auto* table_map =
2027
0
                    assert_cast<const DataTypeMap*>(remove_nullable(mapping.table_type).get());
2028
            // A retained structural value stream follows the same hidden-entry invariant as keys.
2029
0
            RETURN_IF_ERROR(_align_column_nullability(&value_column, table_map->get_value_type(),
2030
0
                                                      descendant_parent_null_map_ptr));
2031
0
        }
2032
6
        auto offsets_column = file_map->get_offsets_ptr()->convert_to_full_column_if_const();
2033
6
        auto result = ColumnMap::create(IColumn::mutate(std::move(key_column)),
2034
6
                                        IColumn::mutate(std::move(value_column)),
2035
6
                                        IColumn::mutate(std::move(offsets_column)));
2036
6
        if (mapping.table_type->is_nullable()) {
2037
4
            auto null_map = ColumnUInt8::create();
2038
4
            auto& null_map_data = null_map->get_data();
2039
4
            null_map_data.resize(rows);
2040
4
            if (parent_null_map != nullptr) {
2041
4
                DORIS_CHECK(parent_null_map->size() == rows);
2042
4
                null_map_data.assign(parent_null_map->begin(), parent_null_map->end());
2043
4
            } else {
2044
0
                std::fill(null_map_data.begin(), null_map_data.end(), 0);
2045
0
            }
2046
4
            *column = ColumnNullable::create(std::move(result), std::move(null_map));
2047
4
        } else {
2048
2
            *column = std::move(result);
2049
2
        }
2050
6
        return Status::OK();
2051
6
    }
2052
2053
238
    Status _open_mapping_expr_tree(const ColumnMapping& mapping, const RowDescriptor& row_desc) {
2054
238
        if (mapping.projection != nullptr) {
2055
170
            RETURN_IF_ERROR(mapping.projection->prepare(_runtime_state, row_desc));
2056
170
            RETURN_IF_ERROR(mapping.projection->open(_runtime_state));
2057
170
        }
2058
238
        if (mapping.default_expr != nullptr) {
2059
16
            RETURN_IF_ERROR(mapping.default_expr->prepare(_runtime_state, row_desc));
2060
16
            RETURN_IF_ERROR(mapping.default_expr->open(_runtime_state));
2061
16
        }
2062
238
        for (const auto& child_mapping : mapping.child_mappings) {
2063
45
            RETURN_IF_ERROR(_open_mapping_expr_tree(child_mapping, row_desc));
2064
45
        }
2065
238
        return Status::OK();
2066
238
    }
2067
2068
149
    Status _open_mapping_exprs() {
2069
149
        RowDescriptor row_desc;
2070
193
        for (const auto& mapping : _data_reader.column_mapper->mappings()) {
2071
193
            RETURN_IF_ERROR(_open_mapping_expr_tree(mapping, row_desc));
2072
193
        }
2073
149
        return Status::OK();
2074
149
    }
2075
2076
    Status _build_file_aggregate_request(TPushAggOp::type agg_type,
2077
13
                                         FileAggregateRequest* request) const {
2078
13
        DORIS_CHECK(request != nullptr);
2079
13
        DORIS_CHECK(_supports_aggregate_pushdown(agg_type));
2080
13
        request->agg_type = agg_type;
2081
13
        request->columns.clear();
2082
13
        if (agg_type == TPushAggOp::type::COUNT) {
2083
9
            DORIS_CHECK(_push_down_count_columns.has_value());
2084
            // An empty explicit list is the semantic signal for COUNT(*). Do not inspect the
2085
            // mapping count: `SELECT COUNT(*) FROM t` may still project one nullable column because
2086
            // the planner keeps a placeholder slot. In a 10,000-row file where that arbitrary slot
2087
            // has 9,015 non-null values, passing the slot would ask Parquet/ORC metadata for
2088
            // COUNT(slot)=9,015 instead of the required row count 10,000.
2089
9
            if (!_push_down_count_columns->empty()) {
2090
4
                const auto& mapping = _push_down_count_mapping();
2091
4
                DORIS_CHECK(mapping.file_local_id.has_value());
2092
4
                FileAggregateRequest::Column column;
2093
4
                column.projection =
2094
4
                        LocalColumnIndex::top_level(LocalColumnId(*mapping.file_local_id));
2095
4
                request->columns.push_back(std::move(column));
2096
4
            }
2097
9
            return Status::OK();
2098
9
        }
2099
4
        request->columns.reserve(_data_reader.column_mapper->mappings().size());
2100
5
        for (const auto& mapping : _data_reader.column_mapper->mappings()) {
2101
5
            DORIS_CHECK(mapping.file_local_id.has_value());
2102
5
            FileAggregateRequest::Column column;
2103
5
            column.projection = LocalColumnIndex::top_level(LocalColumnId(*mapping.file_local_id));
2104
5
            if (!mapping.child_mappings.empty()) {
2105
1
                RETURN_IF_ERROR(build_aggregate_projection(mapping, &column.projection));
2106
1
            }
2107
5
            request->columns.push_back(std::move(column));
2108
5
        }
2109
4
        return Status::OK();
2110
4
    }
2111
2112
14
    const ColumnMapping& _push_down_count_mapping() const {
2113
14
        DORIS_CHECK(_push_down_count_columns.has_value());
2114
14
        DORIS_CHECK(_push_down_count_columns->size() == 1);
2115
14
        const auto mapping_it =
2116
14
                std::ranges::find(_data_reader.column_mapper->mappings(),
2117
14
                                  _push_down_count_columns->front(), &ColumnMapping::global_index);
2118
        // FileScannerV2 translates FE SlotIds through the same projected-column list used to build
2119
        // the mapper, so a missing mapping is an FE/BE contract violation rather than a fallback.
2120
14
        DORIS_CHECK(mapping_it != _data_reader.column_mapper->mappings().end());
2121
14
        return *mapping_it;
2122
14
    }
2123
2124
    Status _materialize_aggregate_pushdown_rows(TPushAggOp::type agg_type,
2125
                                                const FileAggregateResult& file_result,
2126
3
                                                Block* block) {
2127
3
        DORIS_CHECK(agg_type == TPushAggOp::type::MINMAX);
2128
        // MIN/MAX pushdown emits two rows, min first and max second, for each projected column.
2129
        // The upper MIN/MAX aggregate consumes those two rows to produce the final aggregate value.
2130
3
        DORIS_CHECK(file_result.columns.size() == _data_reader.column_mapper->mappings().size());
2131
3
        DORIS_CHECK(block->columns() == _data_reader.column_mapper->mappings().size());
2132
3
        Block file_block;
2133
3
        file_block.reserve(_data_reader.file_block_layout.size());
2134
4
        for (const auto& column : _data_reader.file_block_layout) {
2135
4
            file_block.insert({column.type->create_column(), column.type, column.name});
2136
4
        }
2137
7
        for (size_t column_idx = 0; column_idx < file_result.columns.size(); ++column_idx) {
2138
4
            const auto& result_column = file_result.columns[column_idx];
2139
4
            if (!result_column.has_min || !result_column.has_max) {
2140
0
                return Status::NotSupported("Missing min/max aggregate result for column {}",
2141
0
                                            _projected_columns[column_idx].name);
2142
0
            }
2143
4
            bool found_file_column = false;
2144
5
            for (size_t block_position = 0; block_position < _data_reader.file_block_layout.size();
2145
5
                 ++block_position) {
2146
5
                if (_data_reader.file_block_layout[block_position].file_column_id ==
2147
5
                    file_result.columns[column_idx].projection.column_id()) {
2148
4
                    found_file_column = true;
2149
4
                    auto column = file_block.get_by_position(block_position)
2150
4
                                          .type->create_column()
2151
4
                                          ->assert_mutable();
2152
4
                    RETURN_IF_ERROR(_insert_aggregate_projection_value(
2153
4
                            file_result.columns[column_idx].projection, result_column.min_value,
2154
4
                            column.get()));
2155
4
                    RETURN_IF_ERROR(_insert_aggregate_projection_value(
2156
4
                            file_result.columns[column_idx].projection, result_column.max_value,
2157
4
                            column.get()));
2158
4
                    file_block.replace_by_position(block_position, std::move(column));
2159
4
                    break;
2160
4
                }
2161
5
            }
2162
4
            DORIS_CHECK(found_file_column);
2163
4
        }
2164
7
        for (size_t column_idx = 0; column_idx < _data_reader.column_mapper->mappings().size();
2165
4
             ++column_idx) {
2166
4
            ColumnPtr table_column;
2167
4
            RETURN_IF_ERROR(_materialize_mapping_column(
2168
4
                    _data_reader.column_mapper->mappings()[column_idx], &file_block, 2,
2169
4
                    &table_column,
2170
4
                    column_idx + 1 == _data_reader.column_mapper->mappings().size()));
2171
4
            block->replace_by_position(column_idx, std::move(table_column));
2172
4
        }
2173
3
        return Status::OK();
2174
3
    }
2175
2176
    struct FileBlockColumn {
2177
        LocalColumnId file_column_id = LocalColumnId::invalid();
2178
        std::string name;
2179
        DataTypePtr type;
2180
    };
2181
2182
    struct DataReader {
2183
        std::unique_ptr<FileReader> reader;
2184
        std::unique_ptr<TableColumnMapper> column_mapper;
2185
        // Schema of the data file, also including virtual column (row position).
2186
        std::vector<ColumnDefinition> file_schema;
2187
        // Layout of the block returned by file reader, determined by column mapping and file
2188
        // schema. It is used for file reader to materialize columns into correct type and position.
2189
        std::vector<FileBlockColumn> file_block_layout;
2190
        Block block_template;
2191
    };
2192
    DataReader _data_reader;
2193
    // Latest immutable request queued to the physical reader. The file-block layout remains fixed
2194
    // for the split even while predicates are refreshed at a reader-defined granule boundary.
2195
    std::shared_ptr<FileScanRequest> _file_scan_request;
2196
    std::vector<ColumnDefinition> _projected_columns;
2197
    std::unique_ptr<ScanTask> _current_task;
2198
    std::optional<io::FileDescription> _current_file_description;
2199
    // Range-level compression has higher priority than scan-param compression. TVF/load can keep
2200
    // the logical format as CSV/TEXT while carrying the concrete compression such as GZ or LZO on
2201
    // each TFileRangeDesc, matching the old FileScanner reader contract.
2202
    TFileCompressType::type _current_range_compress_type = TFileCompressType::UNKNOWN;
2203
    std::optional<TUniqueId> _current_range_load_id;
2204
    TFileRangeDesc _current_file_range_desc;
2205
    std::shared_ptr<io::FileSystemProperties> _system_properties;
2206
    // partition key -> value
2207
    std::map<std::string, Field> _partition_values;
2208
    // Predicates built from scan conjuncts before file-level localization.
2209
    std::vector<TableFilter> _table_filters;
2210
    // Number of localized filters before the first unsafe conjunct in the original row-level
2211
    // order. This differs from scanning `_table_filters` for safety because slotless predicates are
2212
    // intentionally absent from that vector but must still act as ordering barriers.
2213
    size_t _constant_pruning_safe_filter_count = 0;
2214
    VExprContextSPtrs _conjuncts;
2215
    ReadProfile _profile;
2216
    // Parsed from row-position based delete files, including position delete and deletion vector.
2217
    DeleteRows* _delete_rows = nullptr;
2218
    DeletionVector* _deletion_vector = nullptr;
2219
    TFileScanRangeParams* _scan_params;
2220
    std::shared_ptr<io::IOContext> _io_ctx;
2221
    RuntimeState* _runtime_state;
2222
    RuntimeProfile* _scanner_profile;
2223
    const std::vector<SlotDescriptor*>* _file_slot_descs = nullptr;
2224
    FileFormat _format;
2225
    TPushAggOp::type _push_down_agg_type = TPushAggOp::type::NONE;
2226
    std::optional<std::vector<GlobalIndex>> _push_down_count_columns;
2227
    size_t _batch_size = 0;
2228
    uint64_t _initial_condition_cache_digest = 0;
2229
    uint64_t _condition_cache_digest = 0;
2230
    // True only when prepare_split() received a digest for the exact conjunct snapshot used by
2231
    // this split. Standalone callers that only supplied TableReadOptions::condition_cache_digest
2232
    // keep the conservative runtime-filter guard.
2233
    bool _condition_cache_digest_covers_current_split = false;
2234
    segment_v2::ConditionCache::ExternalCacheKey _condition_cache_key;
2235
    std::shared_ptr<std::vector<bool>> _condition_cache;
2236
    std::shared_ptr<ConditionCacheContext> _condition_cache_ctx;
2237
    int64_t _condition_cache_hit_count = 0;
2238
    bool _current_reader_reached_eof = false;
2239
    int64_t _remaining_table_level_count = -1;
2240
    int64_t _remaining_file_level_count = -1;
2241
    // True only after the active split selects a table-level row-count shortcut or successfully
2242
    // materializes COUNT rows from file metadata. FileScannerV2 uses this result, rather than the
2243
    // raw aggregate opcode, to keep adaptive batching enabled for normal row-scan fallbacks.
2244
    bool _current_split_uses_metadata_count = false;
2245
    // Snapshot supplied by FileScannerV2 for the active split. It gates every shortcut that emits
2246
    // irreversible aggregate rows, not only the table-level row-count shortcut in prepare_split().
2247
    bool _all_runtime_filters_applied_for_split = true;
2248
    std::optional<GlobalRowIdContext> _global_rowid_context;
2249
    bool _aggregate_pushdown_tried = false;
2250
    bool _current_split_pruned = false;
2251
    TableColumnMapperOptions _mapper_options;
2252
2253
private:
2254
    static const ColumnDefinition* _find_column_definition(
2255
265
            const std::vector<ColumnDefinition>& schema, LocalColumnId column_id) {
2256
444
        for (const auto& field : schema) {
2257
444
            if (field.file_local_id() == column_id.value()) {
2258
226
                return &field;
2259
226
            }
2260
444
        }
2261
39
        return nullptr;
2262
265
    }
2263
2264
14
    static bool _can_push_down_minmax_for_mapping(const ColumnMapping& mapping) {
2265
14
        if (mapping.child_mappings.empty()) {
2266
            // Direct mappings use a slot-ref projection to materialize the file column. The
2267
            // projection does not transform ordering; casts and other conversions are already
2268
            // represented by a non-trivial mapping and must fall back to row scanning.
2269
11
            return mapping.is_trivial;
2270
11
        }
2271
3
        const auto primitive_type = remove_nullable(mapping.file_type)->get_primitive_type();
2272
3
        if (primitive_type != TYPE_STRUCT) {
2273
1
            return false;
2274
1
        }
2275
2
        size_t mapped_children = 0;
2276
2
        const ColumnMapping* mapped_child = nullptr;
2277
2
        for (const auto& child_mapping : mapping.child_mappings) {
2278
2
            if (!child_mapping.file_local_id.has_value()) {
2279
0
                continue;
2280
0
            }
2281
2
            ++mapped_children;
2282
2
            mapped_child = &child_mapping;
2283
2
        }
2284
2
        return mapped_children == 1 && mapped_child != nullptr &&
2285
2
               _can_push_down_minmax_for_mapping(*mapped_child);
2286
3
    }
2287
2288
    static Status build_aggregate_projection(const ColumnMapping& mapping,
2289
2
                                             LocalColumnIndex* projection) {
2290
2
        DORIS_CHECK(projection != nullptr);
2291
2
        DORIS_CHECK(mapping.file_local_id.has_value());
2292
2
        *projection = LocalColumnIndex::local(*mapping.file_local_id);
2293
2
        projection->children.clear();
2294
2
        projection->project_all_children = true;
2295
2
        if (mapping.child_mappings.empty()) {
2296
1
            return Status::OK();
2297
1
        }
2298
1
        projection->project_all_children = false;
2299
1
        for (const auto& child_mapping : mapping.child_mappings) {
2300
1
            if (!child_mapping.file_local_id.has_value()) {
2301
0
                continue;
2302
0
            }
2303
1
            LocalColumnIndex child_projection;
2304
1
            RETURN_IF_ERROR(build_aggregate_projection(child_mapping, &child_projection));
2305
1
            projection->children.push_back(std::move(child_projection));
2306
1
        }
2307
1
        DORIS_CHECK(projection->children.size() == 1);
2308
1
        return Status::OK();
2309
1
    }
2310
2311
    static Status _insert_aggregate_projection_value(const LocalColumnIndex& projection,
2312
20
                                                     const Field& value, IColumn* column) {
2313
20
        DORIS_CHECK(column != nullptr);
2314
20
        if (auto* nullable_column = check_and_get_column<ColumnNullable>(*column)) {
2315
10
            RETURN_IF_ERROR(_insert_aggregate_projection_value(
2316
10
                    projection, value, &nullable_column->get_nested_column()));
2317
10
            nullable_column->get_null_map_data().push_back(0);
2318
10
            return Status::OK();
2319
10
        }
2320
10
        if (projection.project_all_children || projection.children.empty()) {
2321
8
            column->insert(value);
2322
8
            return Status::OK();
2323
8
        }
2324
2
        auto* struct_column = assert_cast<ColumnStruct*>(column);
2325
2
        DORIS_CHECK(projection.children.size() == 1);
2326
2
        const auto& child_projection = projection.children[0];
2327
2
        DORIS_CHECK(struct_column->get_columns().size() == 1);
2328
2
        RETURN_IF_ERROR(_insert_aggregate_projection_value(child_projection, value,
2329
2
                                                           &struct_column->get_column(0)));
2330
2
        return Status::OK();
2331
2
    }
2332
2333
    // Parse a DV into its compressed bitmap. Position delete files continue to use _delete_rows.
2334
    Status _parse_delete_predicates(const SplitReadOptions& options);
2335
};
2336
2337
} // namespace doris::format