Coverage Report

Created: 2026-03-15 20:53

next uncovered line (L), next uncovered region (R), next uncovered branch (B)
be/src/exprs/vectorized_fn_call.cpp
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Source
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// Licensed to the Apache Software Foundation (ASF) under one
2
// 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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#include "exprs/vectorized_fn_call.h"
19
20
#include <fmt/compile.h>
21
#include <fmt/format.h>
22
#include <fmt/ranges.h> // IWYU pragma: keep
23
#include <gen_cpp/Opcodes_types.h>
24
#include <gen_cpp/Types_types.h>
25
26
#include <memory>
27
#include <ostream>
28
29
#include "common/config.h"
30
#include "common/exception.h"
31
#include "common/logging.h"
32
#include "common/status.h"
33
#include "common/utils.h"
34
#include "core/assert_cast.h"
35
#include "core/block/block.h"
36
#include "core/block/column_numbers.h"
37
#include "core/column/column.h"
38
#include "core/column/column_array.h"
39
#include "core/column/column_nullable.h"
40
#include "core/column/column_vector.h"
41
#include "core/data_type/data_type.h"
42
#include "core/data_type/data_type_agg_state.h"
43
#include "core/types.h"
44
#include "exec/common/util.hpp"
45
#include "exec/pipeline/pipeline_task.h"
46
#include "exprs/function/array/function_array_distance.h"
47
#include "exprs/function/function_agg_state.h"
48
#include "exprs/function/function_fake.h"
49
#include "exprs/function/function_java_udf.h"
50
#include "exprs/function/function_python_udf.h"
51
#include "exprs/function/function_rpc.h"
52
#include "exprs/function/simple_function_factory.h"
53
#include "exprs/function_context.h"
54
#include "exprs/varray_literal.h"
55
#include "exprs/vcast_expr.h"
56
#include "exprs/vexpr_context.h"
57
#include "exprs/virtual_slot_ref.h"
58
#include "exprs/vliteral.h"
59
#include "runtime/runtime_state.h"
60
#include "storage/index/ann/ann_index.h"
61
#include "storage/index/ann/ann_index_iterator.h"
62
#include "storage/index/ann/ann_search_params.h"
63
#include "storage/index/index_reader.h"
64
#include "storage/segment/column_reader.h"
65
#include "storage/segment/virtual_column_iterator.h"
66
67
namespace doris {
68
class RowDescriptor;
69
class RuntimeState;
70
class TExprNode;
71
} // namespace doris
72
73
namespace doris {
74
#include "common/compile_check_begin.h"
75
76
const std::string AGG_STATE_SUFFIX = "_state";
77
78
// Now left child is a function call, we need to check if it is a distance function
79
const static std::set<std::string> DISTANCE_FUNCS = {L2DistanceApproximate::name,
80
                                                     InnerProductApproximate::name};
81
const static std::set<TExprOpcode::type> OPS_FOR_ANN_RANGE_SEARCH = {
82
        TExprOpcode::GE, TExprOpcode::LE, TExprOpcode::LE, TExprOpcode::GT, TExprOpcode::LT};
83
84
104
VectorizedFnCall::VectorizedFnCall(const TExprNode& node) : VExpr(node) {}
85
86
Status VectorizedFnCall::prepare(RuntimeState* state, const RowDescriptor& desc,
87
94
                                 VExprContext* context) {
88
94
    RETURN_IF_ERROR_OR_PREPARED(VExpr::prepare(state, desc, context));
89
94
    ColumnsWithTypeAndName argument_template;
90
94
    argument_template.reserve(_children.size());
91
179
    for (auto child : _children) {
92
179
        if (child->is_literal()) {
93
            // For some functions, he needs some literal columns to derive the return type.
94
62
            auto literal_node = std::dynamic_pointer_cast<VLiteral>(child);
95
62
            argument_template.emplace_back(literal_node->get_column_ptr(), child->data_type(),
96
62
                                           child->expr_name());
97
117
        } else {
98
117
            argument_template.emplace_back(nullptr, child->data_type(), child->expr_name());
99
117
        }
100
179
    }
101
102
94
    _expr_name = fmt::format("VectorizedFnCall[{}](arguments={},return={})", _fn.name.function_name,
103
94
                             get_child_names(), _data_type->get_name());
104
94
    if (_fn.binary_type == TFunctionBinaryType::RPC) {
105
0
        _function = FunctionRPC::create(_fn, argument_template, _data_type);
106
94
    } else if (_fn.binary_type == TFunctionBinaryType::JAVA_UDF) {
107
0
        if (config::enable_java_support) {
108
0
            if (_fn.is_udtf_function) {
109
                // fake function. it's no use and can't execute.
110
0
                auto builder =
111
0
                        std::make_shared<DefaultFunctionBuilder>(FunctionFake<UDTFImpl>::create());
112
0
                _function = builder->build(argument_template, std::make_shared<DataTypeUInt8>());
113
0
            } else {
114
0
                _function = JavaFunctionCall::create(_fn, argument_template, _data_type);
115
0
            }
116
0
        } else {
117
0
            return Status::InternalError(
118
0
                    "Java UDF is not enabled, you can change be config enable_java_support to true "
119
0
                    "and restart be.");
120
0
        }
121
94
    } else if (_fn.binary_type == TFunctionBinaryType::PYTHON_UDF) {
122
0
        if (config::enable_python_udf_support) {
123
0
            if (_fn.is_udtf_function) {
124
                // fake function. it's no use and can't execute.
125
                // Python UDTF is executed via PythonUDTFFunction in table function path
126
0
                auto builder =
127
0
                        std::make_shared<DefaultFunctionBuilder>(FunctionFake<UDTFImpl>::create());
128
0
                _function = builder->build(argument_template, std::make_shared<DataTypeUInt8>());
129
0
            } else {
130
0
                _function = PythonFunctionCall::create(_fn, argument_template, _data_type);
131
0
                LOG(INFO) << fmt::format(
132
0
                        "create python function call: {}, runtime version: {}, function code: {}",
133
0
                        _fn.name.function_name, _fn.runtime_version, _fn.function_code);
134
0
            }
135
0
        } else {
136
0
            return Status::InternalError(
137
0
                    "Python UDF is not enabled, you can change be config enable_python_udf_support "
138
0
                    "to true and restart be.");
139
0
        }
140
94
    } else if (_fn.binary_type == TFunctionBinaryType::AGG_STATE) {
141
0
        DataTypes argument_types;
142
0
        for (auto column : argument_template) {
143
0
            argument_types.emplace_back(column.type);
144
0
        }
145
146
0
        if (match_suffix(_fn.name.function_name, AGG_STATE_SUFFIX)) {
147
0
            if (_data_type->is_nullable()) {
148
0
                return Status::InternalError("State function's return type must be not nullable");
149
0
            }
150
0
            if (_data_type->get_primitive_type() != PrimitiveType::TYPE_AGG_STATE) {
151
0
                return Status::InternalError(
152
0
                        "State function's return type must be agg_state but get {}",
153
0
                        _data_type->get_family_name());
154
0
            }
155
0
            _function = FunctionAggState::create(
156
0
                    argument_types, _data_type,
157
0
                    assert_cast<const DataTypeAggState*>(_data_type.get())->get_nested_function());
158
0
        } else {
159
0
            return Status::InternalError("Function {} is not endwith '_state'", _fn.signature);
160
0
        }
161
94
    } else {
162
        // get the function. won't prepare function.
163
94
        _function = SimpleFunctionFactory::instance().get_function(
164
94
                _fn.name.function_name, argument_template, _data_type,
165
94
                {.new_version_unix_timestamp = state->query_options().new_version_unix_timestamp},
166
94
                state->be_exec_version());
167
94
    }
168
94
    if (_function == nullptr) {
169
0
        return Status::InternalError("Could not find function {}, arg {} return {} ",
170
0
                                     _fn.name.function_name, get_child_type_names(),
171
0
                                     _data_type->get_name());
172
0
    }
173
94
    VExpr::register_function_context(state, context);
174
94
    _function_name = _fn.name.function_name;
175
94
    _prepare_finished = true;
176
177
94
    FunctionContext* fn_ctx = context->fn_context(_fn_context_index);
178
94
    if (fn().__isset.dict_function) {
179
0
        fn_ctx->set_dict_function(fn().dict_function);
180
0
    }
181
94
    return Status::OK();
182
94
}
183
184
Status VectorizedFnCall::open(RuntimeState* state, VExprContext* context,
185
64
                              FunctionContext::FunctionStateScope scope) {
186
64
    DCHECK(_prepare_finished);
187
122
    for (auto& i : _children) {
188
122
        RETURN_IF_ERROR(i->open(state, context, scope));
189
122
    }
190
64
    RETURN_IF_ERROR(VExpr::init_function_context(state, context, scope, _function));
191
64
    if (scope == FunctionContext::FRAGMENT_LOCAL) {
192
48
        RETURN_IF_ERROR(VExpr::get_const_col(context, nullptr));
193
48
    }
194
64
    _open_finished = true;
195
64
    return Status::OK();
196
64
}
197
198
163
void VectorizedFnCall::close(VExprContext* context, FunctionContext::FunctionStateScope scope) {
199
163
    VExpr::close_function_context(context, scope, _function);
200
163
    VExpr::close(context, scope);
201
163
}
202
203
0
Status VectorizedFnCall::evaluate_inverted_index(VExprContext* context, uint32_t segment_num_rows) {
204
0
    if (get_num_children() < 1) {
205
        // score() and similar 0-children virtual column functions don't need
206
        // inverted index evaluation; return OK to skip gracefully.
207
0
        return Status::OK();
208
0
    }
209
0
    return _evaluate_inverted_index(context, _function, segment_num_rows);
210
0
}
211
212
Status VectorizedFnCall::_do_execute(VExprContext* context, const Block* block, Selector* selector,
213
                                     size_t count, ColumnPtr& result_column,
214
35
                                     ColumnPtr* arg_column) const {
215
35
    if (is_const_and_have_executed()) { // const have executed in open function
216
0
        result_column = get_result_from_const(count);
217
0
        return Status::OK();
218
0
    }
219
35
    if (fast_execute(context, selector, count, result_column)) {
220
0
        return Status::OK();
221
0
    }
222
35
    DBUG_EXECUTE_IF("VectorizedFnCall.must_in_slow_path", {
223
35
        if (get_child(0)->is_slot_ref()) {
224
35
            auto debug_col_name = DebugPoints::instance()->get_debug_param_or_default<std::string>(
225
35
                    "VectorizedFnCall.must_in_slow_path", "column_name", "");
226
227
35
            std::vector<std::string> column_names;
228
35
            boost::split(column_names, debug_col_name, boost::algorithm::is_any_of(","));
229
230
35
            auto* column_slot_ref = assert_cast<VSlotRef*>(get_child(0).get());
231
35
            std::string column_name = column_slot_ref->expr_name();
232
35
            auto it = std::find(column_names.begin(), column_names.end(), column_name);
233
35
            if (it == column_names.end()) {
234
35
                return Status::Error<ErrorCode::INTERNAL_ERROR>(
235
35
                        "column {} should in slow path while VectorizedFnCall::execute.",
236
35
                        column_name);
237
35
            }
238
35
        }
239
35
    })
240
35
    DCHECK(_open_finished || block == nullptr) << debug_string();
241
242
35
    Block temp_block;
243
35
    ColumnNumbers args(_children.size());
244
245
105
    for (int i = 0; i < _children.size(); ++i) {
246
70
        ColumnPtr tmp_arg_column;
247
70
        RETURN_IF_ERROR(
248
70
                _children[i]->execute_column(context, block, selector, count, tmp_arg_column));
249
70
        auto arg_type = _children[i]->execute_type(block);
250
70
        temp_block.insert({tmp_arg_column, arg_type, _children[i]->expr_name()});
251
70
        args[i] = i;
252
253
70
        if (arg_column != nullptr && i == 0) {
254
0
            *arg_column = tmp_arg_column;
255
0
        }
256
70
    }
257
258
35
    uint32_t num_columns_without_result = temp_block.columns();
259
    // prepare a column to save result
260
35
    temp_block.insert({nullptr, _data_type, _expr_name});
261
262
35
    DBUG_EXECUTE_IF("VectorizedFnCall.wait_before_execute", {
263
35
        auto possibility = DebugPoints::instance()->get_debug_param_or_default<double>(
264
35
                "VectorizedFnCall.wait_before_execute", "possibility", 0);
265
35
        if (random_bool_slow(possibility)) {
266
35
            LOG(WARNING) << "VectorizedFnCall::execute sleep 30s";
267
35
            sleep(30);
268
35
        }
269
35
    });
270
271
35
    RETURN_IF_ERROR(_function->execute(context->fn_context(_fn_context_index), temp_block, args,
272
35
                                       num_columns_without_result, count));
273
35
    result_column = temp_block.get_by_position(num_columns_without_result).column;
274
35
    DCHECK_EQ(result_column->size(), count);
275
35
    RETURN_IF_ERROR(result_column->column_self_check());
276
35
    return Status::OK();
277
35
}
278
279
0
size_t VectorizedFnCall::estimate_memory(const size_t rows) {
280
0
    if (is_const_and_have_executed()) { // const have execute in open function
281
0
        return 0;
282
0
    }
283
284
0
    size_t estimate_size = 0;
285
0
    for (auto& child : _children) {
286
0
        estimate_size += child->estimate_memory(rows);
287
0
    }
288
289
0
    if (_data_type->have_maximum_size_of_value()) {
290
0
        estimate_size += rows * _data_type->get_size_of_value_in_memory();
291
0
    } else {
292
0
        estimate_size += rows * 512; /// FIXME: estimated value...
293
0
    }
294
0
    return estimate_size;
295
0
}
296
297
Status VectorizedFnCall::execute_runtime_filter(VExprContext* context, const Block* block,
298
                                                const uint8_t* __restrict filter, size_t count,
299
                                                ColumnPtr& result_column,
300
0
                                                ColumnPtr* arg_column) const {
301
0
    return _do_execute(context, block, nullptr, count, result_column, arg_column);
302
0
}
303
304
Status VectorizedFnCall::execute_column(VExprContext* context, const Block* block,
305
                                        Selector* selector, size_t count,
306
35
                                        ColumnPtr& result_column) const {
307
35
    return _do_execute(context, block, selector, count, result_column, nullptr);
308
35
}
309
310
48
const std::string& VectorizedFnCall::expr_name() const {
311
48
    return _expr_name;
312
48
}
313
314
6
std::string VectorizedFnCall::function_name() const {
315
6
    return _function_name;
316
6
}
317
318
2
std::string VectorizedFnCall::debug_string() const {
319
2
    std::stringstream out;
320
2
    out << "VectorizedFn[";
321
2
    out << _expr_name;
322
2
    out << "]{";
323
2
    bool first = true;
324
2
    for (const auto& input_expr : children()) {
325
0
        if (first) {
326
0
            first = false;
327
0
        } else {
328
0
            out << ",";
329
0
        }
330
0
        out << "\n" << input_expr->debug_string();
331
0
    }
332
2
    out << "}";
333
2
    return out.str();
334
2
}
335
336
0
std::string VectorizedFnCall::debug_string(const std::vector<VectorizedFnCall*>& agg_fns) {
337
0
    std::stringstream out;
338
0
    out << "[";
339
0
    for (int i = 0; i < agg_fns.size(); ++i) {
340
0
        out << (i == 0 ? "" : " ") << agg_fns[i]->debug_string();
341
0
    }
342
0
    out << "]";
343
0
    return out.str();
344
0
}
345
346
0
bool VectorizedFnCall::can_push_down_to_index() const {
347
0
    return _function->can_push_down_to_index();
348
0
}
349
350
0
bool VectorizedFnCall::equals(const VExpr& other) {
351
0
    const auto* other_ptr = dynamic_cast<const VectorizedFnCall*>(&other);
352
0
    if (!other_ptr) {
353
0
        return false;
354
0
    }
355
0
    if (this->_function_name != other_ptr->_function_name) {
356
0
        return false;
357
0
    }
358
0
    if (get_num_children() != other_ptr->get_num_children()) {
359
0
        return false;
360
0
    }
361
0
    for (uint16_t i = 0; i < get_num_children(); i++) {
362
0
        if (!this->get_child(i)->equals(*other_ptr->get_child(i))) {
363
0
            return false;
364
0
        }
365
0
    }
366
0
    return true;
367
0
}
368
369
/*
370
 * For ANN range search we expect a comparison expression (LE/LT/GE/GT) whose left side is either:
371
 *   1) a vector distance function call, or
372
 *   2) a cast/virtual slot that unwraps to the function call when the planner promotes float to
373
 *      double literals.
374
 *
375
 * Visually the logical tree looks like:
376
 *
377
 *   FunctionCall(LE/LT/GE/GT)
378
 *   |----------------
379
 *   |               |
380
 *   |               |
381
 *   VirtualSlotRef* Float32Literal/Float64Literal
382
 *   |
383
 *   |
384
 *   Cast(Float -> Double)*
385
 *   |
386
 *   FunctionCall(distance)
387
 *   |----------------
388
 *   |               |
389
 *   |               |
390
 *   SlotRef         ArrayLiteral/Cast(String as Array<FLOAT>)
391
 *
392
 * Items marked with * are optional and depend on literal types/virtual column usage. The helper
393
 * below normalizes the shape and validates distance function, slot, and constant vector inputs.
394
 */
395
396
void VectorizedFnCall::prepare_ann_range_search(
397
        const doris::VectorSearchUserParams& user_params,
398
5
        segment_v2::AnnRangeSearchRuntime& range_search_runtime, bool& suitable_for_ann_index) {
399
5
    if (!suitable_for_ann_index) {
400
0
        return;
401
0
    }
402
403
5
    if (OPS_FOR_ANN_RANGE_SEARCH.find(this->op()) == OPS_FOR_ANN_RANGE_SEARCH.end()) {
404
0
        suitable_for_ann_index = false;
405
0
        return;
406
0
    }
407
408
5
    auto mark_unsuitable = [&](const std::string& reason) {
409
1
        suitable_for_ann_index = false;
410
1
        VLOG_DEBUG << "ANN range search skipped: " << reason;
411
1
    };
412
413
5
    range_search_runtime.is_le_or_lt =
414
5
            (this->op() == TExprOpcode::LE || this->op() == TExprOpcode::LT);
415
416
5
    DCHECK(_children.size() == 2);
417
418
5
    auto left_child = get_child(0);
419
5
    auto right_child = get_child(1);
420
421
    // ========== Step 1: Check left child - must be a distance function ==========
422
5
    auto get_virtual_expr = [&](const VExprSPtr& expr,
423
5
                                std::shared_ptr<VirtualSlotRef>& slot_ref) -> VExprSPtr {
424
5
        auto virtual_ref = std::dynamic_pointer_cast<VirtualSlotRef>(expr);
425
5
        if (virtual_ref != nullptr) {
426
5
            DCHECK(virtual_ref->get_virtual_column_expr() != nullptr);
427
5
            slot_ref = virtual_ref;
428
5
            return virtual_ref->get_virtual_column_expr();
429
5
        }
430
0
        return expr;
431
5
    };
432
433
5
    std::shared_ptr<VirtualSlotRef> vir_slot_ref;
434
5
    auto normalized_left = get_virtual_expr(left_child, vir_slot_ref);
435
436
    // Try to find the distance function call, it may be wrapped in a Cast(Float->Double)
437
5
    std::shared_ptr<VectorizedFnCall> function_call =
438
5
            std::dynamic_pointer_cast<VectorizedFnCall>(normalized_left);
439
5
    bool has_float_to_double_cast = false;
440
441
5
    if (function_call == nullptr) {
442
        // Check if it's a Cast expression wrapping a function call
443
0
        auto cast_expr = std::dynamic_pointer_cast<VCastExpr>(normalized_left);
444
0
        if (cast_expr == nullptr) {
445
0
            mark_unsuitable("Left child is neither a function call nor a cast expression.");
446
0
            return;
447
0
        }
448
0
        has_float_to_double_cast = true;
449
0
        auto normalized_cast_child = get_virtual_expr(cast_expr->get_child(0), vir_slot_ref);
450
0
        function_call = std::dynamic_pointer_cast<VectorizedFnCall>(normalized_cast_child);
451
0
        if (function_call == nullptr) {
452
0
            mark_unsuitable("Left child of cast is not a function call.");
453
0
            return;
454
0
        }
455
0
    }
456
457
    // Check if it's a supported distance function
458
5
    if (DISTANCE_FUNCS.find(function_call->_function_name) == DISTANCE_FUNCS.end()) {
459
0
        mark_unsuitable(fmt::format("Left child is not a supported distance function: {}",
460
0
                                    function_call->_function_name));
461
0
        return;
462
0
    }
463
464
    // Strip the _approximate suffix to get metric type
465
5
    std::string metric_name = function_call->_function_name;
466
5
    metric_name = metric_name.substr(0, metric_name.size() - 12);
467
5
    range_search_runtime.metric_type = segment_v2::string_to_metric(metric_name);
468
469
    // ========== Step 2: Validate distance function arguments ==========
470
    // Identify the slot ref child and the constant query array child (ArrayLiteral or CAST to array)
471
5
    Int32 idx_of_slot_ref = -1;
472
5
    Int32 idx_of_array_expr = -1;
473
10
    auto classify_child = [&](const VExprSPtr& child, UInt16 index) {
474
10
        if (idx_of_slot_ref == -1 && std::dynamic_pointer_cast<VSlotRef>(child) != nullptr) {
475
5
            idx_of_slot_ref = index;
476
5
            return;
477
5
        }
478
5
        if (idx_of_array_expr == -1 &&
479
5
            (std::dynamic_pointer_cast<VArrayLiteral>(child) != nullptr ||
480
5
             std::dynamic_pointer_cast<VCastExpr>(child) != nullptr)) {
481
5
            idx_of_array_expr = index;
482
5
        }
483
5
    };
484
485
15
    for (UInt16 i = 0; i < function_call->get_num_children(); ++i) {
486
10
        classify_child(function_call->get_child(i), i);
487
10
    }
488
489
5
    if (idx_of_slot_ref == -1 || idx_of_array_expr == -1) {
490
0
        mark_unsuitable("slot ref or array literal/cast is missing.");
491
0
        return;
492
0
    }
493
494
5
    auto slot_ref = std::dynamic_pointer_cast<VSlotRef>(
495
5
            function_call->get_child(static_cast<UInt16>(idx_of_slot_ref)));
496
5
    range_search_runtime.src_col_idx = slot_ref->column_id();
497
5
    range_search_runtime.dst_col_idx = vir_slot_ref == nullptr ? -1 : vir_slot_ref->column_id();
498
499
    // Materialize the constant array expression and validate its shape and types
500
5
    auto array_expr = function_call->get_child(static_cast<UInt16>(idx_of_array_expr));
501
5
    auto extract_result = extract_query_vector(array_expr);
502
5
    if (!extract_result.has_value()) {
503
0
        mark_unsuitable("Failed to extract query vector from constant array expression.");
504
0
        return;
505
0
    }
506
5
    range_search_runtime.query_value = extract_result.value();
507
5
    range_search_runtime.dim = range_search_runtime.query_value->size();
508
509
    // ========== Step 3: Check right child - must be a float/double literal ==========
510
5
    auto right_literal = std::dynamic_pointer_cast<VLiteral>(right_child);
511
5
    if (right_literal == nullptr) {
512
1
        mark_unsuitable("Right child is not a literal.");
513
1
        return;
514
1
    }
515
516
    // Handle nullable literal gracefully - just mark as unsuitable instead of crash
517
4
    if (right_literal->is_nullable()) {
518
0
        mark_unsuitable("Right literal is nullable, not supported for ANN range search.");
519
0
        return;
520
0
    }
521
522
4
    auto right_type = right_literal->get_data_type();
523
4
    PrimitiveType right_primitive = right_type->get_primitive_type();
524
4
    const bool float32_literal = right_primitive == PrimitiveType::TYPE_FLOAT;
525
4
    const bool float64_literal = right_primitive == PrimitiveType::TYPE_DOUBLE;
526
527
4
    if (!float32_literal && !float64_literal) {
528
0
        mark_unsuitable("Right child is not a Float32Literal or Float64Literal.");
529
0
        return;
530
0
    }
531
532
    // Validate consistency: if we have Cast(Float->Double), right must be double literal
533
4
    if (has_float_to_double_cast && !float64_literal) {
534
0
        mark_unsuitable("Cast expression expects double literal on right side.");
535
0
        return;
536
0
    }
537
538
    // Extract radius value
539
4
    auto right_col = right_literal->get_column_ptr()->convert_to_full_column_if_const();
540
4
    if (float32_literal) {
541
4
        const ColumnFloat32* cf32_right = assert_cast<const ColumnFloat32*>(right_col.get());
542
4
        range_search_runtime.radius = cf32_right->get_data()[0];
543
4
    } else {
544
0
        const ColumnFloat64* cf64_right = assert_cast<const ColumnFloat64*>(right_col.get());
545
0
        range_search_runtime.radius = static_cast<float>(cf64_right->get_data()[0]);
546
0
    }
547
548
    // ========== Done: Mark as suitable for ANN range search ==========
549
4
    range_search_runtime.is_ann_range_search = true;
550
4
    range_search_runtime.user_params = user_params;
551
4
    VLOG_DEBUG << fmt::format("Ann range search params: {}", range_search_runtime.to_string());
552
4
    return;
553
4
}
554
555
Status VectorizedFnCall::evaluate_ann_range_search(
556
        const segment_v2::AnnRangeSearchRuntime& range_search_runtime,
557
        const std::vector<std::unique_ptr<segment_v2::IndexIterator>>& cid_to_index_iterators,
558
        const std::vector<ColumnId>& idx_to_cid,
559
        const std::vector<std::unique_ptr<segment_v2::ColumnIterator>>& column_iterators,
560
3
        roaring::Roaring& row_bitmap, segment_v2::AnnIndexStats& ann_index_stats) {
561
3
    if (range_search_runtime.is_ann_range_search == false) {
562
0
        return Status::OK();
563
0
    }
564
565
3
    VLOG_DEBUG << fmt::format("Try apply ann range search. Local search params: {}",
566
0
                              range_search_runtime.to_string());
567
3
    size_t origin_num = row_bitmap.cardinality();
568
569
3
    int idx_in_block = static_cast<int>(range_search_runtime.src_col_idx);
570
3
    DCHECK(idx_in_block < idx_to_cid.size())
571
0
            << "idx_in_block: " << idx_in_block << ", idx_to_cid.size(): " << idx_to_cid.size();
572
573
3
    ColumnId src_col_cid = idx_to_cid[idx_in_block];
574
3
    DCHECK(src_col_cid < cid_to_index_iterators.size());
575
3
    segment_v2::IndexIterator* index_iterator = cid_to_index_iterators[src_col_cid].get();
576
3
    if (index_iterator == nullptr) {
577
0
        VLOG_DEBUG << "ANN range search skipped: "
578
0
                   << fmt::format("No index iterator for column cid {}", src_col_cid);
579
0
        ;
580
0
        return Status::OK();
581
0
    }
582
583
3
    segment_v2::AnnIndexIterator* ann_index_iterator =
584
3
            dynamic_cast<segment_v2::AnnIndexIterator*>(index_iterator);
585
3
    if (ann_index_iterator == nullptr) {
586
0
        VLOG_DEBUG << "ANN range search skipped: "
587
0
                   << fmt::format("Column cid {} has no ANN index iterator", src_col_cid);
588
0
        return Status::OK();
589
0
    }
590
3
    DCHECK(ann_index_iterator->get_reader(AnnIndexReaderType::ANN) != nullptr)
591
0
            << "Ann index iterator should have reader. Column cid: " << src_col_cid;
592
3
    std::shared_ptr<AnnIndexReader> ann_index_reader = std::dynamic_pointer_cast<AnnIndexReader>(
593
3
            ann_index_iterator->get_reader(segment_v2::AnnIndexReaderType::ANN));
594
3
    DCHECK(ann_index_reader != nullptr)
595
0
            << "Ann index reader should not be null. Column cid: " << src_col_cid;
596
    // Check if metrics type is match.
597
3
    if (ann_index_reader->get_metric_type() != range_search_runtime.metric_type) {
598
0
        VLOG_DEBUG << "ANN range search skipped: "
599
0
                   << fmt::format("Metric type mismatch. Index={} Query={}",
600
0
                                  segment_v2::metric_to_string(ann_index_reader->get_metric_type()),
601
0
                                  segment_v2::metric_to_string(range_search_runtime.metric_type));
602
0
        return Status::OK();
603
0
    }
604
605
    // Check dimension if available (>0)
606
3
    const size_t index_dim = ann_index_reader->get_dimension();
607
3
    if (index_dim > 0 && index_dim != range_search_runtime.dim) {
608
1
        return Status::InvalidArgument(
609
1
                "Ann range search query dimension {} does not match index dimension {}",
610
1
                range_search_runtime.dim, index_dim);
611
1
    }
612
613
2
    AnnRangeSearchParams params = range_search_runtime.to_range_search_params();
614
615
2
    params.roaring = &row_bitmap;
616
2
    DCHECK(params.roaring != nullptr);
617
2
    DCHECK(params.query_value != nullptr);
618
2
    segment_v2::AnnRangeSearchResult result;
619
2
    auto stats = std::make_unique<segment_v2::AnnIndexStats>();
620
2
    RETURN_IF_ERROR(ann_index_iterator->range_search(params, range_search_runtime.user_params,
621
2
                                                     &result, stats.get()));
622
623
2
#ifndef NDEBUG
624
2
    if (range_search_runtime.is_le_or_lt == false &&
625
2
        ann_index_reader->get_metric_type() == AnnIndexMetric::L2) {
626
1
        DCHECK(result.distance == nullptr) << "Should not have distance";
627
1
    }
628
2
    if (range_search_runtime.is_le_or_lt == true &&
629
2
        ann_index_reader->get_metric_type() == AnnIndexMetric::IP) {
630
0
        DCHECK(result.distance == nullptr);
631
0
    }
632
2
#endif
633
2
    DCHECK(result.roaring != nullptr);
634
2
    row_bitmap = *result.roaring;
635
636
    // Process virtual column
637
2
    if (range_search_runtime.dst_col_idx >= 0) {
638
        // Prepare materialization if we can use result from index.
639
        // Typical situation: range search and operator is LE or LT.
640
2
        if (result.distance != nullptr) {
641
1
            DCHECK(result.row_ids != nullptr);
642
1
            ColumnId dst_col_cid = idx_to_cid[range_search_runtime.dst_col_idx];
643
1
            DCHECK(dst_col_cid < column_iterators.size());
644
1
            DCHECK(column_iterators[dst_col_cid] != nullptr);
645
1
            segment_v2::ColumnIterator* column_iterator = column_iterators[dst_col_cid].get();
646
1
            DCHECK(column_iterator != nullptr);
647
1
            segment_v2::VirtualColumnIterator* virtual_column_iterator =
648
1
                    dynamic_cast<segment_v2::VirtualColumnIterator*>(column_iterator);
649
1
            DCHECK(virtual_column_iterator != nullptr);
650
            // Now convert distance to column
651
1
            size_t size = result.roaring->cardinality();
652
1
            auto distance_col = ColumnFloat32::create(size);
653
1
            const float* src = result.distance.get();
654
1
            float* dst = distance_col->get_data().data();
655
11
            for (size_t i = 0; i < size; ++i) {
656
10
                dst[i] = src[i];
657
10
            }
658
1
            virtual_column_iterator->prepare_materialization(std::move(distance_col),
659
1
                                                             std::move(result.row_ids));
660
1
            _virtual_column_is_fulfilled = true;
661
1
        } else {
662
            // Whether the ANN index should have produced distance depends on metric and operator:
663
            //  - L2: distance is produced for LE/LT; not produced for GE/GT
664
            //  - IP: distance is produced for GE/GT; not produced for LE/LT
665
1
#ifndef NDEBUG
666
1
            const bool should_have_distance =
667
1
                    (range_search_runtime.is_le_or_lt &&
668
1
                     range_search_runtime.metric_type == AnnIndexMetric::L2) ||
669
1
                    (!range_search_runtime.is_le_or_lt &&
670
1
                     range_search_runtime.metric_type == AnnIndexMetric::IP);
671
            // If we expected distance but didn't get it, assert in debug to catch logic errors.
672
1
            DCHECK(!should_have_distance) << "Expected distance from ANN index but got none";
673
1
#endif
674
1
            _virtual_column_is_fulfilled = false;
675
1
        }
676
2
    } else {
677
        // Dest is not virtual column.
678
0
        _virtual_column_is_fulfilled = true;
679
0
    }
680
681
2
    _has_been_executed = true;
682
2
    VLOG_DEBUG << fmt::format(
683
0
            "Ann range search filtered {} rows, origin {} rows, virtual column is full-filled: {}",
684
0
            origin_num - row_bitmap.cardinality(), origin_num, _virtual_column_is_fulfilled);
685
686
2
    ann_index_stats = *stats;
687
2
    return Status::OK();
688
2
}
689
690
16
double VectorizedFnCall::execute_cost() const {
691
16
    if (!_function) {
692
0
        throw Exception(
693
0
                Status::InternalError("Function is null in expression: {}", this->debug_string()));
694
0
    }
695
16
    double cost = _function->execute_cost();
696
32
    for (const auto& child : _children) {
697
32
        cost += child->execute_cost();
698
32
    }
699
16
    return cost;
700
16
}
701
702
#include "common/compile_check_end.h"
703
} // namespace doris