be/src/exprs/vectorized_fn_call.cpp
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1 | | // Licensed to the Apache Software Foundation (ASF) under one |
2 | | // or more contributor license agreements. See the NOTICE file |
3 | | // distributed with this work for additional information |
4 | | // regarding copyright ownership. The ASF licenses this file |
5 | | // to you under the Apache License, Version 2.0 (the |
6 | | // "License"); you may not use this file except in compliance |
7 | | // with the License. You may obtain a copy of the License at |
8 | | // |
9 | | // http://www.apache.org/licenses/LICENSE-2.0 |
10 | | // |
11 | | // Unless required by applicable law or agreed to in writing, |
12 | | // software distributed under the License is distributed on an |
13 | | // "AS IS" BASIS, WITHOUT WARRANTIES OR CONDITIONS OF ANY |
14 | | // KIND, either express or implied. See the License for the |
15 | | // specific language governing permissions and limitations |
16 | | // under the License. |
17 | | |
18 | | #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 <optional> |
28 | | #include <ostream> |
29 | | #include <set> |
30 | | |
31 | | #include "common/config.h" |
32 | | #include "common/exception.h" |
33 | | #include "common/logging.h" |
34 | | #include "common/status.h" |
35 | | #include "common/utils.h" |
36 | | #include "core/assert_cast.h" |
37 | | #include "core/block/block.h" |
38 | | #include "core/block/column_numbers.h" |
39 | | #include "core/column/column.h" |
40 | | #include "core/column/column_array.h" |
41 | | #include "core/column/column_nullable.h" |
42 | | #include "core/column/column_vector.h" |
43 | | #include "core/data_type/data_type.h" |
44 | | #include "core/data_type/data_type_agg_state.h" |
45 | | #include "core/types.h" |
46 | | #include "exec/common/util.hpp" |
47 | | #include "exec/pipeline/pipeline_task.h" |
48 | | #include "exprs/function/array/function_array_distance.h" |
49 | | #include "exprs/function/function_agg_state.h" |
50 | | #include "exprs/function/function_fake.h" |
51 | | #include "exprs/function/function_java_udf.h" |
52 | | #include "exprs/function/function_python_udf.h" |
53 | | #include "exprs/function/function_rpc.h" |
54 | | #include "exprs/function/simple_function_factory.h" |
55 | | #include "exprs/function_context.h" |
56 | | #include "exprs/varray_literal.h" |
57 | | #include "exprs/vcast_expr.h" |
58 | | #include "exprs/vexpr_context.h" |
59 | | #include "exprs/virtual_slot_ref.h" |
60 | | #include "exprs/vliteral.h" |
61 | | #include "runtime/runtime_state.h" |
62 | | #include "storage/index/ann/ann_index.h" |
63 | | #include "storage/index/ann/ann_index_iterator.h" |
64 | | #include "storage/index/ann/ann_search_params.h" |
65 | | #include "storage/index/index_reader.h" |
66 | | #include "storage/index/zone_map/zonemap_eval_context.h" |
67 | | #include "storage/segment/column_reader.h" |
68 | | #include "storage/segment/virtual_column_iterator.h" |
69 | | #include "util/simd/parquet_kernels.h" |
70 | | |
71 | | namespace doris { |
72 | | class RowDescriptor; |
73 | | class RuntimeState; |
74 | | class TExprNode; |
75 | | } // namespace doris |
76 | | |
77 | | namespace doris { |
78 | | |
79 | | const std::string AGG_STATE_SUFFIX = "_state"; |
80 | | |
81 | | // Now left child is a function call, we need to check if it is a distance function |
82 | | const static std::set<std::string> DISTANCE_FUNCS = {L2DistanceApproximate::name, |
83 | | InnerProductApproximate::name}; |
84 | | const static std::set<TExprOpcode::type> OPS_FOR_ANN_RANGE_SEARCH = { |
85 | | TExprOpcode::GE, TExprOpcode::LE, TExprOpcode::LE, TExprOpcode::GT, TExprOpcode::LT}; |
86 | | |
87 | | namespace { |
88 | | |
89 | | using simd::RawComparisonOp; |
90 | | |
91 | 205 | std::optional<RawComparisonOp> raw_comparison_op(std::string_view function_name, bool reverse) { |
92 | 205 | RawComparisonOp op; |
93 | 205 | if (function_name == "eq") { |
94 | 2 | op = RawComparisonOp::EQ; |
95 | 203 | } else if (function_name == "ne") { |
96 | 0 | op = RawComparisonOp::NE; |
97 | 203 | } else if (function_name == "lt") { |
98 | 9 | op = RawComparisonOp::LT; |
99 | 194 | } else if (function_name == "le") { |
100 | 0 | op = RawComparisonOp::LE; |
101 | 194 | } else if (function_name == "gt") { |
102 | 186 | op = RawComparisonOp::GT; |
103 | 186 | } else if (function_name == "ge") { |
104 | 8 | op = RawComparisonOp::GE; |
105 | 8 | } else { |
106 | 0 | return std::nullopt; |
107 | 0 | } |
108 | 205 | if (!reverse || op == RawComparisonOp::EQ || op == RawComparisonOp::NE) { |
109 | 204 | return op; |
110 | 204 | } |
111 | 1 | switch (op) { |
112 | 1 | case RawComparisonOp::LT: |
113 | 1 | return RawComparisonOp::GT; |
114 | 0 | case RawComparisonOp::LE: |
115 | 0 | return RawComparisonOp::GE; |
116 | 0 | case RawComparisonOp::GT: |
117 | 0 | return RawComparisonOp::LT; |
118 | 0 | case RawComparisonOp::GE: |
119 | 0 | return RawComparisonOp::LE; |
120 | 0 | case RawComparisonOp::EQ: |
121 | 0 | case RawComparisonOp::NE: |
122 | 0 | break; |
123 | 1 | } |
124 | 0 | __builtin_unreachable(); |
125 | 1 | } |
126 | | |
127 | | template <typename T, PrimitiveType PT> |
128 | | void execute_raw_comparison(const uint8_t* values, size_t num_values, const Field& literal, |
129 | 43 | RawComparisonOp op, uint8_t* matches) { |
130 | 43 | const T rhs = literal.get<PT>(); |
131 | 43 | simd::raw_compare(values, num_values, rhs, op, matches); |
132 | 43 | } vectorized_fn_call.cpp:_ZN5doris12_GLOBAL__N_122execute_raw_comparisonIiLNS_13PrimitiveTypeE5EEEvPKhmRKNS_5FieldENS_4simd15RawComparisonOpEPh Line | Count | Source | 129 | 41 | RawComparisonOp op, uint8_t* matches) { | 130 | 41 | const T rhs = literal.get<PT>(); | 131 | 41 | simd::raw_compare(values, num_values, rhs, op, matches); | 132 | 41 | } |
Unexecuted instantiation: vectorized_fn_call.cpp:_ZN5doris12_GLOBAL__N_122execute_raw_comparisonIlLNS_13PrimitiveTypeE6EEEvPKhmRKNS_5FieldENS_4simd15RawComparisonOpEPh vectorized_fn_call.cpp:_ZN5doris12_GLOBAL__N_122execute_raw_comparisonIfLNS_13PrimitiveTypeE8EEEvPKhmRKNS_5FieldENS_4simd15RawComparisonOpEPh Line | Count | Source | 129 | 2 | RawComparisonOp op, uint8_t* matches) { | 130 | 2 | const T rhs = literal.get<PT>(); | 131 | 2 | simd::raw_compare(values, num_values, rhs, op, matches); | 132 | 2 | } |
Unexecuted instantiation: vectorized_fn_call.cpp:_ZN5doris12_GLOBAL__N_122execute_raw_comparisonIdLNS_13PrimitiveTypeE9EEEvPKhmRKNS_5FieldENS_4simd15RawComparisonOpEPh |
133 | | |
134 | | } // namespace |
135 | | |
136 | 247 | VectorizedFnCall::VectorizedFnCall(const TExprNode& node) : VExpr(node) { |
137 | 247 | _function_name = _fn.name.function_name; |
138 | 247 | } |
139 | | |
140 | | Status VectorizedFnCall::prepare(RuntimeState* state, const RowDescriptor& desc, |
141 | 183 | VExprContext* context) { |
142 | 183 | RETURN_IF_ERROR_OR_PREPARED(VExpr::prepare(state, desc, context)); |
143 | 183 | ColumnsWithTypeAndName argument_template; |
144 | 183 | argument_template.reserve(_children.size()); |
145 | 348 | for (auto child : _children) { |
146 | 348 | if (child->is_literal()) { |
147 | | // For some functions, he needs some literal columns to derive the return type. |
148 | 129 | auto literal_node = std::dynamic_pointer_cast<VLiteral>(child); |
149 | 129 | argument_template.emplace_back(literal_node->get_column_ptr(), child->data_type(), |
150 | 129 | child->expr_name()); |
151 | 219 | } else { |
152 | 219 | argument_template.emplace_back(nullptr, child->data_type(), child->expr_name()); |
153 | 219 | } |
154 | 348 | } |
155 | | |
156 | 183 | _expr_name = fmt::format("VectorizedFnCall[{}](arguments={},return={})", _fn.name.function_name, |
157 | 183 | get_child_names(), _data_type->get_name()); |
158 | 183 | if (_fn.binary_type == TFunctionBinaryType::RPC) { |
159 | 0 | _function = FunctionRPC::create(_fn, argument_template, _data_type); |
160 | 183 | } else if (_fn.binary_type == TFunctionBinaryType::JAVA_UDF) { |
161 | 0 | if (config::enable_java_support) { |
162 | 0 | if (_fn.is_udtf_function) { |
163 | | // fake function. it's no use and can't execute. |
164 | 0 | auto builder = |
165 | 0 | std::make_shared<DefaultFunctionBuilder>(FunctionFake<UDTFImpl>::create()); |
166 | 0 | _function = builder->build(argument_template, std::make_shared<DataTypeUInt8>()); |
167 | 0 | } else { |
168 | 0 | _function = JavaFunctionCall::create(_fn, argument_template, _data_type); |
169 | 0 | } |
170 | 0 | } else { |
171 | 0 | return Status::InternalError( |
172 | 0 | "Java UDF is not enabled, you can change be config enable_java_support to true " |
173 | 0 | "and restart be."); |
174 | 0 | } |
175 | 183 | } else if (_fn.binary_type == TFunctionBinaryType::PYTHON_UDF) { |
176 | 0 | if (config::enable_python_udf_support) { |
177 | 0 | if (_fn.is_udtf_function) { |
178 | | // fake function. it's no use and can't execute. |
179 | | // Python UDTF is executed via PythonUDTFFunction in table function path |
180 | 0 | auto builder = |
181 | 0 | std::make_shared<DefaultFunctionBuilder>(FunctionFake<UDTFImpl>::create()); |
182 | 0 | _function = builder->build(argument_template, std::make_shared<DataTypeUInt8>()); |
183 | 0 | } else { |
184 | 0 | _function = PythonFunctionCall::create(_fn, argument_template, _data_type); |
185 | 0 | LOG(INFO) << fmt::format( |
186 | 0 | "create python function call: {}, runtime version: {}, function code: {}", |
187 | 0 | _fn.name.function_name, _fn.runtime_version, _fn.function_code); |
188 | 0 | } |
189 | 0 | } else { |
190 | 0 | return Status::InternalError( |
191 | 0 | "Python UDF is not enabled, you can change be config enable_python_udf_support " |
192 | 0 | "to true and restart be."); |
193 | 0 | } |
194 | 183 | } else if (_fn.binary_type == TFunctionBinaryType::AGG_STATE) { |
195 | 0 | DataTypes argument_types; |
196 | 0 | for (auto column : argument_template) { |
197 | 0 | argument_types.emplace_back(column.type); |
198 | 0 | } |
199 | |
|
200 | 0 | if (match_suffix(_fn.name.function_name, AGG_STATE_SUFFIX)) { |
201 | 0 | if (_data_type->is_nullable()) { |
202 | 0 | return Status::InternalError("State function's return type must be not nullable"); |
203 | 0 | } |
204 | 0 | if (_data_type->get_primitive_type() != PrimitiveType::TYPE_AGG_STATE) { |
205 | 0 | return Status::InternalError( |
206 | 0 | "State function's return type must be agg_state but get {}", |
207 | 0 | _data_type->get_family_name()); |
208 | 0 | } |
209 | 0 | _function = FunctionAggState::create( |
210 | 0 | argument_types, _data_type, |
211 | 0 | assert_cast<const DataTypeAggState*>(_data_type.get())->get_nested_function()); |
212 | 0 | } else { |
213 | 0 | return Status::InternalError("Function {} is not endwith '_state'", _fn.signature); |
214 | 0 | } |
215 | 183 | } else { |
216 | | // get the function. won't prepare function. |
217 | 183 | _function = SimpleFunctionFactory::instance().get_function( |
218 | 183 | _fn.name.function_name, argument_template, _data_type, |
219 | 183 | {.new_version_unix_timestamp = state->query_options().new_version_unix_timestamp}, |
220 | 183 | state->be_exec_version()); |
221 | 183 | } |
222 | 183 | if (_function == nullptr) { |
223 | 0 | return Status::InternalError("Could not find function {}, arg {} return {} ", |
224 | 0 | _fn.name.function_name, get_child_type_names(), |
225 | 0 | _data_type->get_name()); |
226 | 0 | } |
227 | 183 | VExpr::register_function_context(state, context); |
228 | 183 | _function_name = _fn.name.function_name; |
229 | 183 | _prepare_finished = true; |
230 | | |
231 | 183 | FunctionContext* fn_ctx = context->fn_context(_fn_context_index); |
232 | 183 | if (fn().__isset.dict_function) { |
233 | 0 | fn_ctx->set_dict_function(fn().dict_function); |
234 | 0 | } |
235 | 183 | return Status::OK(); |
236 | 183 | } |
237 | | |
238 | | Status VectorizedFnCall::open(RuntimeState* state, VExprContext* context, |
239 | 180 | FunctionContext::FunctionStateScope scope) { |
240 | 180 | DCHECK(_prepare_finished); |
241 | 332 | for (auto& i : _children) { |
242 | 332 | RETURN_IF_ERROR(i->open(state, context, scope)); |
243 | 332 | } |
244 | 180 | RETURN_IF_ERROR(VExpr::init_function_context(state, context, scope, _function)); |
245 | 180 | if (scope == FunctionContext::FRAGMENT_LOCAL) { |
246 | 137 | RETURN_IF_ERROR(VExpr::get_const_col(context, nullptr)); |
247 | 137 | } |
248 | 180 | _open_finished = true; |
249 | 180 | return Status::OK(); |
250 | 180 | } |
251 | | |
252 | 292 | void VectorizedFnCall::close(VExprContext* context, FunctionContext::FunctionStateScope scope) { |
253 | 292 | VExpr::close_function_context(context, scope, _function); |
254 | 292 | VExpr::close(context, scope); |
255 | 292 | } |
256 | | |
257 | 18 | Status VectorizedFnCall::evaluate_inverted_index(VExprContext* context, uint32_t segment_num_rows) { |
258 | 18 | if (get_num_children() < 1) { |
259 | | // score() and similar 0-children virtual column functions don't need |
260 | | // inverted index evaluation; return OK to skip gracefully. |
261 | 0 | return Status::OK(); |
262 | 0 | } |
263 | 18 | return _evaluate_inverted_index(context, _function, segment_num_rows); |
264 | 18 | } |
265 | | |
266 | 41 | ZoneMapFilterResult VectorizedFnCall::evaluate_zonemap_filter(const ZoneMapEvalContext& ctx) const { |
267 | 41 | return _function->evaluate_zonemap_filter(ctx, _children); |
268 | 41 | } |
269 | | |
270 | 199 | bool VectorizedFnCall::can_evaluate_zonemap_filter() const { |
271 | 199 | return _function != nullptr && !_function->is_blockable() && |
272 | 199 | _function->can_evaluate_zonemap_filter(_children); |
273 | 199 | } |
274 | | |
275 | | ZoneMapFilterResult VectorizedFnCall::evaluate_dictionary_filter( |
276 | 0 | const DictionaryEvalContext& ctx) const { |
277 | 0 | return _function->evaluate_dictionary_filter(ctx, _children); |
278 | 0 | } |
279 | | |
280 | 42 | bool VectorizedFnCall::can_evaluate_dictionary_filter() const { |
281 | 42 | return _function != nullptr && !_function->is_blockable() && |
282 | 42 | _function->can_evaluate_dictionary_filter(_children); |
283 | 42 | } |
284 | | |
285 | | ZoneMapFilterResult VectorizedFnCall::evaluate_bloom_filter( |
286 | 0 | const BloomFilterEvalContext& ctx) const { |
287 | 0 | return _function->evaluate_bloom_filter(ctx, _children); |
288 | 0 | } |
289 | | |
290 | 26 | bool VectorizedFnCall::can_evaluate_bloom_filter() const { |
291 | 26 | return _function != nullptr && !_function->is_blockable() && |
292 | 26 | _function->can_evaluate_bloom_filter(_children); |
293 | 26 | } |
294 | | |
295 | | Status VectorizedFnCall::_do_execute(VExprContext* context, const Block* block, |
296 | | const Selector* selector, size_t count, |
297 | 103 | ColumnPtr& result_column, ColumnPtr* arg_column) const { |
298 | 103 | if (is_const_and_have_executed()) { // const have executed in open function |
299 | 0 | result_column = get_result_from_const(count); |
300 | 0 | return Status::OK(); |
301 | 0 | } |
302 | 103 | if (fast_execute(context, selector, count, result_column)) { |
303 | 0 | return Status::OK(); |
304 | 0 | } |
305 | 103 | DBUG_EXECUTE_IF("VectorizedFnCall.must_in_slow_path", { |
306 | 103 | if (get_child(0)->is_slot_ref()) { |
307 | 103 | auto debug_col_name = DebugPoints::instance()->get_debug_param_or_default<std::string>( |
308 | 103 | "VectorizedFnCall.must_in_slow_path", "column_name", ""); |
309 | | |
310 | 103 | std::vector<std::string> column_names; |
311 | 103 | boost::split(column_names, debug_col_name, boost::algorithm::is_any_of(",")); |
312 | | |
313 | 103 | auto* column_slot_ref = assert_cast<VSlotRef*>(get_child(0).get()); |
314 | 103 | std::string column_name = column_slot_ref->expr_name(); |
315 | 103 | auto it = std::find(column_names.begin(), column_names.end(), column_name); |
316 | 103 | if (it == column_names.end()) { |
317 | 103 | return Status::Error<ErrorCode::INTERNAL_ERROR>( |
318 | 103 | "column {} should in slow path while VectorizedFnCall::execute.", |
319 | 103 | column_name); |
320 | 103 | } |
321 | 103 | } |
322 | 103 | }) |
323 | 103 | DCHECK(_open_finished || block == nullptr) << debug_string(); |
324 | | |
325 | 103 | Block temp_block; |
326 | 103 | ColumnNumbers args(_children.size()); |
327 | | |
328 | 303 | for (int i = 0; i < _children.size(); ++i) { |
329 | 201 | ColumnPtr tmp_arg_column; |
330 | 201 | RETURN_IF_ERROR( |
331 | 201 | _children[i]->execute_column(context, block, selector, count, tmp_arg_column)); |
332 | 200 | auto arg_type = _children[i]->execute_type(block); |
333 | 200 | temp_block.insert({tmp_arg_column, arg_type, _children[i]->expr_name()}); |
334 | 200 | args[i] = i; |
335 | | |
336 | 200 | if (arg_column != nullptr && i == 0) { |
337 | 2 | *arg_column = tmp_arg_column; |
338 | 2 | } |
339 | 200 | } |
340 | | |
341 | 102 | uint32_t num_columns_without_result = temp_block.columns(); |
342 | | // prepare a column to save result |
343 | 102 | temp_block.insert({nullptr, _data_type, _expr_name}); |
344 | | |
345 | 102 | DBUG_EXECUTE_IF("VectorizedFnCall.wait_before_execute", { |
346 | 102 | auto possibility = DebugPoints::instance()->get_debug_param_or_default<double>( |
347 | 102 | "VectorizedFnCall.wait_before_execute", "possibility", 0); |
348 | 102 | if (random_bool_slow(possibility)) { |
349 | 102 | LOG(WARNING) << "VectorizedFnCall::execute sleep 30s"; |
350 | 102 | sleep(30); |
351 | 102 | } |
352 | 102 | }); |
353 | | |
354 | 102 | RETURN_IF_ERROR(_function->execute(context->fn_context(_fn_context_index), temp_block, args, |
355 | 102 | num_columns_without_result, count)); |
356 | 102 | result_column = temp_block.get_by_position(num_columns_without_result).column; |
357 | 102 | DCHECK_EQ(result_column->size(), count); |
358 | 102 | RETURN_IF_ERROR(result_column->column_self_check()); |
359 | 102 | return Status::OK(); |
360 | 102 | } |
361 | | |
362 | 0 | size_t VectorizedFnCall::estimate_memory(const size_t rows) { |
363 | 0 | if (is_const_and_have_executed()) { // const have execute in open function |
364 | 0 | return 0; |
365 | 0 | } |
366 | | |
367 | 0 | size_t estimate_size = 0; |
368 | 0 | for (auto& child : _children) { |
369 | 0 | estimate_size += child->estimate_memory(rows); |
370 | 0 | } |
371 | |
|
372 | 0 | if (_data_type->have_maximum_size_of_value()) { |
373 | 0 | estimate_size += rows * _data_type->get_size_of_value_in_memory(); |
374 | 0 | } else { |
375 | 0 | estimate_size += rows * 512; /// FIXME: estimated value... |
376 | 0 | } |
377 | 0 | return estimate_size; |
378 | 0 | } |
379 | | |
380 | | Status VectorizedFnCall::execute_runtime_filter(VExprContext* context, const Block* block, |
381 | | const uint8_t* __restrict filter, size_t count, |
382 | | ColumnPtr& result_column, |
383 | 2 | ColumnPtr* arg_column) const { |
384 | 2 | return _do_execute(context, block, nullptr, count, result_column, arg_column); |
385 | 2 | } |
386 | | |
387 | | Status VectorizedFnCall::execute_column_impl(VExprContext* context, const Block* block, |
388 | | const Selector* selector, size_t count, |
389 | 101 | ColumnPtr& result_column) const { |
390 | 101 | return _do_execute(context, block, selector, count, result_column, nullptr); |
391 | 101 | } |
392 | | |
393 | | bool VectorizedFnCall::can_execute_on_raw_fixed_values(const DataTypePtr& data_type, |
394 | 162 | int column_id) const { |
395 | 162 | if (data_type == nullptr || !raw_comparison_op(_function_name, false).has_value()) { |
396 | 0 | return false; |
397 | 0 | } |
398 | 162 | auto slot_literal = expr_zonemap::extract_slot_and_literal(_children); |
399 | 162 | if (!slot_literal.has_value() || slot_literal->slot_index != column_id || |
400 | 162 | slot_literal->literal.is_null()) { |
401 | 0 | return false; |
402 | 0 | } |
403 | 162 | const auto raw_type = remove_nullable(data_type); |
404 | 162 | if (!remove_nullable(slot_literal->slot_type)->equals(*raw_type) || |
405 | 162 | !remove_nullable(slot_literal->literal_type)->equals(*raw_type)) { |
406 | 0 | return false; |
407 | 0 | } |
408 | 162 | const auto primitive_type = raw_type->get_primitive_type(); |
409 | 162 | return primitive_type == TYPE_INT || primitive_type == TYPE_BIGINT || |
410 | 162 | primitive_type == TYPE_FLOAT || primitive_type == TYPE_DOUBLE; |
411 | 162 | } |
412 | | |
413 | | Status VectorizedFnCall::execute_on_raw_fixed_values(const uint8_t* values, size_t num_values, |
414 | | size_t value_width, |
415 | | const DataTypePtr& data_type, int column_id, |
416 | 43 | uint8_t* matches) const { |
417 | 43 | if (!can_execute_on_raw_fixed_values(data_type, column_id)) { |
418 | 0 | return Status::NotSupported("Expression {} cannot evaluate raw fixed-width values", |
419 | 0 | expr_name()); |
420 | 0 | } |
421 | 43 | DORIS_CHECK(values != nullptr || num_values == 0); |
422 | 43 | DORIS_CHECK(matches != nullptr || num_values == 0); |
423 | 43 | const auto slot_literal = expr_zonemap::extract_slot_and_literal(_children); |
424 | 43 | DORIS_CHECK(slot_literal.has_value()); |
425 | 43 | const auto op = raw_comparison_op(_function_name, slot_literal->literal_on_left); |
426 | 43 | DORIS_CHECK(op.has_value()); |
427 | 43 | const auto primitive_type = remove_nullable(data_type)->get_primitive_type(); |
428 | 43 | const size_t expected_width = primitive_type == TYPE_INT || primitive_type == TYPE_FLOAT |
429 | 43 | ? sizeof(uint32_t) |
430 | 43 | : sizeof(uint64_t); |
431 | 43 | if (value_width != expected_width) { |
432 | 0 | return Status::Corruption("Raw expression width {} does not match expected {}", value_width, |
433 | 0 | expected_width); |
434 | 0 | } |
435 | 43 | switch (primitive_type) { |
436 | 41 | case TYPE_INT: |
437 | 41 | execute_raw_comparison<int32_t, TYPE_INT>(values, num_values, slot_literal->literal, *op, |
438 | 41 | matches); |
439 | 41 | break; |
440 | 0 | case TYPE_BIGINT: |
441 | 0 | execute_raw_comparison<int64_t, TYPE_BIGINT>(values, num_values, slot_literal->literal, *op, |
442 | 0 | matches); |
443 | 0 | break; |
444 | 2 | case TYPE_FLOAT: |
445 | 2 | execute_raw_comparison<float, TYPE_FLOAT>(values, num_values, slot_literal->literal, *op, |
446 | 2 | matches); |
447 | 2 | break; |
448 | 0 | case TYPE_DOUBLE: |
449 | 0 | execute_raw_comparison<double, TYPE_DOUBLE>(values, num_values, slot_literal->literal, *op, |
450 | 0 | matches); |
451 | 0 | break; |
452 | 0 | default: |
453 | 0 | __builtin_unreachable(); |
454 | 43 | } |
455 | 43 | return Status::OK(); |
456 | 43 | } |
457 | | |
458 | 80 | const std::string& VectorizedFnCall::expr_name() const { |
459 | 80 | return _expr_name; |
460 | 80 | } |
461 | | |
462 | 6 | std::string VectorizedFnCall::function_name() const { |
463 | 6 | return _function_name; |
464 | 6 | } |
465 | | |
466 | 4 | std::string VectorizedFnCall::debug_string() const { |
467 | 4 | std::stringstream out; |
468 | 4 | out << "VectorizedFn["; |
469 | 4 | out << _expr_name; |
470 | 4 | out << "]{"; |
471 | 4 | bool first = true; |
472 | 4 | for (const auto& input_expr : children()) { |
473 | 4 | if (first) { |
474 | 2 | first = false; |
475 | 2 | } else { |
476 | 2 | out << ","; |
477 | 2 | } |
478 | 4 | out << "\n" << input_expr->debug_string(); |
479 | 4 | } |
480 | 4 | out << "}"; |
481 | 4 | return out.str(); |
482 | 4 | } |
483 | | |
484 | 0 | std::string VectorizedFnCall::debug_string(const std::vector<VectorizedFnCall*>& agg_fns) { |
485 | 0 | std::stringstream out; |
486 | 0 | out << "["; |
487 | 0 | for (int i = 0; i < agg_fns.size(); ++i) { |
488 | 0 | out << (i == 0 ? "" : " ") << agg_fns[i]->debug_string(); |
489 | 0 | } |
490 | 0 | out << "]"; |
491 | 0 | return out.str(); |
492 | 0 | } |
493 | | |
494 | 0 | bool VectorizedFnCall::can_push_down_to_index() const { |
495 | 0 | return _function->can_push_down_to_index(); |
496 | 0 | } |
497 | | |
498 | 150 | bool VectorizedFnCall::is_deterministic() const { |
499 | 150 | static const std::set<std::string> NON_DETERMINISTIC_FUNCTIONS = { |
500 | 150 | "random", "rand", "random_bytes", "uuid", "uuid_numeric"}; |
501 | 150 | return !NON_DETERMINISTIC_FUNCTIONS.contains(_function_name) && VExpr::is_deterministic(); |
502 | 150 | } |
503 | | |
504 | 92 | bool VectorizedFnCall::is_safe_to_execute_on_selected_rows() const { |
505 | 92 | static const std::set<std::string> TOTAL_PREDICATE_FUNCTIONS = { |
506 | 92 | "eq", "ne", "lt", "le", "gt", "ge", "in", "not_in", "is_null_pred", "is_not_null_pred"}; |
507 | | // Selected-row execution may hide data-dependent errors in rows rejected by an earlier |
508 | | // predicate. Keep function calls unsafe by default and opt in only operations that are total |
509 | | // for their input domain; child checks then reject expressions such as gt(mod(x, -1), 0). |
510 | 92 | return TOTAL_PREDICATE_FUNCTIONS.contains(_function_name) && |
511 | 92 | VExpr::is_safe_to_execute_on_selected_rows(); |
512 | 92 | } |
513 | | |
514 | 0 | bool VectorizedFnCall::equals(const VExpr& other) { |
515 | 0 | const auto* other_ptr = dynamic_cast<const VectorizedFnCall*>(&other); |
516 | 0 | if (!other_ptr) { |
517 | 0 | return false; |
518 | 0 | } |
519 | 0 | if (this->_function_name != other_ptr->_function_name) { |
520 | 0 | return false; |
521 | 0 | } |
522 | 0 | if (get_num_children() != other_ptr->get_num_children()) { |
523 | 0 | return false; |
524 | 0 | } |
525 | 0 | for (uint16_t i = 0; i < get_num_children(); i++) { |
526 | 0 | if (!this->get_child(i)->equals(*other_ptr->get_child(i))) { |
527 | 0 | return false; |
528 | 0 | } |
529 | 0 | } |
530 | 0 | return true; |
531 | 0 | } |
532 | | |
533 | | /* |
534 | | * For ANN range search we expect a comparison expression (LE/LT/GE/GT) whose left side is either: |
535 | | * 1) a vector distance function call, or |
536 | | * 2) a cast/virtual slot that unwraps to the function call when the planner promotes float to |
537 | | * double literals. |
538 | | * |
539 | | * Visually the logical tree looks like: |
540 | | * |
541 | | * FunctionCall(LE/LT/GE/GT) |
542 | | * |---------------- |
543 | | * | | |
544 | | * | | |
545 | | * VirtualSlotRef* Float32Literal/Float64Literal |
546 | | * | |
547 | | * | |
548 | | * Cast(Float -> Double)* |
549 | | * | |
550 | | * FunctionCall(distance) |
551 | | * |---------------- |
552 | | * | | |
553 | | * | | |
554 | | * SlotRef ArrayLiteral/Cast(String as Array<FLOAT>) |
555 | | * |
556 | | * Items marked with * are optional and depend on literal types/virtual column usage. The helper |
557 | | * below normalizes the shape and validates distance function, slot, and constant vector inputs. |
558 | | */ |
559 | | |
560 | | void VectorizedFnCall::prepare_ann_range_search( |
561 | | const doris::VectorSearchUserParams& user_params, |
562 | 7 | segment_v2::AnnRangeSearchRuntime& range_search_runtime, bool& suitable_for_ann_index) { |
563 | 7 | if (!suitable_for_ann_index) { |
564 | 0 | return; |
565 | 0 | } |
566 | | |
567 | 7 | if (OPS_FOR_ANN_RANGE_SEARCH.find(this->op()) == OPS_FOR_ANN_RANGE_SEARCH.end()) { |
568 | 0 | suitable_for_ann_index = false; |
569 | 0 | return; |
570 | 0 | } |
571 | | |
572 | 7 | auto mark_unsuitable = [&](const std::string& reason) { |
573 | 1 | suitable_for_ann_index = false; |
574 | 1 | VLOG_DEBUG << "ANN range search skipped: " << reason; |
575 | 1 | }; |
576 | | |
577 | 7 | range_search_runtime.is_le_or_lt = |
578 | 7 | (this->op() == TExprOpcode::LE || this->op() == TExprOpcode::LT); |
579 | | |
580 | 7 | DCHECK(_children.size() == 2); |
581 | | |
582 | 7 | auto left_child = get_child(0); |
583 | 7 | auto right_child = get_child(1); |
584 | | |
585 | | // ========== Step 1: Check left child - must be a distance function ========== |
586 | 7 | auto get_virtual_expr = [&](const VExprSPtr& expr, |
587 | 7 | std::shared_ptr<VirtualSlotRef>& slot_ref) -> VExprSPtr { |
588 | 7 | auto virtual_ref = std::dynamic_pointer_cast<VirtualSlotRef>(expr); |
589 | 7 | if (virtual_ref != nullptr) { |
590 | 7 | DCHECK(virtual_ref->get_virtual_column_expr() != nullptr); |
591 | 7 | slot_ref = virtual_ref; |
592 | 7 | return virtual_ref->get_virtual_column_expr(); |
593 | 7 | } |
594 | 0 | return expr; |
595 | 7 | }; |
596 | | |
597 | 7 | std::shared_ptr<VirtualSlotRef> vir_slot_ref; |
598 | 7 | auto normalized_left = get_virtual_expr(left_child, vir_slot_ref); |
599 | | |
600 | | // Try to find the distance function call, it may be wrapped in a Cast(Float->Double) |
601 | 7 | std::shared_ptr<VectorizedFnCall> function_call = |
602 | 7 | std::dynamic_pointer_cast<VectorizedFnCall>(normalized_left); |
603 | 7 | bool has_float_to_double_cast = false; |
604 | | |
605 | 7 | if (function_call == nullptr) { |
606 | | // Check if it's a Cast expression wrapping a function call |
607 | 0 | auto cast_expr = std::dynamic_pointer_cast<VCastExpr>(normalized_left); |
608 | 0 | if (cast_expr == nullptr) { |
609 | 0 | mark_unsuitable("Left child is neither a function call nor a cast expression."); |
610 | 0 | return; |
611 | 0 | } |
612 | 0 | has_float_to_double_cast = true; |
613 | 0 | auto normalized_cast_child = get_virtual_expr(cast_expr->get_child(0), vir_slot_ref); |
614 | 0 | function_call = std::dynamic_pointer_cast<VectorizedFnCall>(normalized_cast_child); |
615 | 0 | if (function_call == nullptr) { |
616 | 0 | mark_unsuitable("Left child of cast is not a function call."); |
617 | 0 | return; |
618 | 0 | } |
619 | 0 | } |
620 | | |
621 | | // Check if it's a supported distance function |
622 | 7 | if (DISTANCE_FUNCS.find(function_call->_function_name) == DISTANCE_FUNCS.end()) { |
623 | 0 | mark_unsuitable(fmt::format("Left child is not a supported distance function: {}", |
624 | 0 | function_call->_function_name)); |
625 | 0 | return; |
626 | 0 | } |
627 | | |
628 | | // Strip the _approximate suffix to get metric type |
629 | 7 | std::string metric_name = function_call->_function_name; |
630 | 7 | metric_name = metric_name.substr(0, metric_name.size() - 12); |
631 | 7 | range_search_runtime.metric_type = segment_v2::string_to_metric(metric_name); |
632 | | |
633 | | // ========== Step 2: Validate distance function arguments ========== |
634 | | // Identify the slot ref child and the constant query array child (ArrayLiteral or CAST to array) |
635 | 7 | Int32 idx_of_slot_ref = -1; |
636 | 7 | Int32 idx_of_array_expr = -1; |
637 | 14 | auto classify_child = [&](const VExprSPtr& child, UInt16 index) { |
638 | 14 | if (idx_of_slot_ref == -1 && std::dynamic_pointer_cast<VSlotRef>(child) != nullptr) { |
639 | 7 | idx_of_slot_ref = index; |
640 | 7 | return; |
641 | 7 | } |
642 | 7 | if (idx_of_array_expr == -1 && |
643 | 7 | (std::dynamic_pointer_cast<VArrayLiteral>(child) != nullptr || |
644 | 7 | std::dynamic_pointer_cast<VCastExpr>(child) != nullptr)) { |
645 | 7 | idx_of_array_expr = index; |
646 | 7 | } |
647 | 7 | }; |
648 | | |
649 | 21 | for (UInt16 i = 0; i < function_call->get_num_children(); ++i) { |
650 | 14 | classify_child(function_call->get_child(i), i); |
651 | 14 | } |
652 | | |
653 | 7 | if (idx_of_slot_ref == -1 || idx_of_array_expr == -1) { |
654 | 0 | mark_unsuitable("slot ref or array literal/cast is missing."); |
655 | 0 | return; |
656 | 0 | } |
657 | | |
658 | 7 | auto slot_ref = std::dynamic_pointer_cast<VSlotRef>( |
659 | 7 | function_call->get_child(static_cast<UInt16>(idx_of_slot_ref))); |
660 | 7 | range_search_runtime.src_col_idx = slot_ref->column_id(); |
661 | 7 | range_search_runtime.dst_col_idx = vir_slot_ref == nullptr ? -1 : vir_slot_ref->column_id(); |
662 | | |
663 | | // Materialize the constant array expression and validate its shape and types |
664 | 7 | auto array_expr = function_call->get_child(static_cast<UInt16>(idx_of_array_expr)); |
665 | 7 | auto extract_result = extract_query_vector(array_expr); |
666 | 7 | if (!extract_result.has_value()) { |
667 | 0 | mark_unsuitable("Failed to extract query vector from constant array expression."); |
668 | 0 | return; |
669 | 0 | } |
670 | 7 | range_search_runtime.query_value = extract_result.value(); |
671 | 7 | range_search_runtime.dim = range_search_runtime.query_value->size(); |
672 | | |
673 | | // ========== Step 3: Check right child - must be a float/double literal ========== |
674 | 7 | auto right_literal = std::dynamic_pointer_cast<VLiteral>(right_child); |
675 | 7 | if (right_literal == nullptr) { |
676 | 1 | mark_unsuitable("Right child is not a literal."); |
677 | 1 | return; |
678 | 1 | } |
679 | | |
680 | | // Handle nullable literal gracefully - just mark as unsuitable instead of crash |
681 | 6 | if (right_literal->is_nullable()) { |
682 | 0 | mark_unsuitable("Right literal is nullable, not supported for ANN range search."); |
683 | 0 | return; |
684 | 0 | } |
685 | | |
686 | 6 | auto right_type = right_literal->get_data_type(); |
687 | 6 | PrimitiveType right_primitive = right_type->get_primitive_type(); |
688 | 6 | const bool float32_literal = right_primitive == PrimitiveType::TYPE_FLOAT; |
689 | 6 | const bool float64_literal = right_primitive == PrimitiveType::TYPE_DOUBLE; |
690 | | |
691 | 6 | if (!float32_literal && !float64_literal) { |
692 | 0 | mark_unsuitable("Right child is not a Float32Literal or Float64Literal."); |
693 | 0 | return; |
694 | 0 | } |
695 | | |
696 | | // Validate consistency: if we have Cast(Float->Double), right must be double literal |
697 | 6 | if (has_float_to_double_cast && !float64_literal) { |
698 | 0 | mark_unsuitable("Cast expression expects double literal on right side."); |
699 | 0 | return; |
700 | 0 | } |
701 | | |
702 | | // Extract radius value |
703 | 6 | auto right_col = right_literal->get_column_ptr()->convert_to_full_column_if_const(); |
704 | 6 | if (float32_literal) { |
705 | 6 | const ColumnFloat32* cf32_right = assert_cast<const ColumnFloat32*>(right_col.get()); |
706 | 6 | range_search_runtime.radius = cf32_right->get_data()[0]; |
707 | 6 | } else { |
708 | 0 | const ColumnFloat64* cf64_right = assert_cast<const ColumnFloat64*>(right_col.get()); |
709 | 0 | range_search_runtime.radius = static_cast<float>(cf64_right->get_data()[0]); |
710 | 0 | } |
711 | | |
712 | | // ========== Done: Mark as suitable for ANN range search ========== |
713 | 6 | range_search_runtime.is_ann_range_search = true; |
714 | 6 | range_search_runtime.user_params = user_params; |
715 | 6 | VLOG_DEBUG << fmt::format("Ann range search params: {}", range_search_runtime.to_string()); |
716 | 6 | return; |
717 | 6 | } |
718 | | |
719 | | Status VectorizedFnCall::evaluate_ann_range_search( |
720 | | const segment_v2::AnnRangeSearchRuntime& range_search_runtime, |
721 | | const std::vector<std::unique_ptr<segment_v2::IndexIterator>>& cid_to_index_iterators, |
722 | | const std::vector<ColumnId>& idx_to_cid, |
723 | | const std::vector<std::unique_ptr<segment_v2::ColumnIterator>>& column_iterators, |
724 | | size_t rows_of_segment, roaring::Roaring& row_bitmap, |
725 | | segment_v2::AnnIndexStats& ann_index_stats, bool enable_result_cache, |
726 | 24 | AnnRangeSearchEvaluationResult& evaluation_result) { |
727 | 24 | evaluation_result = {}; |
728 | 24 | if (range_search_runtime.is_ann_range_search == false) { |
729 | 18 | return Status::OK(); |
730 | 18 | } |
731 | | |
732 | 6 | VLOG_DEBUG << fmt::format("Try apply ann range search. Local search params: {}", |
733 | 0 | range_search_runtime.to_string()); |
734 | 6 | size_t origin_num = row_bitmap.cardinality(); |
735 | | |
736 | 6 | const auto idx_in_block = range_search_runtime.src_col_idx; |
737 | 6 | DCHECK_LT(idx_in_block, idx_to_cid.size()) |
738 | 0 | << "idx_in_block: " << idx_in_block << ", idx_to_cid.size(): " << idx_to_cid.size(); |
739 | | |
740 | 6 | ColumnId src_col_cid = idx_to_cid[idx_in_block]; |
741 | 6 | DCHECK(src_col_cid < cid_to_index_iterators.size()); |
742 | 6 | segment_v2::IndexIterator* index_iterator = cid_to_index_iterators[src_col_cid].get(); |
743 | 6 | if (index_iterator == nullptr) { |
744 | 1 | VLOG_DEBUG << "ANN range search skipped: " |
745 | 0 | << fmt::format("No index iterator for column cid {}", src_col_cid); |
746 | 1 | ; |
747 | 1 | return Status::OK(); |
748 | 1 | } |
749 | | |
750 | 5 | segment_v2::AnnIndexIterator* ann_index_iterator = |
751 | 5 | dynamic_cast<segment_v2::AnnIndexIterator*>(index_iterator); |
752 | 5 | if (ann_index_iterator == nullptr) { |
753 | 0 | VLOG_DEBUG << "ANN range search skipped: " |
754 | 0 | << fmt::format("Column cid {} has no ANN index iterator", src_col_cid); |
755 | 0 | return Status::OK(); |
756 | 0 | } |
757 | 5 | DCHECK(ann_index_iterator->get_reader(AnnIndexReaderType::ANN) != nullptr) |
758 | 0 | << "Ann index iterator should have reader. Column cid: " << src_col_cid; |
759 | 5 | std::shared_ptr<AnnIndexReader> ann_index_reader = std::dynamic_pointer_cast<AnnIndexReader>( |
760 | 5 | ann_index_iterator->get_reader(segment_v2::AnnIndexReaderType::ANN)); |
761 | 5 | DCHECK(ann_index_reader != nullptr) |
762 | 0 | << "Ann index reader should not be null. Column cid: " << src_col_cid; |
763 | | // Check if metrics type is match. |
764 | 5 | if (ann_index_reader->get_metric_type() != range_search_runtime.metric_type) { |
765 | 0 | VLOG_DEBUG << "ANN range search skipped: " |
766 | 0 | << fmt::format("Metric type mismatch. Index={} Query={}", |
767 | 0 | segment_v2::metric_to_string(ann_index_reader->get_metric_type()), |
768 | 0 | segment_v2::metric_to_string(range_search_runtime.metric_type)); |
769 | 0 | return Status::OK(); |
770 | 0 | } |
771 | | |
772 | | // Check dimension if available (>0) |
773 | 5 | const size_t index_dim = ann_index_reader->get_dimension(); |
774 | 5 | if (index_dim > 0 && index_dim != range_search_runtime.dim) { |
775 | 1 | return Status::InvalidArgument( |
776 | 1 | "Ann range search query dimension {} does not match index dimension {}", |
777 | 1 | range_search_runtime.dim, index_dim); |
778 | 1 | } |
779 | | |
780 | 4 | const auto& user_params = range_search_runtime.user_params; |
781 | 4 | if (user_params.should_fallback_ann_index_by_small_candidate(origin_num, rows_of_segment)) { |
782 | 0 | VLOG_DEBUG << fmt::format( |
783 | 0 | "Ann range search input rows {} reach small candidate threshold, " |
784 | 0 | "rows_of_segment: {}, absolute_threshold: {}, percent_threshold: {}, " |
785 | 0 | "will not use ann index to filter", |
786 | 0 | origin_num, rows_of_segment, user_params.ann_index_candidate_rows_threshold, |
787 | 0 | user_params.ann_index_candidate_rows_percent_threshold); |
788 | 0 | ann_index_stats.fall_back_brute_force_cnt += 1; |
789 | 0 | ann_index_stats.range_fallback_by_small_candidate_cnt += 1; |
790 | 0 | ann_index_stats.range_fallback_small_candidate_rows += origin_num; |
791 | 0 | return Status::OK(); |
792 | 0 | } |
793 | | |
794 | 4 | auto stats = std::make_unique<segment_v2::AnnIndexStats>(); |
795 | | // Track load index timing |
796 | 4 | { |
797 | 4 | SCOPED_TIMER(&(stats->load_index_costs_ns)); |
798 | 4 | if (!ann_index_iterator->try_load_index()) { |
799 | 0 | VLOG_DEBUG << "ANN range search skipped: " |
800 | 0 | << fmt::format("Failed to load ANN index for column cid {}", src_col_cid); |
801 | 0 | ann_index_stats.fall_back_brute_force_cnt += 1; |
802 | 0 | return Status::OK(); |
803 | 0 | } |
804 | 4 | double load_costs_ms = static_cast<double>(stats->load_index_costs_ns.value()) / 1000000.0; |
805 | 4 | DorisMetrics::instance()->ann_index_load_costs_ms->increment( |
806 | 4 | static_cast<int64_t>(load_costs_ms)); |
807 | 4 | } |
808 | | |
809 | 0 | AnnRangeSearchParams params = range_search_runtime.to_range_search_params(); |
810 | | |
811 | 4 | params.roaring = &row_bitmap; |
812 | 4 | params.enable_result_cache = enable_result_cache; |
813 | 4 | DCHECK(params.roaring != nullptr); |
814 | 4 | DCHECK(params.query_value != nullptr); |
815 | 4 | segment_v2::AnnRangeSearchResult result; |
816 | 4 | RETURN_IF_ERROR(ann_index_iterator->range_search(params, range_search_runtime.user_params, |
817 | 4 | &result, stats.get())); |
818 | | |
819 | 4 | #ifndef NDEBUG |
820 | 4 | if (range_search_runtime.is_le_or_lt == false && |
821 | 4 | ann_index_reader->get_metric_type() == AnnIndexMetric::L2) { |
822 | 2 | DCHECK(result.distance == nullptr) << "Should not have distance"; |
823 | 2 | } |
824 | 4 | if (range_search_runtime.is_le_or_lt == true && |
825 | 4 | ann_index_reader->get_metric_type() == AnnIndexMetric::IP) { |
826 | 0 | DCHECK(result.distance == nullptr); |
827 | 0 | } |
828 | 4 | #endif |
829 | 4 | DCHECK(result.roaring != nullptr); |
830 | 4 | row_bitmap = *result.roaring; |
831 | | |
832 | | // Process virtual column |
833 | 4 | bool dist_fulfilled = false; |
834 | 4 | if (range_search_runtime.dst_col_idx >= 0) { |
835 | | // Prepare materialization if we can use result from index. |
836 | | // Typical situation: range search and operator is LE or LT. |
837 | 4 | if (result.distance != nullptr) { |
838 | 2 | DCHECK(result.row_ids != nullptr); |
839 | 2 | ColumnId dst_col_cid = idx_to_cid[range_search_runtime.dst_col_idx]; |
840 | 2 | DCHECK(dst_col_cid < column_iterators.size()); |
841 | 2 | DCHECK(column_iterators[dst_col_cid] != nullptr); |
842 | 2 | segment_v2::ColumnIterator* column_iterator = column_iterators[dst_col_cid].get(); |
843 | 2 | DCHECK(column_iterator != nullptr); |
844 | 2 | segment_v2::VirtualColumnIterator* virtual_column_iterator = |
845 | 2 | dynamic_cast<segment_v2::VirtualColumnIterator*>(column_iterator); |
846 | 2 | DCHECK(virtual_column_iterator != nullptr); |
847 | | // Now convert distance to column |
848 | 2 | size_t size = result.roaring->cardinality(); |
849 | 2 | auto distance_col = ColumnFloat32::create(size); |
850 | 2 | const float* src = result.distance.get(); |
851 | 2 | float* dst = distance_col->get_data().data(); |
852 | 15 | for (size_t i = 0; i < size; ++i) { |
853 | 13 | dst[i] = src[i]; |
854 | 13 | } |
855 | 2 | virtual_column_iterator->prepare_materialization(std::move(distance_col), |
856 | 2 | std::move(result.row_ids)); |
857 | 2 | dist_fulfilled = true; |
858 | 2 | } else { |
859 | | // Whether the ANN index should have produced distance depends on metric and operator: |
860 | | // - L2: distance is produced for LE/LT; not produced for GE/GT |
861 | | // - IP: distance is produced for GE/GT; not produced for LE/LT |
862 | 2 | #ifndef NDEBUG |
863 | 2 | const bool should_have_distance = |
864 | 2 | (range_search_runtime.is_le_or_lt && |
865 | 2 | range_search_runtime.metric_type == AnnIndexMetric::L2) || |
866 | 2 | (!range_search_runtime.is_le_or_lt && |
867 | 2 | range_search_runtime.metric_type == AnnIndexMetric::IP); |
868 | | // If we expected distance but didn't get it, assert in debug to catch logic errors. |
869 | 2 | DCHECK(!should_have_distance) << "Expected distance from ANN index but got none"; |
870 | 2 | #endif |
871 | 2 | } |
872 | 4 | } else { |
873 | | // Dest is not virtual column. |
874 | 0 | dist_fulfilled = true; |
875 | 0 | } |
876 | | |
877 | 4 | evaluation_result.executed = true; |
878 | 4 | evaluation_result.dist_fulfilled = dist_fulfilled; |
879 | 4 | VLOG_DEBUG << fmt::format( |
880 | 0 | "Ann range search filtered {} rows, origin {} rows, virtual column is full-filled: {}", |
881 | 0 | origin_num - row_bitmap.cardinality(), origin_num, dist_fulfilled); |
882 | | |
883 | 4 | ann_index_stats = *stats; |
884 | 4 | return Status::OK(); |
885 | 4 | } |
886 | | |
887 | 4 | double VectorizedFnCall::execute_cost() const { |
888 | 4 | if (!_function) { |
889 | 0 | throw Exception( |
890 | 0 | Status::InternalError("Function is null in expression: {}", this->debug_string())); |
891 | 0 | } |
892 | 4 | double cost = _function->execute_cost(); |
893 | 8 | for (const auto& child : _children) { |
894 | 8 | cost += child->execute_cost(); |
895 | 8 | } |
896 | 4 | return cost; |
897 | 4 | } |
898 | | |
899 | | } // namespace doris |