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paddlepaddle--paddle/test/ir/inference/test_trt_convert_bitwise_and.py
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2026-07-13 12:40:42 +08:00

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Python

# Copyright (c) 2023 PaddlePaddle Authors. All Rights Reserved.
#
# Licensed under the Apache License, Version 2.0 (the "License");
# you may not use this file except in compliance with the License.
# You may obtain a copy of the License at
#
# http://www.apache.org/licenses/LICENSE-2.0
#
# Unless required by applicable law or agreed to in writing, software
# distributed under the License is distributed on an "AS IS" BASIS,
# WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
# See the License for the specific language governing permissions and
# limitations under the License.
from __future__ import annotations
import unittest
from functools import partial
import numpy as np
from program_config import ProgramConfig, TensorConfig
from trt_layer_auto_scan_test import TrtLayerAutoScanTest
import paddle.inference as paddle_infer
class TrtConvertBitwiseAndTest(TrtLayerAutoScanTest):
def is_program_valid(self, program_config: ProgramConfig) -> bool:
return True
def sample_program_configs(self):
def generate_input(batch):
if self.dims == 4:
return np.random.random([batch, 3, 3, 24]).astype(np.bool_)
elif self.dims == 3:
return np.random.random([batch, 3, 24]).astype(np.bool_)
elif self.dims == 2:
return np.random.random([batch, 24]).astype(np.bool_)
for dims in [2, 3, 4]:
for batch in [3, 6, 9]:
self.dims = dims
ops_config = [
{
"op_type": "bitwise_and",
"op_inputs": {
"X": ["input_data1"],
"Y": ["input_data2"],
},
"op_outputs": {"Out": ["output_data"]},
"op_attrs": {},
},
]
ops = self.generate_op_config(ops_config)
program_config = ProgramConfig(
ops=ops,
weights={},
inputs={
"input_data1": TensorConfig(
data_gen=partial(generate_input, batch)
),
"input_data2": TensorConfig(
data_gen=partial(generate_input, batch)
),
},
outputs=["output_data"],
)
yield program_config
def generate_dynamic_shape(self, attrs):
if self.dims == 4:
self.dynamic_shape.min_input_shape = {
"input_data1": [1, 3 - 1, 3 - 1, 24 - 1],
"input_data2": [1, 3 - 1, 3 - 1, 24 - 1],
}
self.dynamic_shape.max_input_shape = {
"input_data1": [9, 3 + 1, 3 + 1, 24 + 1],
"input_data2": [9, 3 + 1, 3 + 1, 24 + 1],
}
self.dynamic_shape.opt_input_shape = {
"input_data1": [1, 3, 3, 24],
"input_data2": [1, 3, 3, 24],
}
elif self.dims == 3:
self.dynamic_shape.min_input_shape = {
"input_data1": [1, 3 - 1, 24 - 1],
"input_data2": [1, 3 - 1, 24 - 1],
}
self.dynamic_shape.max_input_shape = {
"input_data1": [9, 3 + 1, 24 + 1],
"input_data2": [9, 3 + 1, 24 + 1],
}
self.dynamic_shape.opt_input_shape = {
"input_data1": [1, 3, 24],
"input_data2": [1, 3, 24],
}
elif self.dims == 2:
self.dynamic_shape.min_input_shape = {
"input_data1": [1, 24],
"input_data2": [1, 24],
}
self.dynamic_shape.max_input_shape = {
"input_data1": [9, 24],
"input_data2": [9, 24],
}
self.dynamic_shape.opt_input_shape = {
"input_data1": [1, 24],
"input_data2": [1, 24],
}
return self.dynamic_shape
def sample_predictor_configs(
self, program_config, run_pir=False
) -> tuple[paddle_infer.Config, list[int], float]:
def clear_dynamic_shape():
self.dynamic_shape.min_input_shape = {}
self.dynamic_shape.max_input_shape = {}
self.dynamic_shape.opt_input_shape = {}
def generate_trt_nodes_num(attrs, dynamic_shape):
ver = paddle_infer.get_trt_compile_version()
trt_version = ver[0] * 1000 + ver[1] * 100 + ver[2] * 10
if trt_version < 8400:
return 0, 4
if self.dims == 4 or self.dims == 1:
return 0, 4
return 1, 3
attrs = [
program_config.ops[i].attrs for i in range(len(program_config.ops))
]
self.trt_param.max_batch_size = 9
self.trt_param.workspace_size = 1073741824
# for dynamic_shape
self.generate_dynamic_shape(attrs)
self.trt_param.precision = paddle_infer.PrecisionType.Float32
yield (
self.create_inference_config(),
generate_trt_nodes_num(attrs, True),
1e-5,
)
self.trt_param.precision = paddle_infer.PrecisionType.Half
yield (
self.create_inference_config(),
generate_trt_nodes_num(attrs, True),
1e-3,
)
def test(self):
self.run_test(run_pir=True)
if __name__ == "__main__":
unittest.main()