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paddlepaddle--paddle/test/prim/pir_prim/test_prim_flags_check_ops.py
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2026-07-13 12:40:42 +08:00

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Python

# Copyright (c) 2024 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.
import unittest
import numpy as np
import paddle
from paddle.framework import core
from paddle.static import InputSpec
def apply_to_static(net, use_cinn, input_spec=None):
backend = "CINN" if use_cinn else None
return paddle.jit.to_static(
net,
input_spec=input_spec,
backend=backend,
full_graph=True,
)
def rms_norm(hidden_states, weight):
# From llama2, reduce dim is not equal to dynamic shape dim
variance = hidden_states.pow(2).mean(-1, keepdim=True)
hidden_states = paddle.rsqrt(variance + 1e-5) * hidden_states
return hidden_states * weight
class TestPrimMode1(unittest.TestCase):
def setUp(self):
np.random.seed(2023)
self.shape_x = [1, 300, 4096]
self.shape_y = [4096]
self.x = np.random.random(self.shape_x).astype("float32")
self.y = np.random.random(self.shape_y).astype("float32")
self.net = rms_norm
self.enable_cinn = False
def base_net(self, flag=None):
x = paddle.to_tensor(self.x)
y = paddle.to_tensor(self.y)
if flag == "prim":
core._set_prim_all_enabled(True)
fn = apply_to_static(
self.net,
use_cinn=self.enable_cinn,
input_spec=[
InputSpec(shape=[1, 300, 4096], dtype='float32'),
InputSpec(shape=[4096], dtype='float32'),
],
)
fn.eval()
else:
fn = self.net
res = fn(x, y)
if flag == "prim":
ops = [
op.name()
for op in fn.program_cache.last()[-1][-1]
.infer_program.program.global_block()
.ops
]
assert "pd_op.mean" not in ops
core._set_prim_all_enabled(False)
return res
def test_prim_all_dynamic(self):
res_ref = self.base_net()
res = self.base_net("prim")
for ref, actual in zip(res_ref, res):
np.testing.assert_allclose(ref, actual, rtol=1e-6)
if __name__ == "__main__":
unittest.main()