test_pissa.py 2.08 KB
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# Copyright 2025 the LlamaFactory team.
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#
# 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 os

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import pytest

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from llamafactory.train.test_utils import compare_model, load_infer_model, load_reference_model, load_train_model


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TINY_LLAMA = os.getenv("TINY_LLAMA", "llamafactory/tiny-random-Llama-3")
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TINY_LLAMA_PISSA = os.getenv("TINY_LLAMA_ADAPTER", "llamafactory/tiny-random-Llama-3-pissa")
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TRAIN_ARGS = {
    "model_name_or_path": TINY_LLAMA,
    "stage": "sft",
    "do_train": True,
    "finetuning_type": "lora",
    "pissa_init": True,
    "pissa_iter": -1,
    "dataset": "llamafactory/tiny-supervised-dataset",
    "dataset_dir": "ONLINE",
    "template": "llama3",
    "cutoff_len": 1024,
    "output_dir": "dummy_dir",
    "overwrite_output_dir": True,
    "fp16": True,
}

INFER_ARGS = {
    "model_name_or_path": TINY_LLAMA_PISSA,
    "adapter_name_or_path": TINY_LLAMA_PISSA,
    "adapter_folder": "pissa_init",
    "finetuning_type": "lora",
    "template": "llama3",
    "infer_dtype": "float16",
}


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@pytest.mark.xfail(reason="PiSSA initialization is not stable in different platform.")
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def test_pissa_train():
    model = load_train_model(**TRAIN_ARGS)
    ref_model = load_reference_model(TINY_LLAMA_PISSA, TINY_LLAMA_PISSA, use_pissa=True, is_trainable=True)
    compare_model(model, ref_model)


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@pytest.mark.xfail(reason="Known connection error.")
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def test_pissa_inference():
    model = load_infer_model(**INFER_ARGS)
    ref_model = load_reference_model(TINY_LLAMA_PISSA, TINY_LLAMA_PISSA, use_pissa=True, is_trainable=False)
    ref_model = ref_model.merge_and_unload()
    compare_model(model, ref_model)