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# Copyright 2020-2025 The HuggingFace Team. 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 torch | |
from trl.trainer.dpo_trainer import DataCollatorForPreference | |
class TestDataCollatorForPreference(unittest.TestCase): | |
def setUp(self): | |
self.collator = DataCollatorForPreference(pad_token_id=0) | |
def assertTensorEqual(self, tensor1, tensor2): | |
self.assertTrue(torch.equal(tensor1, tensor2), f"Tensors are not equal:\n{tensor1}\n{tensor2}") | |
def test_padding_behavior(self): | |
examples = [ | |
{"prompt_input_ids": [1, 2, 3], "chosen_input_ids": [4, 5], "rejected_input_ids": [6]}, | |
{"prompt_input_ids": [7, 8], "chosen_input_ids": [9, 10], "rejected_input_ids": [11, 12, 13]}, | |
] | |
output = self.collator.torch_call(examples) | |
expected_prompt_input_ids = torch.tensor([[1, 2, 3], [0, 7, 8]]) | |
expected_prompt_attention_mask = torch.tensor([[1, 1, 1], [0, 1, 1]]) | |
expected_chosen_input_ids = torch.tensor([[4, 5], [9, 10]]) | |
expected_chosen_attention_mask = torch.tensor([[1, 1], [1, 1]]) | |
expected_rejected_input_ids = torch.tensor([[6, 0, 0], [11, 12, 13]]) | |
expected_rejected_attention_mask = torch.tensor([[1, 0, 0], [1, 1, 1]]) | |
self.assertTensorEqual(output["prompt_input_ids"], expected_prompt_input_ids) | |
self.assertTensorEqual(output["prompt_attention_mask"], expected_prompt_attention_mask) | |
self.assertTensorEqual(output["chosen_input_ids"], expected_chosen_input_ids) | |
self.assertTensorEqual(output["chosen_attention_mask"], expected_chosen_attention_mask) | |
self.assertTensorEqual(output["rejected_input_ids"], expected_rejected_input_ids) | |
self.assertTensorEqual(output["rejected_attention_mask"], expected_rejected_attention_mask) | |
def test_optional_fields(self): | |
examples = [ | |
{ | |
"prompt_input_ids": [1], | |
"chosen_input_ids": [2], | |
"rejected_input_ids": [3], | |
"pixel_values": [[[0.1, 0.2], [0.3, 0.4]]], # Example 3D tensor (1x2x2) | |
}, | |
{ | |
"prompt_input_ids": [4], | |
"chosen_input_ids": [5], | |
"rejected_input_ids": [6], | |
"pixel_values": [[[0.5, 0.6], [0.7, 0.8]]], # Example 3D tensor (1x2x2) | |
}, | |
] | |
output = self.collator.torch_call(examples) | |
expected_pixel_values = torch.tensor( | |
[ | |
[[[0.1, 0.2], [0.3, 0.4]]], | |
[[[0.5, 0.6], [0.7, 0.8]]], | |
] | |
) # Shape: (2, 1, 2, 2) | |
self.assertTensorEqual(output["pixel_values"], expected_pixel_values) | |