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127 行
3.9 KiB
127 行
3.9 KiB
import pytest
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from unittest.mock import patch, Mock
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from mlagents.trainers.meta_curriculum import MetaCurriculum
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import json
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import yaml
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from mlagents.trainers.tests.simple_test_envs import SimpleEnvironment
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from mlagents.trainers.tests.test_simple_rl import _check_environment_trains, BRAIN_NAME
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from mlagents.trainers.tests.test_curriculum import dummy_curriculum_json_str
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@pytest.fixture
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def measure_vals():
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return {"Brain1": 0.2, "Brain2": 0.3}
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@pytest.fixture
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def reward_buff_sizes():
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return {"Brain1": 7, "Brain2": 8}
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def test_curriculum_config(param_name="test_param1", min_lesson_length=100):
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return {
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"measure": "progress",
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"thresholds": [0.1, 0.3, 0.5],
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"min_lesson_length": min_lesson_length,
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"signal_smoothing": True,
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"parameters": {f"{param_name}": [0.0, 4.0, 6.0, 8.0]},
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}
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test_meta_curriculum_config = {
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"Brain1": test_curriculum_config("test_param1"),
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"Brain2": test_curriculum_config("test_param2"),
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}
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def test_set_lesson_nums():
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meta_curriculum = MetaCurriculum(test_meta_curriculum_config)
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meta_curriculum.lesson_nums = {"Brain1": 1, "Brain2": 3}
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assert meta_curriculum.brains_to_curricula["Brain1"].lesson_num == 1
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assert meta_curriculum.brains_to_curricula["Brain2"].lesson_num == 3
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def test_increment_lessons(measure_vals):
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meta_curriculum = MetaCurriculum(test_meta_curriculum_config)
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meta_curriculum.brains_to_curricula["Brain1"] = Mock()
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meta_curriculum.brains_to_curricula["Brain2"] = Mock()
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meta_curriculum.increment_lessons(measure_vals)
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meta_curriculum.brains_to_curricula["Brain1"].increment_lesson.assert_called_with(
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0.2
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)
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meta_curriculum.brains_to_curricula["Brain2"].increment_lesson.assert_called_with(
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0.3
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)
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@patch("mlagents.trainers.curriculum.Curriculum")
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@patch("mlagents.trainers.curriculum.Curriculum")
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def test_increment_lessons_with_reward_buff_sizes(
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curriculum_a, curriculum_b, measure_vals, reward_buff_sizes
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):
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curriculum_a.min_lesson_length = 5
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curriculum_b.min_lesson_length = 10
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meta_curriculum = MetaCurriculum(test_meta_curriculum_config)
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meta_curriculum.brains_to_curricula["Brain1"] = curriculum_a
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meta_curriculum.brains_to_curricula["Brain2"] = curriculum_b
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meta_curriculum.increment_lessons(measure_vals, reward_buff_sizes=reward_buff_sizes)
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curriculum_a.increment_lesson.assert_called_with(0.2)
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curriculum_b.increment_lesson.assert_not_called()
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def test_set_all_curriculums_to_lesson_num():
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meta_curriculum = MetaCurriculum(test_meta_curriculum_config)
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meta_curriculum.set_all_curricula_to_lesson_num(2)
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assert meta_curriculum.brains_to_curricula["Brain1"].lesson_num == 2
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assert meta_curriculum.brains_to_curricula["Brain2"].lesson_num == 2
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def test_get_config():
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meta_curriculum = MetaCurriculum(test_meta_curriculum_config)
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assert meta_curriculum.get_config() == {"test_param1": 0.0, "test_param2": 0.0}
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TRAINER_CONFIG = """
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default:
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trainer: ppo
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batch_size: 16
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beta: 5.0e-3
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buffer_size: 64
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epsilon: 0.2
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hidden_units: 128
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lambd: 0.95
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learning_rate: 5.0e-3
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max_steps: 100
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memory_size: 256
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normalize: false
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num_epoch: 3
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num_layers: 2
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time_horizon: 64
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sequence_length: 64
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summary_freq: 50
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use_recurrent: false
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reward_signals:
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extrinsic:
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strength: 1.0
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gamma: 0.99
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"""
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@pytest.mark.parametrize("curriculum_brain_name", [BRAIN_NAME, "WrongBrainName"])
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def test_simple_metacurriculum(curriculum_brain_name):
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env = SimpleEnvironment([BRAIN_NAME], use_discrete=False)
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curriculum_config = json.loads(dummy_curriculum_json_str)
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mc = MetaCurriculum({curriculum_brain_name: curriculum_config})
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trainer_config = yaml.safe_load(TRAINER_CONFIG)
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_check_environment_trains(
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env, trainer_config, meta_curriculum=mc, success_threshold=None
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)
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