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This change introduces a GitHub Action to automate release creation, including proper tagging and automatic addition of a development marker to the version. A hash is also appended to development versions to make their state easier to distinguish. Tests and release documentation have been updated to reflect the revised release workflow. Several files now retrieve the current version dynamically. The test --full-run option has been rename to --finalize to make clear it is to do commit finalization testing. Signed-off-by: Bobby Noelte <b0661n0e17e@gmail.com>
151 lines
5.1 KiB
Python
151 lines
5.1 KiB
Python
import json
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from pathlib import Path
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from typing import Any
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from unittest.mock import patch
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import pytest
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from akkudoktoreos.config.config import ConfigEOS
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from akkudoktoreos.core.cache import CacheEnergyManagementStore
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from akkudoktoreos.core.ems import get_ems
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from akkudoktoreos.optimization.genetic.genetic import GeneticOptimization
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from akkudoktoreos.optimization.genetic.geneticparams import (
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GeneticOptimizationParameters,
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)
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from akkudoktoreos.optimization.genetic.geneticsolution import GeneticSolution
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from akkudoktoreos.utils.datetimeutil import to_datetime
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from akkudoktoreos.utils.visualize import (
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prepare_visualize, # Import the new prepare_visualize
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)
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ems_eos = get_ems()
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DIR_TESTDATA = Path(__file__).parent / "testdata"
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def compare_dict(actual: dict[str, Any], expected: dict[str, Any]):
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assert set(actual) == set(expected)
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for key, value in expected.items():
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if isinstance(value, dict):
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assert isinstance(actual[key], dict)
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compare_dict(actual[key], value)
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elif isinstance(value, list):
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assert isinstance(actual[key], list)
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assert actual[key] == pytest.approx(value)
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else:
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assert actual[key] == pytest.approx(value)
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@pytest.mark.parametrize(
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"fn_in, fn_out, ngen",
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[
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("optimize_input_1.json", "optimize_result_1.json", 3),
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("optimize_input_2.json", "optimize_result_2.json", 3),
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("optimize_input_2.json", "optimize_result_2_full.json", 400),
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],
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)
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def test_optimize(
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fn_in: str,
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fn_out: str,
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ngen: int,
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config_eos: ConfigEOS,
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is_finalize: bool,
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):
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"""Test optimierung_ems."""
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# Test parameters
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fixed_start_hour = 10
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fixed_seed = 42
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# Assure configuration holds the correct values
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config_eos.merge_settings_from_dict(
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{
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"prediction": {
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"hours": 48
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},
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"optimization": {
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"horizon_hours": 48,
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"genetic": {
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"individuals": 300,
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"generations": 10,
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"penalties": {
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"ev_soc_miss": 10
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}
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}
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},
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"devices": {
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"max_electric_vehicles": 1,
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"electric_vehicles": [
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{
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"charge_rates": [0.0, 0.375, 0.5, 0.625, 0.75, 0.875, 1.0],
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}
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],
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}
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}
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)
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# Load input and output data
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file = DIR_TESTDATA / fn_in
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with file.open("r") as f_in:
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input_data = GeneticOptimizationParameters(**json.load(f_in))
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file = DIR_TESTDATA / fn_out
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# In case a new test case is added, we don't want to fail here, so the new output is written
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# to disk before
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try:
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with file.open("r") as f_out:
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expected_data = json.load(f_out)
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expected_result = GeneticSolution(**expected_data)
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except FileNotFoundError:
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pass
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# Fake energy management run start datetime
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ems_eos.set_start_datetime(to_datetime().set(hour=fixed_start_hour))
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# Throw away any cached results of the last energy management run.
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CacheEnergyManagementStore().clear()
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genetic_optimization = GeneticOptimization(fixed_seed=fixed_seed)
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# Activate with pytest --finalize
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if ngen > 10 and not is_finalize:
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pytest.skip()
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visualize_filename = str((DIR_TESTDATA / f"new_{fn_out}").with_suffix(".pdf"))
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with patch(
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"akkudoktoreos.utils.visualize.prepare_visualize",
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side_effect=lambda parameters, results, *args, **kwargs: prepare_visualize(
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parameters, results, filename=visualize_filename, **kwargs
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),
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) as prepare_visualize_patch:
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# Call the optimization function
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genetic_solution = genetic_optimization.optimierung_ems(
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parameters=input_data, start_hour=fixed_start_hour, ngen=ngen
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)
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# The function creates a visualization result PDF as a side-effect.
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prepare_visualize_patch.assert_called_once()
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assert Path(visualize_filename).exists()
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# Write test output to file, so we can take it as new data on intended change
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TESTDATA_FILE = DIR_TESTDATA / f"new_{fn_out}"
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with TESTDATA_FILE.open("w", encoding="utf-8", newline="\n") as f_out:
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f_out.write(genetic_solution.model_dump_json(indent=4, exclude_unset=True))
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assert genetic_solution.result.Gesamtbilanz_Euro == pytest.approx(
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expected_result.result.Gesamtbilanz_Euro
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)
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# Assert that the output contains all expected entries.
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# This does not assert that the optimization always gives the same result!
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# Reproducibility and mathematical accuracy should be tested on the level of individual components.
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compare_dict(genetic_solution.model_dump(), expected_result.model_dump())
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# Check the correct generic optimization solution is created
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optimization_solution = genetic_solution.optimization_solution()
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# @TODO
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# Check the correct generic energy management plan is created
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plan = genetic_solution.energy_management_plan()
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# @TODO
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