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The database supports backend selection, compression, incremental data load, automatic data saving to storage, automatic vaccum and compaction. Make SQLite3 and LMDB database backends available. Update tests for new interface conventions regarding data sequences, data containers, data providers. This includes the measurements provider and the prediction providers. Add database documentation. The fix includes several bug fixes that are not directly related to the database implementation but are necessary to keep EOS running properly and to test and document the changes. * fix: config eos test setup Make the config_eos fixture generate a new instance of the config_eos singleton. Use correct env names to setup data folder path. * fix: startup with no config Make cache and measurements complain about missing data path configuration but do not bail out. * fix: soc data preparation and usage for genetic optimization. Search for soc measurments 48 hours around the optimization start time. Only clamp soc to maximum in battery device simulation. * fix: dashboard bailout on zero value solution display Do not use zero values to calculate the chart values adjustment for display. * fix: openapi generation script Make the script also replace data_folder_path and data_output_path to hide real (test) environment pathes. * feat: add make repeated task function make_repeated_task allows to wrap a function to be repeated cyclically. * chore: removed index based data sequence access Index based data sequence access does not make sense as the sequence can be backed by the database. The sequence is now purely time series data. * chore: refactor eos startup to avoid module import startup Avoid module import initialisation expecially of the EOS configuration. Config mutation, singleton initialization, logging setup, argparse parsing, background task definitions depending on config and environment-dependent behavior is now done at function startup. * chore: introduce retention manager A single long-running background task that owns the scheduling of all periodic server-maintenance jobs (cache cleanup, DB autosave, …) * chore: canonicalize timezone name for UTC Timezone names that are semantically identical to UTC are canonicalized to UTC. * chore: extend config file migration for default value handling Extend the config file migration handling values None or nonexisting values that will invoke a default value generation in the new config file. Also adapt test to handle this situation. * chore: extend datetime util test cases * chore: make version test check for untracked files Check for files that are not tracked by git. Version calculation will be wrong if these files will not be commited. * chore: bump pandas to 3.0.0 Pandas 3.0 now performs inference on the appropriate resolution (a.k.a. unit) for the output dtype which may become datetime64[us] (before it was ns). Also numeric dtype detection is now more strict which needs a different detection for numerics. * chore: bump pydantic-settings to 2.12.0 pydantic-settings 2.12.0 under pytest creates a different behaviour. The tests were adapted and a workaround was introduced. Also ConfigEOS was adapted to allow for fine grain initialization control to be able to switch off certain settings such as file settings during test. * chore: remove sci learn kit from dependencies The sci learn kit is not strictly necessary as long as we have scipy. * chore: add documentation mode guarding for sphinx autosummary Sphinx autosummary excecutes functions. Prevent exceptions in case of pure doc mode. * chore: adapt docker-build CI workflow to stricter GitHub handling Signed-off-by: Bobby Noelte <b0661n0e17e@gmail.com>
218 lines
7.3 KiB
Python
218 lines
7.3 KiB
Python
import json
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from pathlib import Path
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from unittest.mock import Mock, patch
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import numpy as np
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import pytest
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import requests
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from loguru import logger
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from akkudoktoreos.core.cache import CacheFileStore
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from akkudoktoreos.core.coreabc import get_ems
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from akkudoktoreos.prediction.elecpriceakkudoktor import (
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AkkudoktorElecPrice,
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AkkudoktorElecPriceValue,
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ElecPriceAkkudoktor,
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)
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from akkudoktoreos.prediction.elecpriceenergycharts import (
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ElecPriceEnergyCharts,
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EnergyChartsElecPrice,
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)
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from akkudoktoreos.utils.datetimeutil import to_datetime
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DIR_TESTDATA = Path(__file__).absolute().parent.joinpath("testdata")
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FILE_TESTDATA_ELECPRICE_ENERGYCHARTS_JSON = DIR_TESTDATA.joinpath(
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"elecpriceforecast_energycharts.json"
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)
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@pytest.fixture
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def provider(monkeypatch, config_eos):
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"""Fixture to create a ElecPriceProvider instance."""
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monkeypatch.setenv("EOS_ELECPRICE__ELECPRICE_PROVIDER", "ElecPriceEnergyCharts")
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config_eos.reset_settings()
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return ElecPriceEnergyCharts()
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@pytest.fixture
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def sample_energycharts_json():
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"""Fixture that returns sample forecast data report."""
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with FILE_TESTDATA_ELECPRICE_ENERGYCHARTS_JSON.open(
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"r", encoding="utf-8", newline=None
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) as f_res:
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input_data = json.load(f_res)
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return input_data
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@pytest.fixture
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def cache_store():
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"""A pytest fixture that creates a new CacheFileStore instance for testing."""
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return CacheFileStore()
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# ------------------------------------------------
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# General forecast
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# ------------------------------------------------
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def test_singleton_instance(provider):
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"""Test that ElecPriceForecast behaves as a singleton."""
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another_instance = ElecPriceEnergyCharts()
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assert provider is another_instance
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def test_invalid_provider(provider, monkeypatch):
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"""Test requesting an unsupported provider."""
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monkeypatch.setenv("EOS_ELECPRICE__ELECPRICE_PROVIDER", "<invalid>")
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provider.config.reset_settings()
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assert not provider.enabled()
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# ------------------------------------------------
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# Akkudoktor
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# ------------------------------------------------
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@patch("akkudoktoreos.prediction.elecpriceenergycharts.logger.error")
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def test_validate_data_invalid_format(mock_logger, provider):
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"""Test validation for invalid Energy-Charts data."""
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invalid_data = '{"invalid": "data"}'
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with pytest.raises(ValueError):
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provider._validate_data(invalid_data)
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mock_logger.assert_called_once_with(mock_logger.call_args[0][0])
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@patch("requests.get")
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def test_request_forecast(mock_get, provider, sample_energycharts_json):
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"""Test requesting forecast from Energy-Charts."""
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# Mock response object
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mock_response = Mock()
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mock_response.status_code = 200
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mock_response.content = json.dumps(sample_energycharts_json)
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mock_get.return_value = mock_response
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# Test function
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energy_charts_data = provider._request_forecast()
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assert isinstance(energy_charts_data, EnergyChartsElecPrice)
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assert energy_charts_data.unix_seconds[0] == 1733785200
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assert energy_charts_data.price[0] == 92.85
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@patch("requests.get")
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def test_update_data(mock_get, provider, sample_energycharts_json, cache_store):
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"""Test fetching forecast from Energy-Charts."""
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# Mock response object
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mock_response = Mock()
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mock_response.status_code = 200
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mock_response.content = json.dumps(sample_energycharts_json)
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mock_get.return_value = mock_response
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cache_store.clear(clear_all=True)
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# Call the method
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ems_eos = get_ems()
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ems_eos.set_start_datetime(to_datetime("2024-12-11 00:00:00", in_timezone="Europe/Berlin"))
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provider.update_data(force_enable=True, force_update=True)
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# Assert: Verify the result is as expected
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mock_get.assert_called_once()
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assert (
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len(provider) == 73
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) # we have 48 datasets in the api response, we want to know 48h into the future. The data we get has already 23h into the future so we need only 25h more. 48+25=73
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# Assert we get hours prioce values by resampling
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np_price_array = provider.key_to_array(
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key="elecprice_marketprice_wh",
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start_datetime=provider.ems_start_datetime,
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end_datetime=provider.end_datetime,
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)
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assert len(np_price_array) == provider.total_hours
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@patch("requests.get")
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def test_update_data_with_incomplete_forecast(mock_get, provider):
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"""Test `_update_data` with incomplete or missing forecast data."""
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incomplete_data: dict = {"license_info": "", "unix_seconds": [], "price": [], "unit": "", "deprecated": False}
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mock_response = Mock()
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mock_response.status_code = 200
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mock_response.content = json.dumps(incomplete_data)
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mock_get.return_value = mock_response
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logger.info("The following errors are intentional and part of the test.")
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with pytest.raises(ValueError):
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provider._update_data(force_update=True)
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@pytest.mark.parametrize(
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"status_code, exception",
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[(400, requests.exceptions.HTTPError), (500, requests.exceptions.HTTPError), (200, None)],
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)
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@patch("requests.get")
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def test_request_forecast_status_codes(
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mock_get, provider, sample_energycharts_json, status_code, exception
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):
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"""Test handling of various API status codes."""
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mock_response = Mock()
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mock_response.status_code = status_code
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mock_response.content = json.dumps(sample_energycharts_json)
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mock_response.raise_for_status.side_effect = (
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requests.exceptions.HTTPError if exception else None
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)
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mock_get.return_value = mock_response
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if exception:
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with pytest.raises(exception):
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provider._request_forecast()
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else:
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provider._request_forecast()
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@patch("requests.get")
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@patch("akkudoktoreos.core.cache.CacheFileStore")
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def test_cache_integration(mock_cache, mock_get, provider, sample_energycharts_json):
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"""Test caching of 8-day electricity price data."""
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# Mock response object
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mock_response = Mock()
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mock_response.status_code = 200
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mock_response.content = json.dumps(sample_energycharts_json)
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mock_get.return_value = mock_response
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# Mock cache object
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mock_cache_instance = mock_cache.return_value
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mock_cache_instance.get.return_value = None # Simulate no cache
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provider._update_data(force_update=True)
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mock_cache_instance.create.assert_called_once()
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mock_cache_instance.get.assert_called_once()
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def test_key_to_array_resampling(provider):
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"""Test resampling of forecast data to NumPy array."""
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provider.update_data(force_update=True)
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array = provider.key_to_array(
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key="elecprice_marketprice_wh",
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start_datetime=provider.ems_start_datetime,
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end_datetime=provider.end_datetime,
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)
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assert isinstance(array, np.ndarray)
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assert len(array) == provider.total_hours
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# ------------------------------------------------
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# Development Akkudoktor
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# ------------------------------------------------
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@pytest.mark.skip(reason="For development only")
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def test_energycharts_development_forecast_data(provider):
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"""Fetch data from real Energy-Charts server."""
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# Preset, as this is usually done by update_data()
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provider.ems_start_datetime = to_datetime("2024-10-26 00:00:00")
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energy_charts_data = provider._request_forecast()
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with FILE_TESTDATA_ELECPRICE_ENERGYCHARTS_JSON.open(
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"w", encoding="utf-8", newline="\n"
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) as f_out:
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json.dump(energy_charts_data, f_out, indent=4)
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