| Conditions | 24 |
| Total Lines | 555 |
| Code Lines | 358 |
| Lines | 0 |
| Ratio | 0 % |
| Changes | 0 | ||
Small methods make your code easier to understand, in particular if combined with a good name. Besides, if your method is small, finding a good name is usually much easier.
For example, if you find yourself adding comments to a method's body, this is usually a good sign to extract the commented part to a new method, and use the comment as a starting point when coming up with a good name for this new method.
Commonly applied refactorings include:
If many parameters/temporary variables are present:
Complex classes like data.datasets.sanity_checks.sanitycheck_emobility_mit() often do a lot of different things. To break such a class down, we need to identify a cohesive component within that class. A common approach to find such a component is to look for fields/methods that share the same prefixes, or suffixes.
Once you have determined the fields that belong together, you can apply the Extract Class refactoring. If the component makes sense as a sub-class, Extract Subclass is also a candidate, and is often faster.
| 1 | """ |
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| 794 | def sanitycheck_emobility_mit(): |
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| 795 | """Execute sanity checks for eMobility: motorized individual travel |
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| 796 | |||
| 797 | Checks data integrity for eGon2035, eGon2035_lowflex and eGon100RE scenario |
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| 798 | using assertions: |
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| 799 | 1. Allocated EV numbers and EVs allocated to grid districts |
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| 800 | 2. Trip data (original inout data from simBEV) |
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| 801 | 3. Model data in eTraGo PF tables (grid.egon_etrago_*) |
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| 802 | |||
| 803 | Parameters |
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| 804 | ---------- |
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| 805 | None |
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| 806 | |||
| 807 | Returns |
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| 808 | ------- |
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| 809 | None |
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| 810 | """ |
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| 811 | |||
| 812 | def check_ev_allocation(): |
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| 813 | # Get target number for scenario |
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| 814 | ev_count_target = scenario_variation_parameters["ev_count"] |
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| 815 | print(f" Target count: {str(ev_count_target)}") |
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| 816 | |||
| 817 | # Get allocated numbers |
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| 818 | ev_counts_dict = {} |
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| 819 | with db.session_scope() as session: |
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| 820 | for table, level in zip( |
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| 821 | [ |
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| 822 | EgonEvCountMvGridDistrict, |
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| 823 | EgonEvCountMunicipality, |
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| 824 | EgonEvCountRegistrationDistrict, |
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| 825 | ], |
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| 826 | ["Grid District", "Municipality", "Registration District"], |
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| 827 | ): |
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| 828 | query = session.query( |
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| 829 | func.sum( |
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| 830 | table.bev_mini |
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| 831 | + table.bev_medium |
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| 832 | + table.bev_luxury |
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| 833 | + table.phev_mini |
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| 834 | + table.phev_medium |
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| 835 | + table.phev_luxury |
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| 836 | ).label("ev_count") |
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| 837 | ).filter( |
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| 838 | table.scenario == scenario_name, |
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| 839 | table.scenario_variation == scenario_var_name, |
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| 840 | ) |
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| 841 | |||
| 842 | ev_counts = pd.read_sql( |
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| 843 | query.statement, query.session.bind, index_col=None |
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| 844 | ) |
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| 845 | ev_counts_dict[level] = ev_counts.iloc[0].ev_count |
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| 846 | print( |
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| 847 | f" Count table: Total count for level {level} " |
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| 848 | f"(table: {table.__table__}): " |
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| 849 | f"{str(ev_counts_dict[level])}" |
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| 850 | ) |
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| 851 | |||
| 852 | # Compare with scenario target (only if not in testmode) |
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| 853 | if TESTMODE_OFF: |
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| 854 | for level, count in ev_counts_dict.items(): |
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| 855 | np.testing.assert_allclose( |
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| 856 | count, |
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| 857 | ev_count_target, |
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| 858 | rtol=0.0001, |
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| 859 | err_msg=f"EV numbers in {level} seems to be flawed.", |
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| 860 | ) |
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| 861 | else: |
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| 862 | print(" Testmode is on, skipping sanity check...") |
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| 863 | |||
| 864 | # Get allocated EVs in grid districts |
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| 865 | with db.session_scope() as session: |
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| 866 | query = session.query( |
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| 867 | func.count(EgonEvMvGridDistrict.egon_ev_pool_ev_id).label( |
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| 868 | "ev_count" |
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| 869 | ), |
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| 870 | ).filter( |
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| 871 | EgonEvMvGridDistrict.scenario == scenario_name, |
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| 872 | EgonEvMvGridDistrict.scenario_variation == scenario_var_name, |
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| 873 | ) |
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| 874 | ev_count_alloc = ( |
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| 875 | pd.read_sql(query.statement, query.session.bind, index_col=None) |
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| 876 | .iloc[0] |
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| 877 | .ev_count |
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| 878 | ) |
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| 879 | print( |
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| 880 | f" EVs allocated to Grid Districts " |
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| 881 | f"(table: {EgonEvMvGridDistrict.__table__}) total count: " |
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| 882 | f"{str(ev_count_alloc)}" |
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| 883 | ) |
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| 884 | |||
| 885 | # Compare with scenario target (only if not in testmode) |
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| 886 | if TESTMODE_OFF: |
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| 887 | np.testing.assert_allclose( |
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| 888 | ev_count_alloc, |
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| 889 | ev_count_target, |
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| 890 | rtol=0.0001, |
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| 891 | err_msg=( |
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| 892 | "EV numbers allocated to Grid Districts seems to be " |
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| 893 | "flawed." |
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| 894 | ), |
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| 895 | ) |
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| 896 | else: |
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| 897 | print(" Testmode is on, skipping sanity check...") |
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| 898 | |||
| 899 | return ev_count_alloc |
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| 900 | |||
| 901 | def check_trip_data(): |
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| 902 | # Check if trips start at timestep 0 and have a max. of 35040 steps |
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| 903 | # (8760h in 15min steps) |
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| 904 | print(" Checking timeranges...") |
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| 905 | with db.session_scope() as session: |
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| 906 | query = session.query( |
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| 907 | func.count(EgonEvTrip.event_id).label("cnt") |
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| 908 | ).filter( |
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| 909 | or_( |
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| 910 | and_( |
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| 911 | EgonEvTrip.park_start > 0, |
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| 912 | EgonEvTrip.simbev_event_id == 0, |
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| 913 | ), |
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| 914 | EgonEvTrip.park_end |
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| 915 | > (60 / int(meta_run_config.stepsize)) * 8760, |
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| 916 | ), |
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| 917 | EgonEvTrip.scenario == scenario_name, |
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| 918 | ) |
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| 919 | invalid_trips = pd.read_sql( |
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| 920 | query.statement, query.session.bind, index_col=None |
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| 921 | ) |
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| 922 | np.testing.assert_equal( |
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| 923 | invalid_trips.iloc[0].cnt, |
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| 924 | 0, |
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| 925 | err_msg=( |
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| 926 | f"{str(invalid_trips.iloc[0].cnt)} trips in table " |
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| 927 | f"{EgonEvTrip.__table__} have invalid timesteps." |
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| 928 | ), |
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| 929 | ) |
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| 930 | |||
| 931 | # Check if charging demand can be covered by available charging energy |
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| 932 | # while parking |
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| 933 | print(" Compare charging demand with available power...") |
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| 934 | with db.session_scope() as session: |
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| 935 | query = session.query( |
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| 936 | func.count(EgonEvTrip.event_id).label("cnt") |
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| 937 | ).filter( |
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| 938 | func.round( |
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| 939 | cast( |
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| 940 | (EgonEvTrip.park_end - EgonEvTrip.park_start + 1) |
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| 941 | * EgonEvTrip.charging_capacity_nominal |
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| 942 | * (int(meta_run_config.stepsize) / 60), |
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| 943 | Numeric, |
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| 944 | ), |
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| 945 | 3, |
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| 946 | ) |
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| 947 | < cast(EgonEvTrip.charging_demand, Numeric), |
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| 948 | EgonEvTrip.scenario == scenario_name, |
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| 949 | ) |
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| 950 | invalid_trips = pd.read_sql( |
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| 951 | query.statement, query.session.bind, index_col=None |
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| 952 | ) |
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| 953 | np.testing.assert_equal( |
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| 954 | invalid_trips.iloc[0].cnt, |
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| 955 | 0, |
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| 956 | err_msg=( |
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| 957 | f"In {str(invalid_trips.iloc[0].cnt)} trips (table: " |
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| 958 | f"{EgonEvTrip.__table__}) the charging demand cannot be " |
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| 959 | f"covered by available charging power." |
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| 960 | ), |
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| 961 | ) |
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| 962 | |||
| 963 | def check_model_data(): |
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| 964 | # Check if model components were fully created |
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| 965 | print(" Check if all model components were created...") |
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| 966 | # Get MVGDs which got EV allocated |
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| 967 | with db.session_scope() as session: |
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| 968 | query = ( |
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| 969 | session.query( |
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| 970 | EgonEvMvGridDistrict.bus_id, |
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| 971 | ) |
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| 972 | .filter( |
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| 973 | EgonEvMvGridDistrict.scenario == scenario_name, |
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| 974 | EgonEvMvGridDistrict.scenario_variation |
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| 975 | == scenario_var_name, |
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| 976 | ) |
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| 977 | .group_by(EgonEvMvGridDistrict.bus_id) |
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| 978 | ) |
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| 979 | mvgds_with_ev = ( |
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| 980 | pd.read_sql(query.statement, query.session.bind, index_col=None) |
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| 981 | .bus_id.sort_values() |
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| 982 | .to_list() |
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| 983 | ) |
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| 984 | |||
| 985 | # Load model components |
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| 986 | with db.session_scope() as session: |
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| 987 | query = ( |
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| 988 | session.query( |
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| 989 | EgonPfHvLink.bus0.label("mvgd_bus_id"), |
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| 990 | EgonPfHvLoad.bus.label("emob_bus_id"), |
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| 991 | EgonPfHvLoad.load_id.label("load_id"), |
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| 992 | EgonPfHvStore.store_id.label("store_id"), |
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| 993 | ) |
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| 994 | .select_from(EgonPfHvLoad, EgonPfHvStore) |
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| 995 | .join( |
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| 996 | EgonPfHvLoadTimeseries, |
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| 997 | EgonPfHvLoadTimeseries.load_id == EgonPfHvLoad.load_id, |
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| 998 | ) |
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| 999 | .join( |
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| 1000 | EgonPfHvStoreTimeseries, |
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| 1001 | EgonPfHvStoreTimeseries.store_id == EgonPfHvStore.store_id, |
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| 1002 | ) |
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| 1003 | .filter( |
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| 1004 | EgonPfHvLoad.carrier == "land transport EV", |
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| 1005 | EgonPfHvLoad.scn_name == scenario_name, |
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| 1006 | EgonPfHvLoadTimeseries.scn_name == scenario_name, |
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| 1007 | EgonPfHvStore.carrier == "battery storage", |
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| 1008 | EgonPfHvStore.scn_name == scenario_name, |
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| 1009 | EgonPfHvStoreTimeseries.scn_name == scenario_name, |
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| 1010 | EgonPfHvLink.scn_name == scenario_name, |
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| 1011 | EgonPfHvLink.bus1 == EgonPfHvLoad.bus, |
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| 1012 | EgonPfHvLink.bus1 == EgonPfHvStore.bus, |
||
| 1013 | ) |
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| 1014 | ) |
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| 1015 | model_components = pd.read_sql( |
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| 1016 | query.statement, query.session.bind, index_col=None |
||
| 1017 | ) |
||
| 1018 | |||
| 1019 | # Check number of buses with model components connected |
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| 1020 | mvgd_buses_with_ev = model_components.loc[ |
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| 1021 | model_components.mvgd_bus_id.isin(mvgds_with_ev) |
||
| 1022 | ] |
||
| 1023 | np.testing.assert_equal( |
||
| 1024 | len(mvgds_with_ev), |
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| 1025 | len(mvgd_buses_with_ev), |
||
| 1026 | err_msg=( |
||
| 1027 | f"Number of Grid Districts with connected model components " |
||
| 1028 | f"({str(len(mvgd_buses_with_ev))} in tables egon_etrago_*) " |
||
| 1029 | f"differ from number of Grid Districts that got EVs " |
||
| 1030 | f"allocated ({len(mvgds_with_ev)} in table " |
||
| 1031 | f"{EgonEvMvGridDistrict.__table__})." |
||
| 1032 | ), |
||
| 1033 | ) |
||
| 1034 | |||
| 1035 | # Check if all required components exist (if no id is NaN) |
||
| 1036 | np.testing.assert_equal( |
||
| 1037 | model_components.drop_duplicates().isna().any().any(), |
||
| 1038 | False, |
||
| 1039 | err_msg=( |
||
| 1040 | f"Some components are missing (see True values): " |
||
| 1041 | f"{model_components.drop_duplicates().isna().any()}" |
||
| 1042 | ), |
||
| 1043 | ) |
||
| 1044 | |||
| 1045 | # Get all model timeseries |
||
| 1046 | print(" Loading model timeseries...") |
||
| 1047 | # Get all model timeseries |
||
| 1048 | model_ts_dict = { |
||
| 1049 | "Load": { |
||
| 1050 | "carrier": "land transport EV", |
||
| 1051 | "table": EgonPfHvLoad, |
||
| 1052 | "table_ts": EgonPfHvLoadTimeseries, |
||
| 1053 | "column_id": "load_id", |
||
| 1054 | "columns_ts": ["p_set"], |
||
| 1055 | "ts": None, |
||
| 1056 | }, |
||
| 1057 | "Link": { |
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| 1058 | "carrier": "BEV charger", |
||
| 1059 | "table": EgonPfHvLink, |
||
| 1060 | "table_ts": EgonPfHvLinkTimeseries, |
||
| 1061 | "column_id": "link_id", |
||
| 1062 | "columns_ts": ["p_max_pu"], |
||
| 1063 | "ts": None, |
||
| 1064 | }, |
||
| 1065 | "Store": { |
||
| 1066 | "carrier": "battery storage", |
||
| 1067 | "table": EgonPfHvStore, |
||
| 1068 | "table_ts": EgonPfHvStoreTimeseries, |
||
| 1069 | "column_id": "store_id", |
||
| 1070 | "columns_ts": ["e_min_pu", "e_max_pu"], |
||
| 1071 | "ts": None, |
||
| 1072 | }, |
||
| 1073 | } |
||
| 1074 | |||
| 1075 | with db.session_scope() as session: |
||
| 1076 | for node, attrs in model_ts_dict.items(): |
||
| 1077 | print(f" Loading {node} timeseries...") |
||
| 1078 | subquery = ( |
||
| 1079 | session.query(getattr(attrs["table"], attrs["column_id"])) |
||
| 1080 | .filter(attrs["table"].carrier == attrs["carrier"]) |
||
| 1081 | .filter(attrs["table"].scn_name == scenario_name) |
||
| 1082 | .subquery() |
||
| 1083 | ) |
||
| 1084 | |||
| 1085 | cols = [ |
||
| 1086 | getattr(attrs["table_ts"], c) for c in attrs["columns_ts"] |
||
| 1087 | ] |
||
| 1088 | query = session.query( |
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| 1089 | getattr(attrs["table_ts"], attrs["column_id"]), *cols |
||
| 1090 | ).filter( |
||
| 1091 | getattr(attrs["table_ts"], attrs["column_id"]).in_( |
||
| 1092 | subquery |
||
| 1093 | ), |
||
| 1094 | attrs["table_ts"].scn_name == scenario_name, |
||
| 1095 | ) |
||
| 1096 | attrs["ts"] = pd.read_sql( |
||
| 1097 | query.statement, |
||
| 1098 | query.session.bind, |
||
| 1099 | index_col=attrs["column_id"], |
||
| 1100 | ) |
||
| 1101 | |||
| 1102 | # Check if all timeseries have 8760 steps |
||
| 1103 | print(" Checking timeranges...") |
||
| 1104 | for node, attrs in model_ts_dict.items(): |
||
| 1105 | for col in attrs["columns_ts"]: |
||
| 1106 | ts = attrs["ts"] |
||
| 1107 | invalid_ts = ts.loc[ts[col].apply(lambda _: len(_)) != 8760][ |
||
| 1108 | col |
||
| 1109 | ].apply(len) |
||
| 1110 | np.testing.assert_equal( |
||
| 1111 | len(invalid_ts), |
||
| 1112 | 0, |
||
| 1113 | err_msg=( |
||
| 1114 | f"{str(len(invalid_ts))} rows in timeseries do not " |
||
| 1115 | f"have 8760 timesteps. Table: " |
||
| 1116 | f"{attrs['table_ts'].__table__}, Column: {col}, IDs: " |
||
| 1117 | f"{str(list(invalid_ts.index))}" |
||
| 1118 | ), |
||
| 1119 | ) |
||
| 1120 | |||
| 1121 | # Compare total energy demand in model with some approximate values |
||
| 1122 | # (per EV: 14,000 km/a, 0.17 kWh/km) |
||
| 1123 | print(" Checking energy demand in model...") |
||
| 1124 | total_energy_model = ( |
||
| 1125 | model_ts_dict["Load"]["ts"].p_set.apply(lambda _: sum(_)).sum() |
||
| 1126 | / 1e6 |
||
| 1127 | ) |
||
| 1128 | print(f" Total energy amount in model: {total_energy_model} TWh") |
||
| 1129 | total_energy_scenario_approx = ev_count_alloc * 14000 * 0.17 / 1e9 |
||
| 1130 | print( |
||
| 1131 | f" Total approximated energy amount in scenario: " |
||
| 1132 | f"{total_energy_scenario_approx} TWh" |
||
| 1133 | ) |
||
| 1134 | np.testing.assert_allclose( |
||
| 1135 | total_energy_model, |
||
| 1136 | total_energy_scenario_approx, |
||
| 1137 | rtol=0.1, |
||
| 1138 | err_msg=( |
||
| 1139 | "The total energy amount in the model deviates heavily " |
||
| 1140 | "from the approximated value for current scenario." |
||
| 1141 | ), |
||
| 1142 | ) |
||
| 1143 | |||
| 1144 | # Compare total storage capacity |
||
| 1145 | print(" Checking storage capacity...") |
||
| 1146 | # Load storage capacities from model |
||
| 1147 | with db.session_scope() as session: |
||
| 1148 | query = session.query( |
||
| 1149 | func.sum(EgonPfHvStore.e_nom).label("e_nom") |
||
| 1150 | ).filter( |
||
| 1151 | EgonPfHvStore.scn_name == scenario_name, |
||
| 1152 | EgonPfHvStore.carrier == "battery storage", |
||
| 1153 | ) |
||
| 1154 | storage_capacity_model = ( |
||
| 1155 | pd.read_sql( |
||
| 1156 | query.statement, query.session.bind, index_col=None |
||
| 1157 | ).e_nom.sum() |
||
| 1158 | / 1e3 |
||
| 1159 | ) |
||
| 1160 | print( |
||
| 1161 | f" Total storage capacity ({EgonPfHvStore.__table__}): " |
||
| 1162 | f"{round(storage_capacity_model, 1)} GWh" |
||
| 1163 | ) |
||
| 1164 | |||
| 1165 | # Load occurences of each EV |
||
| 1166 | with db.session_scope() as session: |
||
| 1167 | query = ( |
||
| 1168 | session.query( |
||
| 1169 | EgonEvMvGridDistrict.bus_id, |
||
| 1170 | EgonEvPool.type, |
||
| 1171 | func.count(EgonEvMvGridDistrict.egon_ev_pool_ev_id).label( |
||
| 1172 | "count" |
||
| 1173 | ), |
||
| 1174 | ) |
||
| 1175 | .join( |
||
| 1176 | EgonEvPool, |
||
| 1177 | EgonEvPool.ev_id |
||
| 1178 | == EgonEvMvGridDistrict.egon_ev_pool_ev_id, |
||
| 1179 | ) |
||
| 1180 | .filter( |
||
| 1181 | EgonEvMvGridDistrict.scenario == scenario_name, |
||
| 1182 | EgonEvMvGridDistrict.scenario_variation |
||
| 1183 | == scenario_var_name, |
||
| 1184 | EgonEvPool.scenario == scenario_name, |
||
| 1185 | ) |
||
| 1186 | .group_by(EgonEvMvGridDistrict.bus_id, EgonEvPool.type) |
||
| 1187 | ) |
||
| 1188 | count_per_ev_all = pd.read_sql( |
||
| 1189 | query.statement, query.session.bind, index_col="bus_id" |
||
| 1190 | ) |
||
| 1191 | count_per_ev_all["bat_cap"] = count_per_ev_all.type.map( |
||
| 1192 | meta_tech_data.battery_capacity |
||
| 1193 | ) |
||
| 1194 | count_per_ev_all["bat_cap_total_MWh"] = ( |
||
| 1195 | count_per_ev_all["count"] * count_per_ev_all.bat_cap / 1e3 |
||
| 1196 | ) |
||
| 1197 | storage_capacity_simbev = count_per_ev_all.bat_cap_total_MWh.div( |
||
| 1198 | 1e3 |
||
| 1199 | ).sum() |
||
| 1200 | print( |
||
| 1201 | f" Total storage capacity (simBEV): " |
||
| 1202 | f"{round(storage_capacity_simbev, 1)} GWh" |
||
| 1203 | ) |
||
| 1204 | |||
| 1205 | np.testing.assert_allclose( |
||
| 1206 | storage_capacity_model, |
||
| 1207 | storage_capacity_simbev, |
||
| 1208 | rtol=0.01, |
||
| 1209 | err_msg=( |
||
| 1210 | "The total storage capacity in the model deviates heavily " |
||
| 1211 | "from the input data provided by simBEV for current scenario." |
||
| 1212 | ), |
||
| 1213 | ) |
||
| 1214 | |||
| 1215 | # Check SoC storage constraint: e_min_pu < e_max_pu for all timesteps |
||
| 1216 | print(" Validating SoC constraints...") |
||
| 1217 | stores_with_invalid_soc = [] |
||
| 1218 | for idx, row in model_ts_dict["Store"]["ts"].iterrows(): |
||
| 1219 | ts = row[["e_min_pu", "e_max_pu"]] |
||
| 1220 | x = np.array(ts.e_min_pu) > np.array(ts.e_max_pu) |
||
| 1221 | if x.any(): |
||
| 1222 | stores_with_invalid_soc.append(idx) |
||
| 1223 | |||
| 1224 | np.testing.assert_equal( |
||
| 1225 | len(stores_with_invalid_soc), |
||
| 1226 | 0, |
||
| 1227 | err_msg=( |
||
| 1228 | f"The store constraint e_min_pu < e_max_pu does not apply " |
||
| 1229 | f"for some storages in {EgonPfHvStoreTimeseries.__table__}. " |
||
| 1230 | f"Invalid store_ids: {stores_with_invalid_soc}" |
||
| 1231 | ), |
||
| 1232 | ) |
||
| 1233 | |||
| 1234 | def check_model_data_lowflex_eGon2035(): |
||
| 1235 | # TODO: Add eGon100RE_lowflex |
||
| 1236 | print("") |
||
| 1237 | print("SCENARIO: eGon2035_lowflex") |
||
| 1238 | |||
| 1239 | # Compare driving load and charging load |
||
| 1240 | print(" Loading eGon2035 model timeseries: driving load...") |
||
| 1241 | with db.session_scope() as session: |
||
| 1242 | query = ( |
||
| 1243 | session.query( |
||
| 1244 | EgonPfHvLoad.load_id, |
||
| 1245 | EgonPfHvLoadTimeseries.p_set, |
||
| 1246 | ) |
||
| 1247 | .join( |
||
| 1248 | EgonPfHvLoadTimeseries, |
||
| 1249 | EgonPfHvLoadTimeseries.load_id == EgonPfHvLoad.load_id, |
||
| 1250 | ) |
||
| 1251 | .filter( |
||
| 1252 | EgonPfHvLoad.carrier == "land transport EV", |
||
| 1253 | EgonPfHvLoad.scn_name == "eGon2035", |
||
| 1254 | EgonPfHvLoadTimeseries.scn_name == "eGon2035", |
||
| 1255 | ) |
||
| 1256 | ) |
||
| 1257 | model_driving_load = pd.read_sql( |
||
| 1258 | query.statement, query.session.bind, index_col=None |
||
| 1259 | ) |
||
| 1260 | driving_load = np.array(model_driving_load.p_set.to_list()).sum(axis=0) |
||
| 1261 | |||
| 1262 | print( |
||
| 1263 | " Loading eGon2035_lowflex model timeseries: dumb charging " |
||
| 1264 | "load..." |
||
| 1265 | ) |
||
| 1266 | with db.session_scope() as session: |
||
| 1267 | query = ( |
||
| 1268 | session.query( |
||
| 1269 | EgonPfHvLoad.load_id, |
||
| 1270 | EgonPfHvLoadTimeseries.p_set, |
||
| 1271 | ) |
||
| 1272 | .join( |
||
| 1273 | EgonPfHvLoadTimeseries, |
||
| 1274 | EgonPfHvLoadTimeseries.load_id == EgonPfHvLoad.load_id, |
||
| 1275 | ) |
||
| 1276 | .filter( |
||
| 1277 | EgonPfHvLoad.carrier == "land transport EV", |
||
| 1278 | EgonPfHvLoad.scn_name == "eGon2035_lowflex", |
||
| 1279 | EgonPfHvLoadTimeseries.scn_name == "eGon2035_lowflex", |
||
| 1280 | ) |
||
| 1281 | ) |
||
| 1282 | model_charging_load_lowflex = pd.read_sql( |
||
| 1283 | query.statement, query.session.bind, index_col=None |
||
| 1284 | ) |
||
| 1285 | charging_load = np.array( |
||
| 1286 | model_charging_load_lowflex.p_set.to_list() |
||
| 1287 | ).sum(axis=0) |
||
| 1288 | |||
| 1289 | # Ratio of driving and charging load should be 0.9 due to charging |
||
| 1290 | # efficiency |
||
| 1291 | print(" Compare cumulative loads...") |
||
| 1292 | print(f" Driving load (eGon2035): {driving_load.sum() / 1e6} TWh") |
||
| 1293 | print( |
||
| 1294 | f" Dumb charging load (eGon2035_lowflex): " |
||
| 1295 | f"{charging_load.sum() / 1e6} TWh" |
||
| 1296 | ) |
||
| 1297 | driving_load_theoretical = ( |
||
| 1298 | float(meta_run_config.eta_cp) * charging_load.sum() |
||
| 1299 | ) |
||
| 1300 | np.testing.assert_allclose( |
||
| 1301 | driving_load.sum(), |
||
| 1302 | driving_load_theoretical, |
||
| 1303 | rtol=0.01, |
||
| 1304 | err_msg=( |
||
| 1305 | f"The driving load (eGon2035) deviates by more than 1% " |
||
| 1306 | f"from the theoretical driving load calculated from charging " |
||
| 1307 | f"load (eGon2035_lowflex) with an efficiency of " |
||
| 1308 | f"{float(meta_run_config.eta_cp)}." |
||
| 1309 | ), |
||
| 1310 | ) |
||
| 1311 | |||
| 1312 | print("=====================================================") |
||
| 1313 | print("=== SANITY CHECKS FOR MOTORIZED INDIVIDUAL TRAVEL ===") |
||
| 1314 | print("=====================================================") |
||
| 1315 | |||
| 1316 | for scenario_name in ["eGon2035", "eGon100RE"]: |
||
| 1317 | scenario_var_name = DATASET_CFG["scenario"]["variation"][scenario_name] |
||
| 1318 | |||
| 1319 | print("") |
||
| 1320 | print(f"SCENARIO: {scenario_name}, VARIATION: {scenario_var_name}") |
||
| 1321 | |||
| 1322 | # Load scenario params for scenario and scenario variation |
||
| 1323 | scenario_variation_parameters = get_sector_parameters( |
||
| 1324 | "mobility", scenario=scenario_name |
||
| 1325 | )["motorized_individual_travel"][scenario_var_name] |
||
| 1326 | |||
| 1327 | # Load simBEV run config and tech data |
||
| 1328 | meta_run_config = read_simbev_metadata_file( |
||
| 1329 | scenario_name, "config" |
||
| 1330 | ).loc["basic"] |
||
| 1331 | meta_tech_data = read_simbev_metadata_file(scenario_name, "tech_data") |
||
| 1332 | |||
| 1333 | print("") |
||
| 1334 | print("Checking EV counts...") |
||
| 1335 | ev_count_alloc = check_ev_allocation() |
||
| 1336 | |||
| 1337 | print("") |
||
| 1338 | print("Checking trip data...") |
||
| 1339 | check_trip_data() |
||
| 1340 | |||
| 1341 | print("") |
||
| 1342 | print("Checking model data...") |
||
| 1343 | check_model_data() |
||
| 1344 | |||
| 1345 | print("") |
||
| 1346 | check_model_data_lowflex_eGon2035() |
||
| 1347 | |||
| 1348 | print("=====================================================") |
||
| 1349 | |||
| 1394 |