| Conditions | 3 |
| Total Lines | 206 |
| Code Lines | 102 |
| 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:
| 1 | import logging |
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| 40 | def main(): |
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| 41 | # For models that need a long time to optimise, saving and loading the |
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| 42 | # EnergySystem might be advised. By default, we do not do this here. Feel |
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| 43 | # free to experiment with this once you understood the rest of the code. |
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| 44 | |||
| 45 | # ************************************************************************* |
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| 46 | # ********** PART 1 - Define and optimise the energy system *************** |
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| 47 | # ************************************************************************* |
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| 48 | |||
| 49 | # Read data file |
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| 50 | file_name = "subnetwork_example.csv" |
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| 51 | data = get_data_from_file_path(file_name) |
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| 52 | |||
| 53 | solver = "cbc" # 'glpk', 'gurobi',.... |
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| 54 | debug = False # Set number_of_timesteps to 3 to get a readable lp-file. |
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| 55 | number_of_time_steps = len(data) |
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| 56 | solver_verbose = False # show/hide solver output |
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| 57 | |||
| 58 | # initiate the logger (see the API docs for more information) |
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| 59 | logger.define_logging( |
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| 60 | logfile="oemof_example.log", |
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| 61 | screen_level=logging.INFO, |
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| 62 | file_level=logging.INFO, |
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| 63 | ) |
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| 64 | |||
| 65 | logging.info("Initialize the energy system") |
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| 66 | date_time_index = create_time_index(2012, number=number_of_time_steps) |
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| 67 | |||
| 68 | # create the energysystem and assign the time index |
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| 69 | energysystem = EnergySystem( |
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| 70 | timeindex=date_time_index, infer_last_interval=False |
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| 71 | ) |
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| 72 | |||
| 73 | ########################################################################## |
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| 74 | # Create oemof objects |
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| 75 | ########################################################################## |
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| 76 | |||
| 77 | logging.info("Create oemof objects") |
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| 78 | |||
| 79 | # The bus objects were assigned to variables which makes it easier to |
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| 80 | # connect components to these buses (see below). |
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| 81 | |||
| 82 | # create natural gas bus |
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| 83 | bus_gas = buses.Bus(label="natural_gas") |
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| 84 | |||
| 85 | # create electricity bus |
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| 86 | bus_electricity = buses.Bus(label="electricity") |
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| 87 | |||
| 88 | # adding the buses to the energy system |
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| 89 | energysystem.add(bus_gas, bus_electricity) |
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| 90 | |||
| 91 | # create excess component for the electricity bus to allow overproduction |
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| 92 | energysystem.add( |
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| 93 | components.Sink( |
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| 94 | label="excess_bus_electricity", |
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| 95 | inputs={bus_electricity: flows.Flow()}, |
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| 96 | ) |
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| 97 | ) |
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| 98 | |||
| 99 | # create source object representing the gas commodity |
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| 100 | energysystem.add( |
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| 101 | components.Source( |
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| 102 | label="rgas", |
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| 103 | outputs={bus_gas: flows.Flow()}, |
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| 104 | ) |
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| 105 | ) |
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| 106 | |||
| 107 | # *** SUB-NETWORK *************************** |
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| 108 | # Add a subnetwork for Renewable Energies. This not a Facade it just meant |
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| 109 | # to group components |
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| 110 | renewables = SubNetwork("renewables") |
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| 111 | re_bus = renewables.subnode(buses.Bus, "re_elec") |
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| 112 | |||
| 113 | # create fixed source object representing wind power plants |
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| 114 | renewables.subnode( |
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| 115 | components.Source, |
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| 116 | label="wind", |
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| 117 | outputs={re_bus: flows.Flow(fix=data["wind"], nominal_value=1000000)}, |
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| 118 | ) |
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| 119 | # create fixed source object representing pv power plants |
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| 120 | renewables.subnode( |
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| 121 | components.Source, |
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| 122 | label="pv", |
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| 123 | outputs={re_bus: flows.Flow(fix=data["pv"], nominal_value=582000)}, |
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| 124 | ) |
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| 125 | renewables.subnode( |
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| 126 | components.Converter, |
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| 127 | label="connection", |
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| 128 | outputs={bus_electricity: flows.Flow()}, |
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| 129 | inputs={re_bus: flows.Flow()}, |
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| 130 | ) |
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| 131 | energysystem.add(renewables) # Subnetwork to Energysystem |
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| 132 | # ************************************************************* |
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| 133 | |||
| 134 | # create simple sink object representing the electrical demand |
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| 135 | # nominal_value is set to 1 because demand_el is not a normalised series |
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| 136 | energysystem.add( |
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| 137 | components.Sink( |
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| 138 | label="demand", |
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| 139 | inputs={ |
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| 140 | bus_electricity: flows.Flow( |
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| 141 | fix=data["demand_el"], nominal_value=1 |
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| 142 | ) |
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| 143 | }, |
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| 144 | ) |
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| 145 | ) |
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| 146 | |||
| 147 | # create simple converter object representing a gas power plant |
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| 148 | energysystem.add( |
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| 149 | components.Converter( |
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| 150 | label="pp_gas", |
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| 151 | inputs={bus_gas: flows.Flow()}, |
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| 152 | outputs={ |
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| 153 | bus_electricity: flows.Flow( |
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| 154 | nominal_capacity=10e10, variable_costs=50 |
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| 155 | ) |
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| 156 | }, |
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| 157 | conversion_factors={bus_electricity: 0.58}, |
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| 158 | ) |
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| 159 | ) |
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| 160 | |||
| 161 | # create storage object representing a battery |
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| 162 | nominal_capacity = 10077997 |
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| 163 | nominal_value = nominal_capacity / 6 |
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| 164 | |||
| 165 | battery_storage = components.GenericStorage( |
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| 166 | nominal_capacity=nominal_capacity, |
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| 167 | label=STORAGE_LABEL, |
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| 168 | inputs={bus_electricity: flows.Flow(nominal_value=nominal_value)}, |
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| 169 | outputs={ |
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| 170 | bus_electricity: flows.Flow( |
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| 171 | nominal_value=nominal_value, variable_costs=0.001 |
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| 172 | ) |
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| 173 | }, |
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| 174 | loss_rate=0.00, |
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| 175 | initial_storage_level=None, |
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| 176 | inflow_conversion_factor=1, |
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| 177 | outflow_conversion_factor=0.8, |
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| 178 | ) |
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| 179 | |||
| 180 | energysystem.add(battery_storage) |
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| 181 | |||
| 182 | ########################################################################## |
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| 183 | # Optimise the energy system and plot the results |
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| 184 | ########################################################################## |
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| 185 | |||
| 186 | logging.info("Optimise the energy system") |
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| 187 | |||
| 188 | # initialise the operational model |
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| 189 | energysystem_model = Model(energysystem) |
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| 190 | |||
| 191 | # This is for debugging only. It is not(!) necessary to solve the problem |
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| 192 | # and should be set to False to save time and disc space in normal use. For |
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| 193 | # debugging the timesteps should be set to 3, to increase the readability |
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| 194 | # of the lp-file. |
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| 195 | if debug: |
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| 196 | file_path = os.path.join( |
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| 197 | helpers.extend_basic_path("lp_files"), "basic_example.lp" |
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| 198 | ) |
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| 199 | logging.info(f"Store lp-file in {file_path}.") |
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| 200 | io_option = {"symbolic_solver_labels": True} |
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| 201 | energysystem_model.write(file_path, io_options=io_option) |
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| 202 | |||
| 203 | # if tee_switch is true solver messages will be displayed |
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| 204 | logging.info("Solve the optimization problem") |
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| 205 | energysystem_model.solve( |
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| 206 | solver=solver, solve_kwargs={"tee": solver_verbose} |
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| 207 | ) |
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| 208 | |||
| 209 | results = Results(energysystem_model) |
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| 210 | |||
| 211 | # ToDO Implement a filter methode for the Result object to exclude |
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| 212 | # subcomponents of a facade/sub-network |
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| 213 | # The following lines are meant to show how the result should look like |
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| 214 | # in case the subcomponents should be exclude. There should not be a |
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| 215 | # postprocessing it is better to filter the nodes directly |
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| 216 | |||
| 217 | # Filter columns that are internal only |
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| 218 | keep_columns = [ |
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| 219 | c |
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| 220 | for c in results.flow.columns |
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| 221 | if getattr(c[1].label, "parent", None) |
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| 222 | != getattr(c[0].label, "parent", None) |
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| 223 | or ( |
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| 224 | getattr(c[0].label, "parent", True) is True |
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| 225 | and getattr(c[1].label, "parent", True) is True |
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| 226 | ) |
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| 227 | ] |
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| 228 | flow_results_filtered = results.flow[keep_columns].copy() |
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| 229 | |||
| 230 | # Replace subcomponent with facade object |
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| 231 | for level in [0, 1]: |
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| 232 | flow_results_filtered.rename( |
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| 233 | columns={ |
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| 234 | c[level]: getattr(c[level].label, "parent", c[level]) |
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| 235 | for c in flow_results_filtered.columns |
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| 236 | }, |
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| 237 | level=level, |
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| 238 | inplace=True, |
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| 239 | ) |
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| 240 | |||
| 241 | print("**** All results ****") |
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| 242 | print(results.flow.sum()) |
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| 243 | |||
| 244 | print("**** Filtered results ****") |
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| 245 | print(flow_results_filtered.sum()) |
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| 246 | |||
| 250 |