exploring options
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@@ -51,7 +51,7 @@ It is recommended to use UV for environment and package handling.
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1. Adjust the config.py file to match your needs.
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1. Ensure your .dat files are in the DAT_TOP_FOLDER (as per config location)
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1. Ensure your zone csv files are in the ZONE_FOLDER (as per config location)
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1. RunMain Pipeline `uv run main.py
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1. RunMain Pipeline `uv run main.py` Note that you will have to set your environment variable `PYTHON_GIL=0` first
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1. find the output in the COMBINED_FOLDER (as per config location)
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The main pipeline will:
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@@ -30,6 +30,7 @@ if __name__ == "__main__":
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northing = int(row[2]) # Northing column
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zone = int(row[3]) # ZoneID column
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locations.append([zone_id, easting, northing, zone])
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logging.info(f'Count of 1K Grids: {len(locations)}')
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batch = BatchNimrod(Config)
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timeseries = GenerateTimeseries(Config)
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@@ -79,7 +80,7 @@ if __name__ == "__main__":
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files_per_minute = (completed_count / elapsed_time) * 60
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remaining_files = total_files - completed_count
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eta_minutes = remaining_files / (files_per_minute / 60) / 60
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logging.info(f''''Processed {completed_count} out of {total_files} files.
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logging.info(f'''Processed {completed_count} out of {total_files} files.
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Speed: {files_per_minute:.2f} files/min. ETA: {eta_minutes:.2f} minutes''')
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except KeyboardInterrupt:
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logging.warning("KeyboardInterrupt received. Cancelling pending tasks...")
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@@ -91,6 +92,7 @@ if __name__ == "__main__":
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logging.info("Writing CSV files...")
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timeseries.write_results_to_csv(results, locations)
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results.clear()
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logging.info("combining CSVs into groups")
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combiner.combine_csv_files()
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@@ -1,6 +1,6 @@
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import polars as pd
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import os
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import logging
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class CombineTimeseries:
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def __init__(self, config, locations):
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@@ -15,23 +15,56 @@ class CombineTimeseries:
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if group not in self.grouped_locations:
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self.grouped_locations[group] = []
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self.grouped_locations[group].append(location)
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logging.info(f'Count of zones: {len(self.grouped_locations)}')
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# def combine_csv_files(self):
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# to_delete = []
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# for group, loc_list in self.grouped_locations.items():
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# output_file =f"{self.config.COMBINED_FOLDER}/zone_{group}_timeseries_data.csv"
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# combined_df = None
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# for loc in loc_list:
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# csv_to_load = f"{self.config.CSV_TOP_FOLDER}/{loc[0]}_timeseries_data.csv"
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# df = pd.read_csv(csv_to_load, streaming=True)
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# if combined_df is None:
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# combined_df = df
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# else:
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# combined_df = combined_df.join(df, on='datetime')
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# if self.config.delete_csv_after_combining:
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# to_delete.append(csv_to_load)
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# sorted_df = combined_df.sort('datetime')
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# print(f'writing file to {output_file}')
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# sorted_df.write_csv(output_file)
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# if len(to_delete) > 0:
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# for path in to_delete:
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# print(f'deleting {path}')
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# os.remove(path)
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def combine_csv_files(self):
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to_delete = []
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for group, loc_list in self.grouped_locations.items():
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combined_df = None
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output_file = f"{self.config.COMBINED_FOLDER}/zone_{group}_timeseries_data.csv"
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# Use LazyFrame for memory-efficient processing
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lazy_dfs = []
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for loc in loc_list:
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csv_to_load = f"./csv_files/{loc[0]}_timeseries_data.csv"
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df = pd.read_csv(csv_to_load)
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if combined_df is None:
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combined_df = df
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else:
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combined_df = combined_df.join(df, on='datetime')
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csv_to_load = f"{self.config.CSV_TOP_FOLDER}/{loc[0]}_timeseries_data.csv"
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df = pd.scan_csv(csv_to_load) # Lazy read
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lazy_dfs.append(df)
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if self.config.delete_csv_after_combining:
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os.remove(csv_to_load)
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to_delete.append(csv_to_load)
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output_file = (
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f"{self.config.COMBINED_FOLDER}/zone_{group}_timeseries_data.csv"
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)
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sorted_df = combined_df.sort('datetime')
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# Combine with LazyFrame operations
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combined_lazy = pd.concat(lazy_dfs, how='align').collect(streaming=True) # Collect at the end
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sorted_df = combined_lazy.sort('datetime')
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print(f'writing file to {output_file}')
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sorted_df.write_csv(output_file)
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if len(to_delete) > 0:
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for path in to_delete:
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print(f'deleting {path}')
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os.remove(path)
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@@ -5,6 +5,7 @@ import polars as pd
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from datetime import datetime
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import os
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import concurrent.futures
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import logging
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@@ -169,7 +170,6 @@ class GenerateTimeseries:
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executor.shutdown(wait=False, cancel_futures=True)
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raise
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# Write CSVs for each location
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def write_results_to_csv(self, results, locations):
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"""Write extracted data to CSV files for each location.
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@@ -177,7 +177,6 @@ class GenerateTimeseries:
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results (dict): Aggregated results {zone_id: {'dates': [], 'values': []}}
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locations (list): List of location data
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"""
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print("Writing CSV files...")
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for location in locations:
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zone_id = location[0]
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data = results[zone_id]
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@@ -201,4 +200,4 @@ class GenerateTimeseries:
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output_path,
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float_precision=4
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)
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print("All CSV files written.")
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logging.info("All CSV files written.")
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