afb6d5185d
Feature/lesser table caching refactor hybrid * chore: Remove unused duplicate main.py from shared pipeline * fix: Correct crosswalk paths in aarete_derived.py * chore: Remove unused documentation files from fieldExtraction * docs: Add documentation files to documentation folder * docs: Update README with uv setup, expanded project structure, and branching conventions * docs: Add uv installation steps with Ubuntu/WSL emphasis * Enable prompt caching for all remaining LLM calls - Add _INSTRUCTION() functions for: EXHIBIT_HEADER, EXHIBIT_LINKAGE, EXHIBIT_TITLE_MATCH, DATE_FIX, DERIVED_TERM_DATE, CHECK_PROVIDER_NAME_MATCH, SPECIAL_CASE_ASSIGNMENT - Update all invoke_claude() calls in saas and clover pipelines to use cache=True with corresponding _INSTRUCTION() functions - Add new instructions to get_cacheable_instructions() for cache warming - Update tests for new instruction functions Functions now using caching: - prompt_exhibit_level - prompt_exhibit_lesser (EXHIBIT_LEVEL_LESSER_OF) - prompt_fee_schedule_breakout - prompt_grouper_breakout - prompt_special_case_assignment - prompt_exhibit_linkage - prompt_exhibit_header - prompt_smart_chunked (ONE_TO_ONE templates) - prompt_date_fix - prompt_derived_term_date - prompt_exhibit_title_match - provider_name_match_check 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude Opus 4.5 <noreply@anthropic.com> * Reorder * feat: Add bcbs_promise client pipeline with OFFSET_TERM extraction - Add new bcbs_promise client with HSC-based OFFSET_TERM field extraction - Extract full paragraph text of offset/recoupment provisions from contracts - Derive OFFSET_INDICATOR (Y/N) from OFFSET_TERM presence - Fix reorder_columns to preserve extra columns not in COLUMN_ORDER - Update QC/QA output path to outputs/qc_qa/ * fix: Update dev deps and test assertions for QC/QA output path - Add pytest/pytest-mock to dev dependencies for mypy type checking - Update test assertions to expect outputs/qc_qa instead of qa_qc_output * style: Apply black formatting to prompt_templates.py * Merge main, move scripts * Archive some scripts * update py version * remove .py version file * Remove ASCII characters * Restore testbed code * restore tracking * Update testbed metrics * Enable prompt caching for CODE_LAST_CHECK, FILL_BILL_TYPE, DUAL_LOB_CHECK, and GROUPER_BREAKOUT - Add CODE_LAST_CHECK_INSTRUCTION() for service specificity classification - Add FILL_BILL_TYPE_INSTRUCTION() for bill type code determination - Add DUAL_LOB_CHECK_INSTRUCTION() for Medicare/Medicaid classification - Update code_funcs.py to use caching for CODE_LAST_CHECK, FILL_BILL_TYPE, GROUPER_BREAKOUT - Update postprocessing_funcs.py to use caching for DUAL_LOB_CHECK - Add new instructions to get_cacheable_instructions() for cache warming - Add unit tests for new instruction functions 🤖 Generated with [Claude Code](https://claude.com/claude-code) Co-Authored-By: Claude Opus 4.5 <noreply@anthropic.com> * Fix postprocessing_funcs to remove invalid columns * Merge branch 'main' into feature/lesser-table-caching-refactor-hybrid * Revert prompt caching changes from aed1b73c * update formatting * Update imports Approved-by: Sha Brown Approved-by: Praneel Panchigar
189 lines
8.5 KiB
Python
189 lines
8.5 KiB
Python
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import os
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import pandas as pd
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import logging
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import concurrent.futures
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logging.getLogger().setLevel("ERROR")
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import warnings
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warnings.filterwarnings("ignore")
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import postprocessing_funcs
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import valid
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import config
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def b_postprocess(filename, combined_df, pages):
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if combined_df.shape[0] > 0:
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# Metadata fields
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# combined_df['Contract Name'] = filename
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# combined_df['Parent Agreement Code'] = postprocessing_funcs.get_parent_agreement_code(filename)
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# combined_df['Pages'] = pages
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# Add Single Code, Multiple Rate
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combined_df = postprocessing_funcs.add_scmr(combined_df)
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# Filter Add Ons
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combined_df = postprocessing_funcs.filter_add_ons(combined_df)
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# Clean MSR
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combined_df = postprocessing_funcs.clean_msr_lesser(combined_df)
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# Clean Default
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combined_df = postprocessing_funcs.clean_default_term(combined_df)
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# Clean Prov 2
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combined_df = postprocessing_funcs.clean_prov_2(combined_df)
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# Clean Lesser Of Rate
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combined_df = postprocessing_funcs.clean_lesser_rate(combined_df)
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# Clean LOB
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combined_df = postprocessing_funcs.clean_lob(combined_df, filename)
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# Rename and reorder
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combined_df.rename(columns=valid.B_MAPPING, inplace=True)
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column_order = [col for col in valid.B_MAPPING.values() if col in combined_df.columns]
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final_df = combined_df[column_order]
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return final_df
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else:
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return combined_df
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def read_individual(filepath, filename):
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df_list = []
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for file in os.listdir(filepath):
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full_path = os.path.join(filepath, file)
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df = pd.read_csv(os.path.join(full_path, filename))
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df_list.append(df)
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return pd.concat(df_list, ignore_index=True)
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all_column_mappings = valid.B_MAPPING.copy()
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all_column_mappings.update(valid.AC_MAPPING)
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# For Original ABC -
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# For Duplicates -
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# For Non-B: All AC1 and AC2 Fields
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# TERM_CLAUSE, CONTRACT_EFFECTIVE_DATE, PROV_GROUP_TIN, PROV_GROUP_NPI, DEFAULT_TERM + [ALL PART 2 FIELDS]
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# # ############################## READ - Clean ABC Part 1 + 3 New B Fields ##############################
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abc = read_individual('output_individual/cnc_batch1_b', 'b_output.csv')
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abc.drop(['Exclusions'], axis=1, inplace=True)
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abc = abc[[col for col in abc.columns if 'Unnamed' not in col]]
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abc.rename(columns={v : k for k, v in all_column_mappings.items()}, inplace=True)
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abc.rename(columns={'If rate is % of Payer or MCR [STANDARD]' : 'RATE_STANDARD', 'If rate is % of Payer or MCR [STANDARD]_Short' : 'RATE_SHORT',
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'Lesser of Logic Language, included (Y/N)' : 'LESSER', 'Flat Fee' : 'FLAT_FEE_STANDARD', 'Reimb. Methodology_short' : 'SHORT_METHODOLOGY'}, inplace=True)
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abc['Filename'] = abc['Filename'].str.replace('.txt', '', regex=False)
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print("Clean ABC Part 1 + 3 New B Fields: ")
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print(f"Filenames: {len(abc.Filename.unique())}", abc.Filename[0])
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print(list(abc.columns))
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print(f"Invalid Cols: {[col for col in abc.columns if col not in all_column_mappings.keys()]}")
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print(abc.shape)
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# ############################## READ - AC2 For All Contracts ##############################
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ac2 = read_individual('output_individual/cnc_batch1_ac', 'ac_output.csv')
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ac2 = ac2[[col for col in ac2.columns if 'Unnamed' not in col]]
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ac2.rename(columns={v : k for k, v in all_column_mappings.items()}, inplace=True)
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ac2['Filename'] = ac2['Filename'].str.replace('.txt', '', regex=False)
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print("AC2 For All Contracts: ")
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print(f"Filenames: {len(ac2.Filename.unique())}", ac2.Filename[0])
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print(list(ac2.columns))
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print(f"Invalid Cols: {[col for col in ac2.columns if col not in all_column_mappings.keys()]}")
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print(ac2.shape)
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# ############################## READ - New AC1 (3 fields) For All Contracts ##############################
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ac1 = read_individual('output_individual/cnc_batch1_ac1', 'ac_output.csv')
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# ac1.columns = ['Filename', 'Contract Effective Date', 'IRS #', 'NPI (10-digits)']
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ac1.rename(columns={v : k for k, v in all_column_mappings.items()}, inplace=True)
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ac1['Filename'] = ac1['Filename'].str.replace('.txt', '', regex=False)
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print("New AC1 For All Contracts: ")
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print(f"Filenames: {len(ac1.Filename.unique())}", ac1.Filename[0])
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print(list(ac1.columns))
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print(ac1.shape)
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# ############################## READ - Original AC1 For All Contracts ##############################
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ac = pd.read_csv('reference_files/CNC-1-AC.csv')
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ac.rename(columns={v : k for k, v in all_column_mappings.items()}, inplace=True)
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ac.rename(columns={'Evergreen, Fixed or Hard Term' : 'CONTRACT_AUTO_RENEWAL_IND',
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'Sequestration Reductions, included [Medicare only] (Y/N)' : 'SEQUESTRATION_REDUCTIONS_IND'}, inplace=True)
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print("Original AC1 For Non-B Contracts: ")
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print(f"Filenames: {len(ac.Filename.unique())}", ac.Filename[0])
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print(list(ac.columns))
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print(f"Invalid Cols: {[col for col in ac.columns if col not in all_column_mappings.keys()]}")
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print(ac.shape)
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############################## MERGE - Original AC1 + 3 New AC1 Fields ##############################
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ac.drop(['CONTRACT_EFFECTIVE_DT', 'PROV_GROUP_TIN', 'PROV_GROUP_NPI'], axis=1, inplace=True)
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ac = pd.merge(ac, ac1, on='Filename', how='right') # .reset_index(drop=True)
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# ac.rename(columns=all_column_mappings, inplace=True)
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ac = ac[[col for col in ac.columns if 'Unnamed' not in col]]
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print("Final AC1 (with 3 replaced fields)")
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print(f"Filenames: {len(ac.Filename.unique())}")
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print(list(ac.columns))
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print(ac.shape)
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############################## FILTER - Only AC1 that are not already in Clean ABC ##############################
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ac_new_only = ac[~ac['Filename'].isin(abc.Filename.unique())]
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print("AC New Only (with 3 replaced fields)")
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print(f"Filenames: {len(ac_new_only.Filename.unique())}")
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print(list(ac_new_only.columns))
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print(ac_new_only.shape)
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############################## ADD - Only New AC1 to abc ##############################
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abc = abc.reset_index(drop=True)
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ac = ac.reset_index(drop=True)
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abc = pd.concat([abc, ac_new_only], axis=0)
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print("Updated ABC (With non-B AC1 Fields added)")
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print(f"Filenames: {len(abc.Filename.unique())}")
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print(list(abc.columns))
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print(f"Invalid Cols: {[col for col in abc.columns if col not in all_column_mappings.keys()]}")
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print(abc.shape)
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############################## MERGE - AC2 to abc ##############################
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abc = abc[[col for col in abc.columns if col not in [c for c in ac2.columns if c != 'Filename']]]
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# Merge ac2 to abc, keeping the columns from ac2 when there is a conflict. Except for CREDENTIALING_APP_IND
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# abc = pd.merge(abc, ac2, on='Filename', how='left')
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abc = pd.merge(abc, ac2, on='Filename', how='left', suffixes=('', '_from_ac2'))
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for column in abc.columns:
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if column.endswith('_from_ac2'):
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orig_column = column[:-10] # Remove the '_from_ac2' suffix
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if orig_column != 'CREDENTIALING_APP_IND':
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abc[orig_column] = abc[column]
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abc.drop(column, axis=1, inplace=True)
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print("Updated ABC (with Non-B AC1 fields, new AC2 field, new B fields)")
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print(f"Filenames: {len(abc.Filename.unique())}")
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print(list(abc.columns))
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print(f"Invalid Cols: {[col for col in abc.columns if col not in all_column_mappings.keys()]}")
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print(abc.shape)
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# abc.rename(columns=all_column_mappings, inplace=True)
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# abc.to_csv('output_consolidated/CNC-Batch1-ABC-BeforePostprocessing.csv')
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############################## POSTPROCESS - Final Postprocess Step ##############################
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def postprocess_ad_hoc(combined_df):
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# B Steps
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print(combined_df.shape)
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combined_df = postprocessing_funcs.add_scmr(combined_df)
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print(combined_df.shape)
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# combined_df = postprocessing_funcs.filter_add_ons(combined_df) # Removing rows
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# print(combined_df.shape)
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combined_df = postprocessing_funcs.clean_lesser_rate(combined_df)
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print(combined_df.shape)
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combined_df = postprocessing_funcs.clean_default_term(combined_df)
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print(combined_df.shape)
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# combined_df = postprocessing_funcs.clean_msr_lesser(combined_df) # Modify for ad hoc
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# combined_df = postprocessing_funcs.clean_prov_2(combined_df) # Modify for ad hoc
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# combined_df = postprocessing_funcs.clean_lob(combined_df, "")
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# AC Steps
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combined_df = postprocessing_funcs.clean_ac_fields(combined_df)
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combined_df = combined_df.apply(postprocessing_funcs.derive_indicators, axis=1)
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print(combined_df.shape)
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return combined_df
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abc_final = postprocess_ad_hoc(abc)
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abc_final.rename(columns=all_column_mappings, inplace=True)
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abc_final.to_csv('output_consolidated/CNC-1-RERUN-DRAFT4.csv')
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print("Final ABC")
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print(f"Filenames: {len(abc.Filename.unique())}")
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print(list(abc_final.columns))
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print(abc_final.shape)
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