add card printing data scripts
This commit is contained in:
43
scripts/card_print_1.js
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43
scripts/card_print_1.js
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function main(workbook: ExcelScript.Workbook) {
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let selectedCell = workbook.getActiveCell();
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let selectedSheet = workbook.getActiveWorksheet();
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// Set fill colour to yellow for the selected cell.
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selectedCell.getFormat().getFill().setColor("yellow");
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// Get the hyperlink of the active cell.
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let hyperlink = selectedCell.getHyperlink();
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// Print the hyperlink in the console.
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// console.log("Hyperlink: " + JSON.stringify(hyperlink.address));
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// Check if there is a selected cell.
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if (selectedCell) {
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// Get the column index of the selected cell.
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let selectedColumnIndex = selectedCell.getColumnIndex();
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// Get the active sheet.
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let selectedSheet = workbook.getActiveWorksheet();
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// Get the number of rows in the sheet.
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let rowCount = 10932;
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// Iterate through each row and copy the value from the selected column to a new column.
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for (let rowIndex = 0; rowIndex < rowCount; rowIndex++) {
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// Get the value from the selected column.
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let cellValue = selectedSheet.getCell(rowIndex, selectedColumnIndex).getHyperlink()?.address;
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// Assume the new column is next to the selected column. You can adjust the index as needed.
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let newColumnIndex = selectedColumnIndex + 1;
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// Set the value in the new column.
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selectedSheet.getCell(rowIndex, newColumnIndex).setValue(cellValue);
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}
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console.log("New column created with values from the selected column.");
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} else {
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console.log("No cell selected.");
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}
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}
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37
scripts/card_print_data_2.py
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37
scripts/card_print_data_2.py
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import pandas as pd
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import os
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import numpy as np
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import xlsxwriter
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curdir = os.getcwd()
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path_delim = '/'
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df1 = pd.read_excel(curdir + path_delim + "data/users_16_12_2023_18_31.xlsx", sheet_name="Sheet1")
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df2 = pd.read_excel(curdir + path_delim + "data/16Dec23-GIPCI Card Printing-2.xlsx", sheet_name="Data for Submission-GIPCI 16Dec")
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df = df2.merge(df1, on="_id", how="inner")
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print(df.columns)
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# df = df[["_id", "name_x", "abhaId", "aadharId", "Age", "gender", "category", "maritalStatus", "house", "district", "state", "pinCode", "phoneNumber", "classificationResult", "bloodGroup", "testTime", "caste", "registrationCenterName"]]
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# print(df)
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df["Block/Ward"] = ""
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df["Village/Town/City"] = df["city"]
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df["Test Type"] = "HPOS"
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df["Photograph"] = df['_id'].apply(lambda x: f'images\{x}.jpg') #f"external:{row['Image URL']}"
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df.rename(columns={'_id': "Sample ID", "aadharId": "AADHAAR ID", "ABHA ID": "ABHA Number", "careOf": "Father's Name / Husband's Name", "Test Result": "Test report"}, inplace = True)
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df = df.reindex(["Sample ID", "ABHA Number", "Name", "AADHAAR ID", "Age", "Gender", "Father's Name / Husband's Name", "District", "Block/Ward", "Village/Town/City", "Address", "Pincode", "Test report", "Test Type", "Blood Group", "bloodGroup", "Photograph"], axis=1)
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writer = pd.ExcelWriter(curdir + path_delim + "data/CardPrint4.xlsx", engine = 'xlsxwriter')
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df.to_excel(writer, sheet_name = 'op', index=False)
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# Get the xlsxwriter workbook and worksheet objects
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workbook = writer.book
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worksheet = writer.sheets['op']
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# Add hyperlinks to the 'Photograph' column
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for row_num, link in enumerate(df['Photograph'], start=1):
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worksheet.write_url(row_num, df.columns.get_loc('Photograph'), string=link, url=link, cell_format=None)
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writer.close()
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75
scripts/card_print_data_3.py
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scripts/card_print_data_3.py
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import pandas as pd
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import os
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curdir = os.getcwd()
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path_delim = '/'
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df1 = pd.read_excel(curdir + path_delim + "data/users_12_01_2024_23_25.xlsx", sheet_name="Sheet1")
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df2 = pd.read_excel(curdir + path_delim + "data/12jan-printing-input.xlsx", sheet_name="Sheet1")
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# Define a function to find the _id for each row in df2
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def find_id(row):
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match = df1[(df1['abhaId'] == row['abhaId'])]
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if not match.empty:
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return match.iloc[0]['_id']
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else:
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match = df1[(df1['name'] == row['name'])]
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if not match.empty:
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return match.iloc[0]['_id']
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match = df1[(df1['house'] == row['address'])]
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if not match.empty:
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return match.iloc[0]['_id']
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return None
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def find_aadharId(row):
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match = df1[(df1['abhaId'] == row['abhaId'])]
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if not match.empty:
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return match.iloc[0]['aadharId']
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else:
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match = df1[(df1['name'] == row['name'])]
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if not match.empty:
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return match.iloc[0]['aadharId']
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match = df1[(df1['house'] == row['address'])]
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if not match.empty:
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return match.iloc[0]['aadharId']
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return None
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def find_abhaId(row):
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match = df1[(df1['name'] == row['name'])]
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if not match.empty:
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return match.iloc[0]['abhaId']
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else:
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match = df1[(df1['house'] == row['address'])]
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if not match.empty:
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return match.iloc[0]['abhaId']
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return None
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# Apply the function to create a new '_id' column in df2
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df2['_id'] = df2["Photograph"].get_url()
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df2['aadharId'] = df2.apply(find_aadharId, axis=1)
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df2['abhaId2'] = df2.apply(find_abhaId, axis=1)
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# Continue with the rest of your code...
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# Add the rest of your code (e.g., renaming columns, creating new columns, etc.)
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df2["Block/Ward"] = ""
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# df2["Village/Town/City"] = df2["city"]
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df2["Test Type"] = "HPOS"
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df2["Photograph"] = df2['_id'].apply(lambda x: f'images\{x}.jpg')
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df2.rename(columns={'_id': "Sample ID", "name": "Name", "aadharId": "AADHAAR ID", "ABHA ID": "ABHA Number", "careOf": "Father's Name / Husband's Name", "Test Result": "Test report"}, inplace=True)
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# Continue with the rest of your code...
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# Save the resulting DataFrame to Excel
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writer = pd.ExcelWriter(curdir + path_delim + "data/CardPrint10.xlsx", engine='xlsxwriter')
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df2.to_excel(writer, sheet_name='op', index=False)
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# Get the xlsxwriter workbook and worksheet objects
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workbook = writer.book
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worksheet = writer.sheets['op']
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# Add hyperlinks to the 'Photograph' column
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for row_num, link in enumerate(df2['Photograph'], start=1):
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worksheet.write_url(row_num, df2.columns.get_loc('Photograph'), string=link, url=link, cell_format=None)
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writer.close()
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26
scripts/card_print_data_4.py
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26
scripts/card_print_data_4.py
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import pandas as pd
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import os
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import re
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curdir = os.getcwd()
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path_delim = '/'
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df = pd.read_excel(curdir + path_delim + "data/12jan-printing-input.xlsx", sheet_name="Sheet1")
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pattern = re.compile(r'/([^/]+)\.[a-z]+$', re.IGNORECASE)
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# Function to apply to each row of the DataFrame
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def extract_filename(file_path):
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match = pattern.search(file_path)
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return match.group(1) if match else None
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# Apply the function to the 'file_path' column
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df['_id'] = df['Url'].apply(extract_filename)
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print(df)
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print(df.columns)
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writer = pd.ExcelWriter(curdir + path_delim + "data/CardPrint11.xlsx", engine='xlsxwriter')
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df.to_excel(writer, sheet_name='op', index=False)
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writer.close()
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14
scripts/card_print_data_5.py
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14
scripts/card_print_data_5.py
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import os
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import re
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file_path = "../../../../Downloads/images/352405884025RAVGMC.jpg"
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# Using regular expression to extract the filename without extension
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pattern = re.compile(r'/([^/]+)\.[a-z]+$', re.IGNORECASE)
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match = pattern.search(file_path)
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if match:
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extracted_file_name = match.group(1)
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print(extracted_file_name)
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else:
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print("Unable to extract filename from the given path.")
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35
scripts/card_print_data_6.py
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35
scripts/card_print_data_6.py
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import pandas as pd
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import os
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curdir = os.getcwd()
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path_delim = '/'
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df1 = pd.read_excel(curdir + path_delim + "data/users_12_01_2024_23_25.xlsx", sheet_name="Sheet1")
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df2 = pd.read_excel(curdir + path_delim + "data/CardPrint11.xlsx", sheet_name="op")
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df = df2.merge(df1, on="_id", how="left")
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print(df.columns)
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# df = df[["_id", "name_x", "abhaId", "aadharId", "Age", "gender", "category", "maritalStatus", "house", "district", "state", "pinCode", "phoneNumber", "classificationResult", "bloodGroup", "testTime", "caste", "registrationCenterName"]]
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# print(df)
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df["Block/Ward"] = ""
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df["Village/Town/City"] = df["city"]
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df["Test Type"] = "HPOS"
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df["Photograph"] = df['_id'].apply(lambda x: f'images\{x}.jpg') #f"external:{row['Image URL']}"
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df.rename(columns={'_id': "Sample ID", "aadharId": "AADHAAR ID", "ABHA ID": "ABHA Number", "careOf": "Father's Name / Husband's Name", "Test Result": "Test report"}, inplace = True)
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# df = df.reindex(["Sample ID", "ABHA Number", "Name", "AADHAAR ID", "Age", "Gender", "Father's Name / Husband's Name", "District", "Block/Ward", "Village/Town/City", "Address", "Pincode", "Test report", "Test Type", "Blood Group", "bloodGroup", "Photograph"], axis=1)
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writer = pd.ExcelWriter(curdir + path_delim + "data/CardPrint12.xlsx", engine = 'xlsxwriter')
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df.to_excel(writer, sheet_name = 'op', index=False)
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# Get the xlsxwriter workbook and worksheet objects
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workbook = writer.book
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worksheet = writer.sheets['op']
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# Add hyperlinks to the 'Photograph' column
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for row_num, link in enumerate(df['Photograph'], start=1):
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worksheet.write_url(row_num, df.columns.get_loc('Photograph'), string=link, url=link, cell_format=None)
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writer.close()
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