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Get runnable Credit Card Fraud Detection Final Year Project Source Code with database files, project setup instructions, live demo options and installation support. This project resource helps students understand the implementation, modules, workflow and technical architecture of a complete MACHINE-LEARNING project.
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Fraud Detection model based on anonymized credit card transaction. It is important that credit card companies are able to recognize fraudulent credit card transactions so that customers are not charged for items that they did not purchase. The datasets contains transactions made by credit cards in September 2013 by European cardholders. This dataset presents transactions that occurred in two days, where we have 492 frauds out of 284,807 transactions. The dataset is highly unbalanced, the positive class (frauds) account for 0.172% of all transactions.
| Panel | Username | Password | |
|---|---|---|---|
| Admin | [email protected] | admin | admin@123 |
| User | [email protected] | User | user@123 |
Dataset Description:
Objective:
Data Features:
Model Evaluation:
Challenges:
Inspiration:
Dataset Description:
Objective:
Data Features:
Model Evaluation:
Challenges:
Inspiration:
Dataset Description:
Objective:
Data Features:
Model Evaluation:
Challenges:
Inspiration:
Download the Dataset:
Organize the Files:
creditcard.csv file inside the main folder.Install Required Python Packages:
Run the Code in Jupyter Notebook:
Credit-Card-Fraud-Detection folder.creditcard.csv).Enjoy:
| Panel | Username | Password | |
|---|---|---|---|
| Admin | [email protected] | admin | admin@123 |
| User | [email protected] | User | user@123 |