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financial-fraud

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🚨 Fraud Detection with Deep Neural Networks (PoC) 🤖 A hands-on personal project to predict fraudulent financial transactions using deep learning. Covers the full pipeline: from exploratory data analysis (EDA) and preprocessing to model training and evaluation. An experimental approach to tackling real-world financial fraud. 📊🔍

  • Updated Jun 21, 2025
  • Jupyter Notebook

ML-FinFraud-Detector is a machine learning project for detecting financial transaction fraud. Utilizing XGBoost, precision-recall, and ROC curves, it provides accurate fraud detection. Explore feature importance, evaluate model performance, and enhance financial security with this comprehensive fraud detection solution.

  • Updated Jul 14, 2023
  • Jupyter Notebook

The Wirecard scandal is considered one of the largest financial scandals of the decade, which caused losses of several billion euros. This analysis examines the digit structure of Wirecard's financial figures in the period from 2005 to 2019 by analyzing the conformity with the expected frequency distributions according to Benford's law. The resu…

  • Updated Feb 22, 2021
  • R

🛡️ Welcome to our Credit Card Fraud Detection project! 💳 Harnessing the formidable prowess machine learning, we're steadfast in our mission to fortify your financial stronghold against deceitful adversaries. Join our crusade for financial resilience,Ensuring every transaction is securely monitored! 🔐💯

  • Updated Dec 31, 2024
  • Jupyter Notebook

A sophisticated platform for anomaly detection in transaction data using autoencoders. Integrates SQL database connectivity, hyperparameter optimization, entropy analysis, and comprehensive visualizations. Tailored for financial fraud detection and industrial data analytics. (280 characters)

  • Updated Apr 22, 2025
  • Python

Analysis and detection of potentially fraudulent credit card transactions in USA based on transaction duplication, transaction frequency, transaction duration, geolocation, and movement speed transaction. This repository includes informative visualizations, handling of imbalanced data challenges, fraud detection model, and performance evaluation.

  • Updated May 4, 2025
  • Jupyter Notebook

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