A project that uses optical flow and machine learning to detect aimhacking in video clips.

Overview

waldo-anticheat

A project that aims to use optical flow and machine learning to visually detect cheating or hacking in video clips from fps games. Check out this video discussing the purpose and vision of WALDO.

Notes

  • This project is still under development.

The What

A new market for cheats that are visually indistinguishable to the human eye have lead to a rise in "closet hacking" among streamers and professionals. This form of cheating is extremely hard to detect. In some cases it is impossible to detect, even with today's most advanced anti-cheat software.

We will combat this new kind of cheating by creating our own deep learning program to detect this behavior in video clips.

The How

Because of the advanced technology used, the only reliable way to detect this form of cheating is by observing the cheating behavior directly from the end result- gameplay. Our goal is to analyze the video directly using deep learning to detect if a user is receiving machine assistance.

Phase 1 focuses primarily on humanized aim-assist. Upon completion of phase 1, WALDO's main function will be vindication and clarity to many recent "hackusations."

Skills needed:

  1. Machine learning / neural networks / AI
  2. Visualizations and graphics
  3. Data analysis
  4. General python
  5. Website design / programming
  6. Game graphics / video analysis
  7. Gamers
  8. Current closet hackers you can help ( ͡° ͜ʖ ͡°)
In this project we investigate the performance of the SetCon model on realistic video footage. Therefore, we implemented the model in PyTorch and tested the model on two example videos.

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