Reverse-SynthID is a research-focused project that analyzes and reverse-engineers Google’s SynthID watermarking system used in AI-generated images. It leverages signal processing and spectral analysis techniques to identify hidden watermark patterns without access to proprietary encoding methods. The project introduces a multi-resolution “SpectralCodebook” that maps watermark characteristics across different image sizes. Using this approach, it can detect SynthID watermarks with high accuracy and selectively reduce or remove them through frequency-domain manipulation. Unlike traditional image degradation methods, it performs targeted, minimally invasive adjustments that preserve image quality. Overall, Reverse-SynthID serves as a technical exploration of AI watermark robustness, detection, and removal strategies.

Features

  • Detects SynthID watermarks with ~90% accuracy using spectral and phase analysis.
  • Multi-resolution SpectralCodebook enables adaptive watermark handling across image sizes.
  • Advanced V3 bypass method reduces watermark signal while maintaining high image quality (43+ dB PSNR).
  • Supports CLI and Python workflows for building codebooks, detection, and removal.
  • Provides detailed FFT-based analysis tools for studying watermark behavior.
  • Research-oriented framework for studying AI watermarking, security, and robustness.

Project Activity

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License

MIT License

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Additional Project Details

Operating Systems

Linux, Mac, Windows

Programming Language

Python

Related Categories

Python Artificial Intelligence Software

Registered

2026-04-10