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Microscopic analysis of the latent space: heuristics for interpretability, authenticity, and bias detection in VAE representations

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DOI
10.5281/zenodo.16827724

A proposal modular heuristic framework (SBS, ABI, CLS) for microscopic analysis of latent spaces in generative models (VAEs / CVAEs). The framework combines ICA-based Uniqueness, entropic Originality and a simulated Stability heuristic to produce interpretable, multi-dimensional scores that characterise representations in the latent manifold. We validate the approach in a controlled synthetic environment and present a case study on a 10k subset of CelebA using a CVAE, showing applications for bias detection, identity-consistency analysis and discovery of high-information outliers. Code, cleaned notebook and selected outputs are provided.

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