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Mutual Information Collapse Explains Disentanglement Failure in ββ-VAEs

Published 9 Feb 2026 in stat.ML and cs.LG | (2602.09277v1)

Abstract: The ββ-VAE is a foundational framework for unsupervised disentanglement, using ββ to regulate the trade-off between latent factorization and reconstruction fidelity. Empirically, however, disentanglement performance exhibits a pervasive non-monotonic trend: benchmarks such as MIG and SAP typically peak at intermediate ββ and collapse as regularization increases. We demonstrate that this collapse is a fundamental information-theoretic failure, where strong Kullback-Leibler pressure promotes marginal independence at the expense of the latent channel's semantic informativeness. By formalizing this mechanism in a linear-Gaussian setting, we prove that for $β> 1$, stationarity-induced dynamics trigger a spectral contraction of the encoder gain, driving latent-factor mutual information to zero. To resolve this, we introduce the λβλβ-VAE, which decouples regularization pressure from informational collapse via an auxiliary L2L_2 reconstruction penalty λλ. Extensive experiments on dSprites, Shapes3D, and MPI3D-real confirm that $λ> 0$ stabilizes disentanglement and restores latent informativeness over a significantly broader range of ββ, providing a principled theoretical justification for dual-parameter regularization in variational inference backbones.

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