This paper introduces BABE-2, a novel approach to audio restoration focusing on enhancing low-quality historical music recordings. Building upon the previous algorithm BABE, BABE-2 introduces generative equalization, utilizing diffusion models for optimization. The method simultaneously estimates filter degradation magnitude response and hallucinates restored audio, showing marked enhancement in historical piano and vocal recordings. The paper details the enhancements made in BABE-2, experiments conducted, and the methodology for selecting training data. The study also evaluates the effectiveness of the method in restoring iconic vocalists Enrico Caruso and Nellie Melba.
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arxiv.org
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