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Recomposer: Event-roll-guided generative audio editing
Recomposer: Event-roll-guided generative audio editing
Daniel P. W. Ellis Eduardo Fonseca Ron J. Weiss Kevin Wilson Scott Wisdom et al
Abstract
Editing complex real-world sound scenes is difficult because individual sound sources overlap in time. Generative models can fill-in missing or corrupted details based on their strong prior understanding of the data domain. We present a system for editing individual sound events within complex scenes able to delete, insert, and enhance individual sound events based on textual edit descriptions (e.g., enhance Door'') and a graphical representation of the event timing derived from anevent roll'' transcription. We present an encoder-decoder transformer working on SoundStream representations, trained on synthetic (input, desired output) audio example pairs formed by adding isolated sound events to dense, real-world backgrounds. Evaluation reveals the importance of each part of the edit descriptions -- action, class, timing. Our work demonstrates ``recomposition'' is an important and practical application.