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Sketch2Sound: Controllable Audio Generation via Time-Varying Signals and Sonic Imitations

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arxiv 2412.08550 v2 pith:AS3SNXIE submitted 2024-12-11 cs.SD eess.AS

classification cs.SDeess.AS
keywords sketch2soundsonicsoundsaudiocontrolimitationimitationssignals
verification ladder T0 review T1 audit T2 compute T3 formal
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We present Sketch2Sound, a generative audio model capable of creating high-quality sounds from a set of interpretable time-varying control signals: loudness, brightness, and pitch, as well as text prompts. Sketch2Sound can synthesize arbitrary sounds from sonic imitations (i.e.,~a vocal imitation or a reference sound-shape). Sketch2Sound can be implemented on top of any text-to-audio latent diffusion transformer (DiT), and requires only 40k steps of fine-tuning and a single linear layer per control, making it more lightweight than existing methods like ControlNet. To synthesize from sketchlike sonic imitations, we propose applying random median filters to the control signals during training, allowing Sketch2Sound to be prompted using controls with flexible levels of temporal specificity. We show that Sketch2Sound can synthesize sounds that follow the gist of input controls from a vocal imitation while retaining the adherence to an input text prompt and audio quality compared to a text-only baseline. Sketch2Sound allows sound artists to create sounds with the semantic flexibility of text prompts and the expressivity and precision of a sonic gesture or vocal imitation. Sound examples are available at https://hugofloresgarcia.art/sketch2sound/.

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Cited by 2 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Recomposer: Event-roll-guided generative audio editing

    cs.SD 2025-09 conditional novelty 6.0 of 10

    An encoder-decoder transformer conditions on text actions and a time-aligned event roll to delete, insert, or enhance individual sound events in dense audio scenes.

  2. User-guided Generative Source Separation

    cs.SD 2025-07 conditional novelty 6.0 of 10

    GuideSep separates arbitrary target instruments from a mixture using user-provided waveform mimicry and mel-spectrogram masks, and outperforms a same-architecture mask-prediction baseline in SDR and listening tests.

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