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Msanii: High Fidelity Music Synthesis on a Shoestring Budget

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arxiv 2301.06468 v1 pith:HDF3XNKC submitted 2023-01-16 cs.SD cs.LGeess.AS

classification cs.SDcs.LGeess.AS
keywords msaniimusichighmodelsynthesizingcapabilitiesdiffusion-basedgithub
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In this paper, we present Msanii, a novel diffusion-based model for synthesizing long-context, high-fidelity music efficiently. Our model combines the expressiveness of mel spectrograms, the generative capabilities of diffusion models, and the vocoding capabilities of neural vocoders. We demonstrate the effectiveness of Msanii by synthesizing tens of seconds (190 seconds) of stereo music at high sample rates (44.1 kHz) without the use of concatenative synthesis, cascading architectures, or compression techniques. To the best of our knowledge, this is the first work to successfully employ a diffusion-based model for synthesizing such long music samples at high sample rates. Our demo can be found https://kinyugo.github.io/msanii-demo and our code https://github.com/Kinyugo/msanii .

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Cited by 1 Pith paper

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

  1. Let Your Video Listen to Your Music!

    cs.CV 2025-06 reject novelty 6.0 of 10

    MVAA aligns a video's motion peaks to music beats via keyframe re-timing and diffusion-based inpainting, aiming to preserve the original content while improving rhythmic synchronization.

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