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MMDisCo: Multi-Modal Discriminator-Guided Cooperative Diffusion for Joint Audio and Video Generation

28 May 2024arXiv:2405.17842archive 2025-07-28

Akio Hayakawa, Masato Ishii, Takashi Shibuya, Yuki Mitsufuji

This study aims to construct an audio-video generative model with minimal computational cost by leveraging pre-trained single-modal generative models for audio and video. To achieve this, we propose a novel method that guides single-modal models to cooperatively generate well-aligned samples across modalities. Specifically, given two pre-trained base diffusion models, we train a lightweight joint guidance module to adjust scores separately estimated by the base models to match the score of joint distribution over audio and video. We show that this guidance can be computed using the gradient of the optimal discriminator, which distinguishes real audio-video pairs from fake ones independently generated by the base models. Based on this analysis, we construct a joint guidance module by training this discriminator. Additionally, we adopt a loss function to stabilize the discriminator's gradient and make it work as a noise estimator, as in standard diffusion models. Empirical evaluations on several benchmark datasets demonstrate that our method improves both single-modal fidelity and multimodal alignment with relatively few parameters. The code is available at: https://github.com/SonyResearch/MMDisCo.

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expand_dims sonyresearch/mmdisco/mmdisco/models/diffusion/mmdiffusion/multimodal_dpm_solver_plus.py official repository ran · violated contract MIT (permissive) · deda81553b270226 · report
interpolate_fn sonyresearch/mmdisco/mmdisco/models/diffusion/mmdiffusion/multimodal_dpm_solver_plus.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · 0f0757aa08450a2c · report
model_wrapper sonyresearch/mmdisco/mmdisco/models/diffusion/mmdiffusion/multimodal_dpm_solver_plus.py official repository ran · fixture could not drive it MIT (permissive) · dc75210a9821cfbc · report
spectral_normalize SonyResearch/MMDisCo/mmdisco/models/diffusion/mel_extractor.py official repository ran fingerprinted MIT (permissive) · a6fda49da39336fb · report
zero_module SonyResearch/MMDisCo/mmdisco/models/residual_predictor/nn.py official repository ran · our draft was wrong MIT (permissive) · 129b804760b3115f · report
avg_pool_nd SonyResearch/MMDisCo/mmdisco/models/residual_predictor/nn.py official repository unverified MIT (permissive) · ecd0fc28815b65ae · report
conv_nd SonyResearch/MMDisCo/mmdisco/models/residual_predictor/nn.py official repository unverified MIT (permissive) · fe4eb545bbb728e0 · report

Tasks

Video Generation

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Methods

BASEDiffusion

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