Papers › Physics Informed Distillation for Diffusion Models

Physics Informed Distillation for Diffusion Models

13 Nov 2024arXiv:2411.08378archive 2025-07-28

Joshua Tian Jin Tee, Kang Zhang, Hee Suk Yoon, Dhananjaya Nagaraja Gowda, Chanwoo Kim, Chang D. Yoo

Diffusion models have recently emerged as a potent tool in generative modeling. However, their inherent iterative nature often results in sluggish image generation due to the requirement for multiple model evaluations. Recent progress has unveiled the intrinsic link between diffusion models and Probability Flow Ordinary Differential Equations (ODEs), thus enabling us to conceptualize diffusion models as ODE systems. Simultaneously, Physics Informed Neural Networks (PINNs) have substantiated their effectiveness in solving intricate differential equations through implicit modeling of their solutions. Building upon these foundational insights, we introduce Physics Informed Distillation (PID), which employs a student model to represent the solution of the ODE system corresponding to the teacher diffusion model, akin to the principles employed in PINNs. Through experiments on CIFAR 10 and ImageNet 64x64, we observe that PID achieves performance comparable to recent distillation methods. Notably, it demonstrates predictable trends concerning method-specific hyperparameters and eliminates the need for synthetic dataset generation during the distillation process. Both of which contribute to its easy-to-use nature as a distillation approach for Diffusion Models. Our code and pre-trained checkpoint are publicly available at: https://github.com/pantheon5100/pid_diffusion.git.

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approx_standard_normal_cdf pantheon5100/pid_diffusion/cm/losses.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · cfd76fd0d89574a4 · report
discretized_gaussian_log_likelihood pantheon5100/pid_diffusion/cm/losses.py official repository ran · our draft was wrong MIT (permissive) · cd33283d615fb3d7 · report
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make_master_params pantheon5100/pid_diffusion/cm/fp16_util.py official repository ran MIT (permissive) · e20dd5102da3b050 · report
make_output_format pantheon5100/pid_diffusion/cm/logger.py official repository ran MIT (permissive) · bcd8b4acab199405 · report
normal_kl pantheon5100/pid_diffusion/cm/losses.py official repository ran · honoured contract fingerprinted MIT (permissive) · cf2798b666b231ca · report
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weight_init pantheon5100/pid_diffusion/cm/network.py official repository ran · fixture could not drive it MIT (permissive) · d41a4250066bce93 · report
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conv_nd pantheon5100/pid_diffusion/cm/nn.py official repository unverified MIT (permissive) · fe4eb545bbb728e0 · report
create_model pantheon5100/pid_diffusion/cm/script_util.py official repository unverified MIT (permissive) · 35ea054532112e53 · report
create_model_and_diffusion pantheon5100/pid_diffusion/cm/script_util.py official repository unverified MIT (permissive) · a320073abc54d8b8 · report
create_named_schedule_sampler pantheon5100/pid_diffusion/cm/resample.py official repository unverified MIT (permissive) · df72d0c85cc7f5ed · report
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get_generator pantheon5100/pid_diffusion/cm/random_util.py official repository unverified MIT (permissive) · 84423ecf52775c17 · report
get_weightings pantheon5100/pid_diffusion/cm/karras_diffusion.py official repository unverified MIT (permissive) · b50e02eda098b1ea · report
karras_sample pantheon5100/pid_diffusion/cm/karras_diffusion.py official repository unverified MIT (permissive) · e8556cad8bd4d94a · report
mpi_weighted_mean pantheon5100/pid_diffusion/cm/logger.py official repository unverified MIT (permissive) · e515a67f7f32e76d · report
ode_solver pantheon5100/pid_diffusion/cm/karras_diffusion.py official repository unverified MIT (permissive) · 2cf07b1cef30b589 · report
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random_crop_arr pantheon5100/pid_diffusion/cm/image_datasets.py official repository unverified MIT (permissive) · 53d5be4fdbcfac23 · report

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Dataset GenerationImage Generation

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Diffusion

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