Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-10T21:18:53.006403Z
Paper Citation Record · LEDGER
As of 15 August 2026, this Paper Citation Record lists 100 of 114 outbound references and 4 inbound Pith citation observations for arXiv:2501.05441.
A citation records a reference. It does not transfer a finding from one paper to another.
Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-10T21:18:53.006403Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-15T06:32:42.880941+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-05-24T00:59:59.607299Z
A source-named dated measurement, never combined with another source.
Source: arxiv_reference, observed 2026-08-05T02:28:24.338817Z
100 of 114 outbound references displayed
External citation measurements
4
arxiv_reference, observed 2026-08-05T02:28:24.338817Z
Observation 5ec66526-6701-413c-97eb-791fcbf46429 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Layer Normalization
Reference 1
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Observation 3e0c7582-e992-4e07-85e8-a10f965837c1 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline SMU: smooth activation function for deep networks using smoothing maximum technique
Reference 2
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Observation f585d711-66b3-462b-bdc5-167eedb8534b · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Large Scale GAN Training for High Fidelity Natural Image Synthesis
Reference 3
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Observation 43c2b1c2-c67d-4c73-a2b0-d2a0771606cb · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline High-performance large-scale image recognition without normalization
Reference 4
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Observation b1df7363-d697-4261-9593-5eefec80a55a · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Xception: Deep learning with depthwise separable convolutions
Reference 5
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Observation 1be61f66-61cd-4a87-807b-cf03c65a45af · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline A Downsampled Variant of ImageNet as an Alternative to the CIFAR datasets
Reference 6
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Observation cedb0520-56e3-4153-bbff-125a3c08cc1b · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Diffusion models beat gans on image synthesis
Reference 7
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Observation 05ff86af-1879-4103-b7f8-0362cdc7e8c6 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Prescribed Generative Adversarial Networks
Reference 8
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Observation d437be79-f5d4-43c1-94d0-f3360f08b875 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline An Image is Worth 16x16 Words: Transformers for Image Recognition at Scale
Reference 9
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Observation bebba5fa-9a60-47c3-a4cf-b8b147cdee13 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline DigGAN: Discriminator gradient gap regularization for GAN training with limited data
Reference 10
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Observation 716ee5c5-dbcd-499e-b5d4-34d39504ecfb · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Negative momentum for improved game dynamics
Reference 11
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Observation 444f3057-d877-4d4c-a190-6e54b23d94b3 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Commoncanvas: Open diffusion models trained on creative-commons images
Reference 12
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Observation 73b90400-12e3-4e96-a9dd-fc3dd3003c3b · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Generative adversarial networks
Reference 13
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Observation 4cc678f7-0925-4559-9c5a-e0e290e56922 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Improved training of wasserstein gans
Reference 14
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Observation c2a6479e-cb25-497d-a54f-1ec82a7ddce9 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Delving deep into rectifiers: Surpassing human-level performance on imagenet classification
Reference 15
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Observation dac99fe5-b913-4f12-aded-ba45cf60a6eb · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Deep residual learning for image recognition
Reference 16
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Observation c4c99005-e111-4276-94f8-99954190fcf0 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Identity mappings in deep residual networks
Reference 17
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Observation 385cb5dd-39bc-4b43-bb74-c13e5137d6be · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Gaussian Error Linear Units (GELUs)
Reference 18
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Observation df4205be-e226-44b9-8898-fe7e040e2d0b · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Gans trained by a two time-scale update rule converge to a local nash equilibrium
Reference 19
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Observation 306d3102-04d4-4658-8442-9910756a1772 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Denoising diffusion probabilistic models
Reference 20
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Observation 0376b0bc-1a4d-41a0-ba63-8dc2b26dee52 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Batch normalization: Accelerating deep network training by reducing internal covariate shift
Reference 21
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Observation ecbc403f-8575-4b00-8433-4e35b6373908 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline The relativistic discriminator: a key element missing from standard GAN
Reference 22
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Observation f4081727-3cbc-4d45-8e0d-9f3ad6b46734 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Gradient penalty from a maximum margin perspective
Reference 23
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 7a6cc956-57a3-4100-bed4-b3e9250bda4e · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Adversarial score matching and improved sampling for image generation
Reference 24
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Observation ecbd3828-8e9d-42bc-b9ff-98960f975259 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Studiogan: a taxonomy and benchmark of gans for image synthesis
Reference 25
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Observation e6ef636e-6615-466e-9716-32d9670c60e0 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Scaling up gans for text-to-image synthesis
Reference 26
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Observation 76c93997-e228-420b-9fca-ce0d98546470 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Msg-gan: Multi-scale gradients for generative adversarial networks
Reference 27
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Observation fcbf82e6-fd46-4cb4-a839-a5e8e7dbeaa1 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Progressive Growing of GANs for Improved Quality, Stability, and Variation
Reference 28
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Observation bb06b5a8-c208-4e12-95e7-3efe6a482ca6 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline A style-based generator architecture for generative adversarial networks
Reference 29
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Observation 5357342a-7bf1-4fc9-a840-dab3f54d62c3 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Training generative adversarial networks with limited data
Reference 30
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Observation 8072b655-1e58-4781-a8a0-884cbc4c9801 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Analyzing and improving the image quality of stylegan
Reference 31
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Observation 8364b156-157f-480a-b0c3-66bcf434ee43 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Alias-free generative adversarial networks
Reference 32
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Observation f835bbf8-118f-411a-8467-217e26353b40 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Elucidating the design space of diffusion-based generative models
Reference 33
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Observation 76b7d090-7429-44e9-90f9-8209b8e4d317 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Analyzing and Improving the Training Dynamics of Diffusion Models
Reference 34
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Observation e1a1642e-fc47-4c43-81d3-133549cfe04b · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Soft Truncation: A Universal Training Technique of Score-based Diffusion Model for High Precision Score Estimation
Reference 35
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Observation e8f9e894-c60e-46ea-9103-9d66216eab59 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Variational diffusion models
Reference 36
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Observation 5f287e93-6a51-4f1f-b727-f404edc41043 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Learning multiple layers of features from tiny images
Reference 37
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Observation 0b38b6ca-4029-4372-a400-0c0f3b6c42ab · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Imagenet classification with deep convolutional neural networks
Reference 38
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Observation f82bdfde-441f-417a-a178-e7fbe62cbd01 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Maximum Entropy Generators for Energy-Based Models
Reference 39
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Observation f35d8822-105b-4aa8-a052-63319ee3e56a · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Improved precision and recall metric for assessing generative models
Reference 40
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Observation 99b13d68-adc8-4929-aea2-435c67e418f5 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline The Role of ImageNet Classes in Fr\'echet Inception Distance
Reference 41
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Observation 071a9a3b-3ca0-43ac-a10f-db720ed661cb · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline ViTGAN: Training GANs with Vision Transformers
Reference 42
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Observation a2fa5f57-fc3a-4ce3-a66c-7cf1f2fce3be · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Enhanced deep residual networks for single image super-resolution
Reference 43
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Observation a764714c-09cb-4a5d-8b12-9d68cbe2fad5 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Geometric GAN
Reference 44
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Observation b7f49ffc-5a30-4731-a6ac-edee620ece46 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Anycost gans for interactive image synthesis and editing
Reference 45
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Observation 82e354fd-e22c-44a6-851b-79077e793706 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Pacgan: The power of two samples in generative adversarial networks
Reference 46
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Observation 4f007a0c-1bd2-498e-b2e5-95adfe0cf927 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Swin transformer: Hierarchical vision transformer using shifted windows
Reference 47
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Observation 6c5b61aa-691f-408e-b3a3-23d686266e28 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline A convnet for the 2020s
Reference 48
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Observation 9b9e6a71-6f34-4ec0-a495-5f15d797a02c · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Compensation Sampling for Improved Convergence in Diffusion Models
Reference 49
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation d7203713-2ebc-414c-af19-1b7675441d17 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Least squares generative adversarial networks
Reference 50
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Observation 17fad4d2-aac3-4177-8a5e-515e38e52f9a · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline The numerics of gans
Reference 51
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Observation 4e8fa1f3-b383-47cc-9785-86aff04897ac · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Which training methods for gans do actually converge? In International conference on machine learning, pp
Reference 52
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Observation e1562513-a4b6-4e9e-8107-ebbc40f8aad4 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Unrolled generative adversarial networks
Reference 53
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 4690b842-bb5f-425d-afc2-f0b78d02eb0f · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline cGANs with Projection Discriminator
Reference 54
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Observation 7b757a12-dbca-47a6-b7fb-bfecf745a406 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Gradient descent gan optimization is locally stable
Reference 55
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 75cdc4d5-55d1-4fd9-95a3-34dce22b491d · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Input Perturbation Reduces Exposure Bias in Diffusion Models
Reference 56
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Observation fda3b4ff-54e6-412e-b031-9c845b13e3e2 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline f-gan: Training generative neural samplers using variational divergence minimization
Reference 57
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 1e274123-e76f-4d10-9c22-112ae67e9ec1 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Scalable diffusion models with transformers
Reference 58
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation eabafb4e-53ed-475a-9b73-eac9734fb2f5 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Diffusion autoencoders: Toward a meaningful and decodable representation
Reference 59
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 9cad2cac-cdaa-4ca2-af02-2e383c082485 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Unsupervised Representation Learning with Deep Convolutional Generative Adversarial Networks
Reference 60
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Observation b5281f08-4576-4a2d-8ab5-b49ea7cc3cdb · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Searching for Activation Functions
Reference 61
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Observation d9e7b036-3368-435a-9e64-4ad347399bcf · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline High-resolution image synthesis with latent diffusion models
Reference 62
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 2e4c1309-a63e-4e57-b8fd-985f2093f055 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline U-net: Convolutional networks for biomedical image segmentation
Reference 63
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation c7f051e5-1e25-4eda-bd9e-aa20878961d0 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Stabilizing training of generative adversarial networks through regularization
Reference 64
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 089bf63c-0803-48f9-95e7-bbafae130a23 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline LiteVAE: Lightweight and Efficient Variational Autoencoders for Latent Diffusion Models
Reference 65
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Observation 38e4397f-fb6e-4534-9b83-34c87a76a8c4 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Diffusion Models With Learned Adaptive Noise
Reference 66
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Observation f9f30163-8de7-4859-8606-0ca6f20f2564 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Mobilenetv2: Inverted residuals and linear bottlenecks
Reference 67
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 67fd3164-e053-4472-8160-68700a7b4bd2 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Projected gans converge faster
Reference 68
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Observation 7efabafb-4f9b-4592-9b1e-35e81c92429e · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline StyleGAN-XL: Scaling stylegan to large diverse datasets
Reference 69
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation dd0625f8-166b-448f-bc47-1c969e4b5875 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Stylegan-t: Unlocking the power of gans for fast large-scale text-to-image synthesis
Reference 70
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 1570626f-5495-42f1-9fb4-c1098f43b914 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Real-time single image and video super-resolution using an efficient sub- pixel convolutional neural network
Reference 72
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 5a8d61fe-ec09-4f8a-ac60-05f295cf40f4 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Very Deep Convolutional Networks for Large-Scale Image Recognition
Reference 73
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Observation 3182661f-1070-46f9-9366-c08c2db5aff9 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Polynomial implicit neural representations for large diverse datasets
Reference 74
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 6fdb6542-45d4-4c1c-aa5c-7334c6cc3e02 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Amortised MAP Inference for Image Super-resolution
Reference 75
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Observation 87433cf0-401b-45b7-b636-f5a9c6427d34 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Denoising diffusion implicit models
Reference 76
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation bf4f90ab-bbcb-490a-ab5b-1c27a4f26277 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Improved techniques for training consistency models
Reference 77
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Observation 90ab72f1-2cb0-448c-84ff-f44c5a5076ef · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Score-Based Generative Modeling through Stochastic Differential Equations
Reference 78
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Observation e863171b-1258-47e8-9f2c-583bf51d5474 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Consistency models
Reference 79
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 23411b5c-4297-4cbc-b2c5-dab5e3fc115b · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Veegan: Reducing mode collapse in gans using implicit variational learning
Reference 80
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 3be2d058-8be1-48d9-87f7-14adf2c405b7 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Towards a better global loss landscape of gans
Reference 81
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 7b6cdaa5-a38e-41b0-beb3-515298bbfffd · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline SAN: Inducing metrizability of GAN with discriminative normalized linear layer
Reference 82
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 6f81013e-3e1b-442e-8f8e-8ed900a5a027 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Alleviation of gradient exploding in gans: Fake can be real
Reference 83
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 000ce858-53ba-48bc-8e85-56752e5c02f3 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Improving generalization and stability of generative adversarial networks
Reference 84
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No event found in the named queried sources as of 2026-08-15T06:32:42.880941+00:00.
Observation 051da960-a001-4fe5-b734-25c6ed3ae796 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Instance Normalization: The Missing Ingredient for Fast Stylization
Reference 85
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Observation 223c23f1-f695-4dd8-bf93-47710e3012ab · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Score-based generative modeling in latent space
Reference 86
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Observation 8124e5ac-3905-4938-b15a-a8e21b72acc9 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Attention is all you need
Reference 87
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Observation 361c8047-99d8-45ab-a051-3c9b87c4159b · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Esrgan: Enhanced super-resolution generative adversarial networks
Reference 88
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Observation 43a6b00b-2617-4a46-889d-5d175ef2d8b7 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Infodiffusion: Representation learning using information maximizing diffusion models
Reference 89
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Observation 522d14b6-0a17-4893-bf74-9bb1044ab258 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Diffusion-gan: Training gans with diffusion
Reference 90
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Observation bd00c78a-d78a-4560-b081-6e402ef9ea19 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Group normalization
Reference 92
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Observation 1b83fe17-e8cb-4bed-8be3-7cbefaae63b3 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline VAEBM: A Symbiosis between Variational Autoencoders and Energy-based Models
Reference 93
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Observation 1df595da-9ab9-4bb4-9159-330b3f7ecdba · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Tackling the Generative Learning Trilemma with Denoising Diffusion GANs
Reference 94
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Observation 50d482ba-d493-4afd-90d0-d8ca99d59e35 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Aggregated residual transforma- tions for deep neural networks
Reference 95
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Observation 888162b1-daaf-4d05-86de-68b586d9989d · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline One-step diffusion with distribution matching distillation
Reference 96
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Observation 847bd1d5-d9b1-4fc3-aa32-08886ae3cf73 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Metaformer is actually what you need for vision
Reference 97
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Observation 6261dfa7-7740-41ec-877b-5f23abfbce1d · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Styleswin: Transformer-based gan for high-resolution image generation
Reference 98
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Observation 340b5042-6a7f-44a8-81ab-bae16396ce6c · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Fixup Initialization: Residual Learning Without Normalization
Reference 99
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Observation 8cfd6da4-f400-472b-9459-a70fc371b8cf · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Making convolutional networks shift-invariant again
Reference 100
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Observation fb8002a3-0a8d-4790-b496-ce085957d76e · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Improved consistency regularization for gans
Reference 101
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Observation 523d642a-ff51-4d0e-b857-7711aa036ad0 · outbound
The GAN is dead; long live the GAN! A Modern GAN Baseline Claim of convergence properties is justified in Appendices A,B,C
Reference 102
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Observation e0931b2e-16dc-4905-88f4-19bbe39d7ac7 · inbound
"Noisier" Noise Contrastive Eestimation is (Almost) Maximum Likelihood The GAN is dead; long live the GAN! A Modern GAN Baseline
Reference 5
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Observation 7bea3531-4d91-4bc5-8a5c-a41d2b65fbde · inbound
Recovering Sub-threshold S-wave Arrivals in Deep Learning Phase Pickers via Shape-Aware Loss The GAN is dead; long live the GAN! A Modern GAN Baseline
Reference 10
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Observation 7308c216-8f56-4c5a-bf1c-e260093ea199 · inbound
Visual Generation in the New Era: An Evolution from Atomic Mapping to Agentic World Modeling The GAN is dead; long live the GAN! A Modern GAN Baseline
Reference 32
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Observation 62c2ac77-1734-4c0c-985d-cd42100fbfc4 · inbound
Unlearning with Asymmetric Sources: Improved Unlearning-Utility Trade-off with Public Data The GAN is dead; long live the GAN! A Modern GAN Baseline
Reference 17
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