Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-11T11:38:29.866761Z
Paper Citation Record · LEDGER
As of 18 August 2026, this Paper Citation Record lists 48 of 48 outbound references and 1 inbound Pith citation observation for arXiv:2412.15195.
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 2026-08-11T11:38:29.866761Z
One-hop event checks from named stored sources.
Source: scholarly_work_events, retraction_status_cache, observed 2026-08-18T06:34:40.430872+00:00
Pith citing papers itemized under the disclosed page cap.
Source: paper_references, paper_reference_links, observed 2026-08-06T17:34:57.395098Z
A source-named dated measurement, never combined with another source.
Source: pith, observed 2026-08-06T17:34:57.475555Z
48 of 48 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 005f7b06-7f2f-4232-95df-5ce8eb4cb69d · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport GPT-4 Technical Report
Reference 1
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Observation 62abc3dc-9de1-4ee5-866c-f4fbe89e872a · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Self-labelling via simultaneous clustering and representation learning
Reference 2
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Observation 62def7ae-c21e-479f-b2e8-46a8f110d497 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Sequential modeling enables scalable learn- ing for large vision models
Reference 3
Source-reported events for the cited work
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Observation fd3e028a-1496-4143-9e89-9b137df5995f · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Beit: Bert pre-training of image transformers
Reference 4
Source-reported events for the cited work
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Observation 54b758ab-a975-4699-aaea-c5828ce0e8aa · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Estimating or Propagating Gradients Through Stochastic Neurons for Conditional Computation
Reference 5
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Observation 70c8e765-5f2a-415b-a3cc-651b6054a33c · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Language Models are Few-Shot Learners
Reference 6
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Observation f4ea4be3-7750-4b0e-8a3b-efd4db61fa96 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Efficient-vqgan: To- wards high-resolution image generation with efficient vision transformers
Reference 7
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Observation 0468bab9-a0c0-444a-b16c-ab3bd992e6fe · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Deep clustering for unsupervised learning of visual features
Reference 8
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Preventing Local Pitfalls in Vector Quantization via Optimal Transport Unsupervised learn- ing of visual features by contrasting cluster assignments
Reference 9
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Observation 383f231a-b8f0-4f66-8937-79231a6441ba · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Maskgit: Masked generative image transformer
Reference 10
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Observation d69d2619-52d0-4ff3-bfba-54fb32075508 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Sinkhorn distances: Lightspeed computation of optimal transport
Reference 11
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Observation fbc40932-f026-4f33-9230-b8fa236e7b79 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Imagenet: A large-scale hierarchical image database
Reference 12
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Observation f509b4f1-2f6c-4a7d-a137-ebd84bd57bdd · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Exact penalty methods
Reference 13
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Observation 1e267a0a-b3b9-4b62-b32a-27613362f8c9 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Generating images with perceptual similarity metrics based on deep networks
Reference 14
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Observation eac00ba0-defb-4665-90cf-03073587d001 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Taming transformers for high-resolution image synthesis
Reference 15
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Observation 3208054b-d301-4a98-933c-c688b99bbdad · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Making llama see and draw with seed tokenizer
Reference 16
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Observation e786fdc2-6b7c-4652-b24d-993f711dd8fc · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Generative adversarial nets
Reference 17
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Observation 14fee287-7d42-458a-ba9c-0b187e2bf4ac · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Exact penalty functions in nonlinear programming
Reference 18
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Observation 867783d1-20cc-4a02-817c-3ce46c58d476 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Gans trained by a two time-scale update rule converge to a local nash equilib- rium
Reference 19
Source-reported events for the cited work
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Observation 63f77a92-5195-47f1-b6df-fffe2a00d316 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Reducing the dimensionality of data with neural networks
Reference 20
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Observation 0fd56170-c59d-46fb-844a-9ccae2c2ef10 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Straightening out the straight-through estimator: Over- coming optimization challenges in vector quantized net- works
Reference 21
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Observation 88f7edcc-6410-419a-b220-fef531d2ff5b · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Batch normalization: Accelerating deep network training by reducing internal co- variate shift
Reference 22
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Observation 9235fc3c-c7b4-41b5-8ab8-a2b1c4526330 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Image-to-image translation with conditional adver- sarial networks
Reference 23
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Observation 875c58c7-8359-41c3-9047-b1bc795c512f · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Unified language-vision pretraining in llm with dynamic discrete visual tokenization
Reference 24
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Observation bf6520a0-2c18-4154-97db-ae2f50ad2227 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Perceptual losses for real-time style transfer and super-resolution
Reference 25
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Observation 55ff1b28-e2c7-4ac4-a5c0-22af2f40933e · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Auto-Encoding Variational Bayes
Reference 26
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Observation 54a92d9c-046a-48ba-8c67-0209e20ef680 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Learning multiple layers of features from tiny images
Reference 27
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Observation 94c4744e-841a-458a-b0e6-55459a792e7f · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Autoencoding beyond pixels using a learned similarity metric
Reference 28
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Observation f569fb17-220b-47f2-85f1-1f1ce5a0dd90 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Gradient-based learning applied to document recog- nition
Reference 29
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Observation e4f8b84d-5c73-41aa-ad06-110637661c58 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Autoregressive image generation using residual quantization
Reference 30
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Observation c9571dc0-fbf6-4d48-9bfe-b3971917ff23 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Decoupled weight decay regularization
Reference 31
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Observation 9080ce48-e46d-4e9f-970b-88e1b366c9d2 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Pytorch: An imperative style, high-performance deep learning library
Reference 32
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Preventing Local Pitfalls in Vector Quantization via Optimal Transport Gen- erating diverse high-fidelity images with vq-vae-2
Reference 33
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Preventing Local Pitfalls in Vector Quantization via Optimal Transport High-resolution image syn- thesis with latent diffusion models
Reference 34
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Observation b5df55a1-cc40-44a0-8a2d-df1dd56c8f39 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Learning internal representations by error prop- agation, parallel distributed processing, explorations in the microstructure of cognition, ed
Reference 35
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Observation 78568692-e869-4724-b004-be6b87c9ee7f · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Coding theorems for a discrete source with a fidelity criterion
Reference 36
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Observation 5135bf85-df26-4f04-a9be-0a30a2ac28ad · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Super-convergence: Very fast training of neural networks using large learning rates
Reference 37
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Observation cc1da061-4ac0-40ac-b099-70dbdb6d2921 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Visual autoregressive modeling: Scalable image generation via next-scale prediction
Reference 38
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Observation 36dca8bf-fbde-46a4-9745-d0b80cd303e9 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport LLaMA: Open and Efficient Foundation Language Models
Reference 39
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Observation 47d4a74b-90d4-48ec-a0c0-e722494f0aee · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Neural discrete representation learning
Reference 40
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Observation 83bdd3b6-2536-4a82-b2fb-b5a2f7f37567 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Image quality assessment: from error visibility to structural similarity
Reference 41
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Observation 1cca3341-cce5-4073-b89a-14d715a096a5 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport MaskBit: Embedding-free Image Generation via Bit Tokens
Reference 42
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Observation 506eb382-bc78-41c4-8c44-9d00ab8e30cd · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Vector-quantized image modeling with improved vqgan
Reference 43
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Observation 6cedb479-3c0b-4c0b-ae93-6276014a2c4d · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Language model beats diffusion-tokenizer is key to visual generation
Reference 44
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Observation d1961332-2bac-4989-a810-059d01fc5b6f · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport An image is worth 32 tokens for reconstruction and generation
Reference 45
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Observation f03c02a0-d781-46a0-b2a0-bd7486fc8f00 · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport The unreasonable effectiveness of deep features as a perceptual metric
Reference 46
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Observation 084e9fda-b869-43b4-8052-e926842bbb1f · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Movq: Modulating quantized vectors for high- fidelity image generation
Reference 47
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Observation 582e0f43-eef2-45f7-99cc-7fc8d2641c8c · outbound
Preventing Local Pitfalls in Vector Quantization via Optimal Transport Scaling the Codebook Size of VQGAN to 100,000 with a Utilization Rate of 99%
Reference 48
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Observation 4ee414ec-de86-4feb-b144-a30196dd9f79 · inbound
Quantize-then-Rectify: Efficient VQ-VAE Training Preventing Local Pitfalls in Vector Quantization via Optimal Transport
Reference 41
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