Typed states for the displayed outbound observations.
Source: paper_references, paper_reference_links, observed 2026-08-16T10:37:07.199870Z
Paper Citation Record · LEDGER
As of 18 August 2026, this Paper Citation Record lists 56 of 56 outbound references and 0 inbound Pith citation observations for arXiv:2504.17996.
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 2026-08-16T10:37:07.199870Z
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
A source-named dated measurement, never combined with another source.
Source: cited_works
56 of 56 outbound references displayed
External citation measurements
No source-named external measurement is stored.
Observation 07f7761f-ba96-4414-b701-90395b535572 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Improving language understanding by generative pre-training
Reference 1
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Observation 665f1873-2ccd-44e0-ac85-8110cc5765ef · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Language models are unsupervised multitask learners
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Language models are few-shot learners
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Observation 36c8a922-7fac-4165-b0cd-61ef23ac59a5 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Transformers in vision: A survey
Reference 4
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Observation 98ffa837-881a-4bea-99e2-d1761bd513cd · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning A survey of visual transformers
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Observation 175b0a32-e849-4e4c-abdc-f73f725f1d60 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Stand-alone self-attention in vision models
Reference 8
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Observation d17af0e4-f569-440b-9dba-9574f00106de · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Deeplab: Semantic image segmentation with deep convolutional nets, atrous convolution, and fully connected crfs
Reference 9
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Observation c0dd93ae-1da3-49e1-8eb0-742d132c7d6a · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning TransUNet: Transformers Make Strong Encoders for Medical Image Segmentation
Reference 10
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Observation 737695ce-c7fe-4563-a671-2b6ef86bef22 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning A survey on efficient vision transformers: algorithms, techniques, and performance benchmarking
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Observation 7a2c9f7d-a18a-46bc-b094-fdfb4358dcac · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Neural window fully-connected crfs for monocular depth estimation
Reference 13
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Observation 93e6c357-399a-4b67-a975-594e11d804ed · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning An Image is Worth 16x16 Words: Transformers for Image Recognition at Scale
Reference 14
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Observation d11ae4d4-a3c2-4844-bd91-1fae7af472bb · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning A survey on vision transformer
Reference 16
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Observation 5debd8db-fea2-40bc-9386-039d7636c87d · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Lstm: A search space odyssey
Reference 17
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Observation 901e557e-202a-4b51-a42a-70f63d68d77b · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Learned token pruning for transformers
Reference 18
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Observation 79c4d35a-1855-4f10-acfd-d052bd30750d · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Baseg: Boundary aware semantic segmentation for autonomous driving
Reference 19
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Observation bd84bc05-2cac-42d7-a462-aa952fa46c51 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning SaiT: Sparse Vision Transformers through Adaptive Token Pruning
Reference 20
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Observation ff49618a-56b2-4358-85bb-41f93ffe5216 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Cross-image pixel contrasting for semantic segmentation
Reference 21
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Observation a9455600-a4f1-4c52-af0d-b3541400dc02 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Segformer: Simple and efficient design for semantic segmentation with transformers
Reference 22
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Observation 3ce19f0c-63ea-429e-8cdf-f8b34eaad261 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning VLTP: Vision-Language Guided Token Pruning for Task-Oriented Segmentation
Reference 24
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Observation 7dd947d5-d78d-4c99-a429-166d0c934715 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning A survey on instance segmentation: state of the art.International journal of multimedia information retrieval, 9(3):171–189, 2020
Reference 25
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Observation 7b2da4b8-3348-400f-b9e6-ba9d648585ac · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Yolact: Real-time instance segmentation
Reference 26
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Swin unetr: Swin transformers for semantic segmentation of brain tumors in mri images
Reference 27
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Decoupling foreground and background with siamese vit networks for weakly-supervised semantic segmentation
Reference 29
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Observation 13868105-24b8-4c74-978b-b7d294e8f1fa · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Segvit v2: Exploring efficient and continual semantic segmentation with plain vision transformers
Reference 31
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning SAM 2: Segment Anything in Images and Videos
Reference 32
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Observation ca3daf36-6e5c-4a9c-8c6c-78e53170e9fa · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Semantic layering in room segmentation via llms
Reference 33
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Observation c4d96793-779c-4186-8212-3795acc2e532 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Post-training quantization or quantization-aware training? that is the question
Reference 34
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Observation 3156a167-966a-452c-b596-7353f884a95e · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Q-bert: Hessian based ultra low precision quantization of bert
Reference 35
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Hawq: Hessian aware quan- tization of neural networks with mixed-precision
Reference 36
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Post-training quantization for vision transformer
Reference 37
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Towards accurate post-training quantization for vision transformer
Reference 39
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Observation 5a0bc553-9c6b-4019-819f-947bb18812fc · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning A Simple and Effective Pruning Approach for Large Language Models
Reference 40
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Observation 9e27eef3-a5e3-4ec8-be66-3d806e753e14 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Prune and tune: Improving e fficient pruning 18 techniques for massive language models
Reference 41
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Observation fc99889c-09ab-40ef-a0ac-a7aa799d636a · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Are sixteen heads really better than one? Advances in neural information processing systems, 32, 2019
Reference 42
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Observation 50eff1d2-ce78-49c5-9c40-b9ca94a149ff · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Reducing Transformer Depth on Demand with Structured Dropout
Reference 43
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Observation d98a4ae7-70aa-4a2f-ade2-f09b61ae7b35 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning FQ-ViT: Post-Training Quantization for Fully Quantized Vision Transformer
Reference 44
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Observation 42c39125-cc6b-4495-9ee5-f4053256efdc · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Comprehensive Survey of Model Compression and Speed up for Vision Transformers
Reference 45
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Not All Patches are What You Need: Expediting Vision Transformers via Token Reorganizations
Reference 46
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Observation 9afbf63f-2272-46fb-bf04-efd4e70cfd15 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Adaptive token sampling for e fficient vision trans- formers
Reference 47
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Observation 8d3a0e1b-baf8-444a-b6ee-cf01670e5800 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Spvit: Enabling faster vision transformers via latency-aware soft token pruning
Reference 48
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Observation 551d3d31-3fba-4616-8cc3-ff767a748291 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Ia-red2: Interpretability-aware redundancy reduction for vision transformers
Reference 50
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Token Merging: Your ViT But Faster
Reference 51
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning TokenLearner: What Can 8 Learned Tokens Do for Images and Videos?
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning A-vit: Adaptive tokens for efficient vision transformer
Reference 53
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Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Dynamicvit: E fficient vision transformers with dynamic token sparsification
Reference 54
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Observation 59d25d33-2032-4f73-bf5b-03ab6d8c57e9 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning K-means-type algorithms: A generalized convergence theorem and char- acterization of local optimality
Reference 55
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Observation 60306bb0-7c3f-440d-8664-5127e9695fe4 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Multilevel image thresholding based on 2d histogram and maximum tsallis entropy—a differential evolution approach
Reference 56
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Observation 2f8d5a20-997b-4709-be82-af6db562192b · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Edge detection using guided sobel image filtering
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Observation 39d00b96-b803-4ac2-9f2a-8285d8128c4d · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Machine learning for aerial image labeling
Reference 58
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Observation 9ed553bf-c275-4b10-ba1d-fe7f30bbadd3 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning What object should i use?-task driven object detection
Reference 59
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Observation 671f418b-1fa0-4fd4-bd6b-8b9290bc0513 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Rio: A benchmark for reasoning intention-oriented objects in open environments
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Observation ba7333b1-869f-4d78-9d0f-32229de3f895 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Swin-unet: Unet-like pure transformer for medical image segmentation
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Observation 326c0218-d65c-4a23-8218-469f2c5a171b · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Segment anything
Reference 62
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Observation a72f56f8-2cac-4c99-ad64-427b2ac16861 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Content-aware token sharing for e fficient semantic segmen- tation with vision transformers
Reference 63
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Observation 178b3dff-3a28-4b6f-9536-3da6ca9088ed · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Dynamic token pruning in plain vision transform- ers for semantic segmentation
Reference 64
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Observation 483f515e-558b-49c3-b007-f778338b9564 · outbound
Back to Fundamentals: Low-Level Visual Features Guided Progressive Token Pruning Revisiting token pruning 19 for object detection and instance segmentation
Reference 65
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No inbound Pith citation observations are available.